Index: projects/power8_bringup_hacks/sys/dev/ahci/ahci.c =================================================================== --- projects/power8_bringup_hacks/sys/dev/ahci/ahci.c (revision 339414) +++ projects/power8_bringup_hacks/sys/dev/ahci/ahci.c (revision 339415) @@ -1,2778 +1,2758 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2009-2012 Alexander Motin * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer, * without modification, immediately at the beginning of the file. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ #include __FBSDID("$FreeBSD$"); #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include "ahci.h" #include #include #include #include #include /* local prototypes */ static void ahci_intr(void *data); static void ahci_intr_one(void *data); static void ahci_intr_one_edge(void *data); static int ahci_ch_init(device_t dev); static int ahci_ch_deinit(device_t dev); static int ahci_ch_suspend(device_t dev); static int ahci_ch_resume(device_t dev); static void ahci_ch_pm(void *arg); static void ahci_ch_intr(void *arg); static void ahci_ch_intr_direct(void *arg); static void ahci_ch_intr_main(struct ahci_channel *ch, uint32_t istatus); static void ahci_begin_transaction(struct ahci_channel *ch, union ccb *ccb); static void ahci_dmasetprd(void *arg, bus_dma_segment_t *segs, int nsegs, int error); static void ahci_execute_transaction(struct ahci_slot *slot); static void ahci_timeout(struct ahci_slot *slot); static void ahci_end_transaction(struct ahci_slot *slot, enum ahci_err_type et); static int ahci_setup_fis(struct ahci_channel *ch, struct ahci_cmd_tab *ctp, union ccb *ccb, int tag); static void ahci_dmainit(device_t dev); static void ahci_dmasetupc_cb(void *xsc, bus_dma_segment_t *segs, int nsegs, int error); static void ahci_dmafini(device_t dev); static void ahci_slotsalloc(device_t dev); static void ahci_slotsfree(device_t dev); static void ahci_reset(struct ahci_channel *ch); static void ahci_start(struct ahci_channel *ch, int fbs); static void ahci_stop(struct ahci_channel *ch); static void ahci_clo(struct ahci_channel *ch); static void ahci_start_fr(struct ahci_channel *ch); static void ahci_stop_fr(struct ahci_channel *ch); static int ahci_sata_connect(struct ahci_channel *ch); static int ahci_sata_phy_reset(struct ahci_channel *ch); static int ahci_wait_ready(struct ahci_channel *ch, int t, int t0); static void ahci_issue_recovery(struct ahci_channel *ch); static void ahci_process_read_log(struct ahci_channel *ch, union ccb *ccb); static void ahci_process_request_sense(struct ahci_channel *ch, union ccb *ccb); static void ahciaction(struct cam_sim *sim, union ccb *ccb); static void ahcipoll(struct cam_sim *sim); static MALLOC_DEFINE(M_AHCI, "AHCI driver", "AHCI driver data buffers"); #define recovery_type spriv_field0 #define RECOVERY_NONE 0 #define RECOVERY_READ_LOG 1 #define RECOVERY_REQUEST_SENSE 2 #define recovery_slot spriv_field1 -#ifdef __powerpc64__ -#define AHCI_BUS_SPACE_MAXADDR_31BIT 0x7FFFFFFFU - -#define AHCI_BUS_SPACE_MAXADDR(quirks) \ - (quirks & AHCI_Q_DMA31 ? AHCI_BUS_SPACE_MAXADDR_31BIT : \ - BUS_SPACE_MAXADDR) - -#define AHCI_BUS_SPACE_MAXADDR_32BIT(quirks) \ - (quirks & AHCI_Q_DMA31 ? AHCI_BUS_SPACE_MAXADDR_31BIT : \ - BUS_SPACE_MAXADDR_32BIT) -#else -#define AHCI_BUS_SPACE_MAXADDR(quirks) BUS_SPACE_MAXADDR -#define AHCI_BUS_SPACE_MAXADDR_32BIT(quirks) BUS_SPACE_MAXADDR_32BIT -#endif - int ahci_ctlr_setup(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); /* Clear interrupts */ ATA_OUTL(ctlr->r_mem, AHCI_IS, ATA_INL(ctlr->r_mem, AHCI_IS)); /* Configure CCC */ if (ctlr->ccc) { ATA_OUTL(ctlr->r_mem, AHCI_CCCP, ATA_INL(ctlr->r_mem, AHCI_PI)); ATA_OUTL(ctlr->r_mem, AHCI_CCCC, (ctlr->ccc << AHCI_CCCC_TV_SHIFT) | (4 << AHCI_CCCC_CC_SHIFT) | AHCI_CCCC_EN); ctlr->cccv = (ATA_INL(ctlr->r_mem, AHCI_CCCC) & AHCI_CCCC_INT_MASK) >> AHCI_CCCC_INT_SHIFT; if (bootverbose) { device_printf(dev, "CCC with %dms/4cmd enabled on vector %d\n", ctlr->ccc, ctlr->cccv); } } /* Enable AHCI interrupts */ ATA_OUTL(ctlr->r_mem, AHCI_GHC, ATA_INL(ctlr->r_mem, AHCI_GHC) | AHCI_GHC_IE); return (0); } int ahci_ctlr_reset(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); int timeout; /* Enable AHCI mode */ ATA_OUTL(ctlr->r_mem, AHCI_GHC, AHCI_GHC_AE); /* Reset AHCI controller */ ATA_OUTL(ctlr->r_mem, AHCI_GHC, AHCI_GHC_AE|AHCI_GHC_HR); for (timeout = 1000; timeout > 0; timeout--) { DELAY(1000); if ((ATA_INL(ctlr->r_mem, AHCI_GHC) & AHCI_GHC_HR) == 0) break; } if (timeout == 0) { device_printf(dev, "AHCI controller reset failure\n"); return (ENXIO); } /* Reenable AHCI mode */ ATA_OUTL(ctlr->r_mem, AHCI_GHC, AHCI_GHC_AE); if (ctlr->quirks & AHCI_Q_RESTORE_CAP) { /* * Restore capability field. * This is write to a read-only register to restore its state. * On fully standard-compliant hardware this is not needed and * this operation shall not take place. See ahci_pci.c for * platforms using this quirk. */ ATA_OUTL(ctlr->r_mem, AHCI_CAP, ctlr->caps); } return (0); } int ahci_attach(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); int error, i, speed, unit; uint32_t u, version; device_t child; ctlr->dev = dev; ctlr->ccc = 0; resource_int_value(device_get_name(dev), device_get_unit(dev), "ccc", &ctlr->ccc); /* Setup our own memory management for channels. */ ctlr->sc_iomem.rm_start = rman_get_start(ctlr->r_mem); ctlr->sc_iomem.rm_end = rman_get_end(ctlr->r_mem); ctlr->sc_iomem.rm_type = RMAN_ARRAY; ctlr->sc_iomem.rm_descr = "I/O memory addresses"; if ((error = rman_init(&ctlr->sc_iomem)) != 0) { ahci_free_mem(dev); return (error); } if ((error = rman_manage_region(&ctlr->sc_iomem, rman_get_start(ctlr->r_mem), rman_get_end(ctlr->r_mem))) != 0) { ahci_free_mem(dev); rman_fini(&ctlr->sc_iomem); return (error); } /* Get the HW capabilities */ version = ATA_INL(ctlr->r_mem, AHCI_VS); ctlr->caps = ATA_INL(ctlr->r_mem, AHCI_CAP); if (version >= 0x00010200) ctlr->caps2 = ATA_INL(ctlr->r_mem, AHCI_CAP2); if (ctlr->caps & AHCI_CAP_EMS) ctlr->capsem = ATA_INL(ctlr->r_mem, AHCI_EM_CTL); if (ctlr->quirks & AHCI_Q_FORCE_PI) { /* * Enable ports. * The spec says that BIOS sets up bits corresponding to * available ports. On platforms where this information * is missing, the driver can define available ports on its own. */ int nports = (ctlr->caps & AHCI_CAP_NPMASK) + 1; int nmask = (1 << nports) - 1; ATA_OUTL(ctlr->r_mem, AHCI_PI, nmask); device_printf(dev, "Forcing PI to %d ports (mask = %x)\n", nports, nmask); } ctlr->ichannels = ATA_INL(ctlr->r_mem, AHCI_PI); /* Identify and set separate quirks for HBA and RAID f/w Marvells. */ if ((ctlr->quirks & AHCI_Q_ALTSIG) && (ctlr->caps & AHCI_CAP_SPM) == 0) ctlr->quirks |= AHCI_Q_NOBSYRES; if (ctlr->quirks & AHCI_Q_1CH) { ctlr->caps &= ~AHCI_CAP_NPMASK; ctlr->ichannels &= 0x01; } if (ctlr->quirks & AHCI_Q_2CH) { ctlr->caps &= ~AHCI_CAP_NPMASK; ctlr->caps |= 1; ctlr->ichannels &= 0x03; } if (ctlr->quirks & AHCI_Q_4CH) { ctlr->caps &= ~AHCI_CAP_NPMASK; ctlr->caps |= 3; ctlr->ichannels &= 0x0f; } ctlr->channels = MAX(flsl(ctlr->ichannels), (ctlr->caps & AHCI_CAP_NPMASK) + 1); if (ctlr->quirks & AHCI_Q_NOPMP) ctlr->caps &= ~AHCI_CAP_SPM; if (ctlr->quirks & AHCI_Q_NONCQ) ctlr->caps &= ~AHCI_CAP_SNCQ; if ((ctlr->caps & AHCI_CAP_CCCS) == 0) ctlr->ccc = 0; ctlr->emloc = ATA_INL(ctlr->r_mem, AHCI_EM_LOC); /* Create controller-wide DMA tag. */ if (bus_dma_tag_create(bus_get_dma_tag(dev), 1, 0, - (ctlr->caps & AHCI_CAP_64BIT) ? - AHCI_BUS_SPACE_MAXADDR(ctlr->quirks) : - AHCI_BUS_SPACE_MAXADDR_32BIT(ctlr->quirks), - AHCI_BUS_SPACE_MAXADDR(ctlr->quirks), NULL, NULL, + (ctlr->caps & AHCI_CAP_64BIT) ? BUS_SPACE_MAXADDR : + BUS_SPACE_MAXADDR_32BIT, BUS_SPACE_MAXADDR, NULL, NULL, BUS_SPACE_MAXSIZE, BUS_SPACE_UNRESTRICTED, BUS_SPACE_MAXSIZE, ctlr->dma_coherent ? BUS_DMA_COHERENT : 0, NULL, NULL, &ctlr->dma_tag)) { ahci_free_mem(dev); rman_fini(&ctlr->sc_iomem); return (ENXIO); } ahci_ctlr_setup(dev); /* Setup interrupts. */ if ((error = ahci_setup_interrupt(dev)) != 0) { bus_dma_tag_destroy(ctlr->dma_tag); ahci_free_mem(dev); rman_fini(&ctlr->sc_iomem); return (error); } i = 0; for (u = ctlr->ichannels; u != 0; u >>= 1) i += (u & 1); ctlr->direct = (ctlr->msi && (ctlr->numirqs > 1 || i <= 3)); resource_int_value(device_get_name(dev), device_get_unit(dev), "direct", &ctlr->direct); /* Announce HW capabilities. */ speed = (ctlr->caps & AHCI_CAP_ISS) >> AHCI_CAP_ISS_SHIFT; device_printf(dev, "AHCI v%x.%02x with %d %sGbps ports, Port Multiplier %s%s\n", ((version >> 20) & 0xf0) + ((version >> 16) & 0x0f), ((version >> 4) & 0xf0) + (version & 0x0f), (ctlr->caps & AHCI_CAP_NPMASK) + 1, ((speed == 1) ? "1.5":((speed == 2) ? "3": ((speed == 3) ? "6":"?"))), (ctlr->caps & AHCI_CAP_SPM) ? "supported" : "not supported", (ctlr->caps & AHCI_CAP_FBSS) ? " with FBS" : ""); if (ctlr->quirks != 0) { device_printf(dev, "quirks=0x%b\n", ctlr->quirks, AHCI_Q_BIT_STRING); } if (bootverbose) { device_printf(dev, "Caps:%s%s%s%s%s%s%s%s %sGbps", (ctlr->caps & AHCI_CAP_64BIT) ? " 64bit":"", (ctlr->caps & AHCI_CAP_SNCQ) ? " NCQ":"", (ctlr->caps & AHCI_CAP_SSNTF) ? " SNTF":"", (ctlr->caps & AHCI_CAP_SMPS) ? " MPS":"", (ctlr->caps & AHCI_CAP_SSS) ? " SS":"", (ctlr->caps & AHCI_CAP_SALP) ? " ALP":"", (ctlr->caps & AHCI_CAP_SAL) ? " AL":"", (ctlr->caps & AHCI_CAP_SCLO) ? " CLO":"", ((speed == 1) ? "1.5":((speed == 2) ? "3": ((speed == 3) ? "6":"?")))); printf("%s%s%s%s%s%s %dcmd%s%s%s %dports\n", (ctlr->caps & AHCI_CAP_SAM) ? " AM":"", (ctlr->caps & AHCI_CAP_SPM) ? " PM":"", (ctlr->caps & AHCI_CAP_FBSS) ? " FBS":"", (ctlr->caps & AHCI_CAP_PMD) ? " PMD":"", (ctlr->caps & AHCI_CAP_SSC) ? " SSC":"", (ctlr->caps & AHCI_CAP_PSC) ? " PSC":"", ((ctlr->caps & AHCI_CAP_NCS) >> AHCI_CAP_NCS_SHIFT) + 1, (ctlr->caps & AHCI_CAP_CCCS) ? " CCC":"", (ctlr->caps & AHCI_CAP_EMS) ? " EM":"", (ctlr->caps & AHCI_CAP_SXS) ? " eSATA":"", (ctlr->caps & AHCI_CAP_NPMASK) + 1); } if (bootverbose && version >= 0x00010200) { device_printf(dev, "Caps2:%s%s%s%s%s%s\n", (ctlr->caps2 & AHCI_CAP2_DESO) ? " DESO":"", (ctlr->caps2 & AHCI_CAP2_SADM) ? " SADM":"", (ctlr->caps2 & AHCI_CAP2_SDS) ? " SDS":"", (ctlr->caps2 & AHCI_CAP2_APST) ? " APST":"", (ctlr->caps2 & AHCI_CAP2_NVMP) ? " NVMP":"", (ctlr->caps2 & AHCI_CAP2_BOH) ? " BOH":""); } /* Attach all channels on this controller */ for (unit = 0; unit < ctlr->channels; unit++) { child = device_add_child(dev, "ahcich", -1); if (child == NULL) { device_printf(dev, "failed to add channel device\n"); continue; } device_set_ivars(child, (void *)(intptr_t)unit); if ((ctlr->ichannels & (1 << unit)) == 0) device_disable(child); } if (ctlr->caps & AHCI_CAP_EMS) { child = device_add_child(dev, "ahciem", -1); if (child == NULL) device_printf(dev, "failed to add enclosure device\n"); else device_set_ivars(child, (void *)(intptr_t)-1); } bus_generic_attach(dev); return (0); } int ahci_detach(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); int i; /* Detach & delete all children */ device_delete_children(dev); /* Free interrupts. */ for (i = 0; i < ctlr->numirqs; i++) { if (ctlr->irqs[i].r_irq) { bus_teardown_intr(dev, ctlr->irqs[i].r_irq, ctlr->irqs[i].handle); bus_release_resource(dev, SYS_RES_IRQ, ctlr->irqs[i].r_irq_rid, ctlr->irqs[i].r_irq); } } bus_dma_tag_destroy(ctlr->dma_tag); /* Free memory. */ rman_fini(&ctlr->sc_iomem); ahci_free_mem(dev); return (0); } void ahci_free_mem(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); /* Release memory resources */ if (ctlr->r_mem) bus_release_resource(dev, SYS_RES_MEMORY, ctlr->r_rid, ctlr->r_mem); if (ctlr->r_msix_table) bus_release_resource(dev, SYS_RES_MEMORY, ctlr->r_msix_tab_rid, ctlr->r_msix_table); if (ctlr->r_msix_pba) bus_release_resource(dev, SYS_RES_MEMORY, ctlr->r_msix_pba_rid, ctlr->r_msix_pba); ctlr->r_msix_pba = ctlr->r_mem = ctlr->r_msix_table = NULL; } int ahci_setup_interrupt(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); int i; /* Check for single MSI vector fallback. */ if (ctlr->numirqs > 1 && (ATA_INL(ctlr->r_mem, AHCI_GHC) & AHCI_GHC_MRSM) != 0) { device_printf(dev, "Falling back to one MSI\n"); ctlr->numirqs = 1; } /* Ensure we don't overrun irqs. */ if (ctlr->numirqs > AHCI_MAX_IRQS) { device_printf(dev, "Too many irqs %d > %d (clamping)\n", ctlr->numirqs, AHCI_MAX_IRQS); ctlr->numirqs = AHCI_MAX_IRQS; } /* Allocate all IRQs. */ for (i = 0; i < ctlr->numirqs; i++) { ctlr->irqs[i].ctlr = ctlr; ctlr->irqs[i].r_irq_rid = i + (ctlr->msi ? 1 : 0); if (ctlr->channels == 1 && !ctlr->ccc && ctlr->msi) ctlr->irqs[i].mode = AHCI_IRQ_MODE_ONE; else if (ctlr->numirqs == 1 || i >= ctlr->channels || (ctlr->ccc && i == ctlr->cccv)) ctlr->irqs[i].mode = AHCI_IRQ_MODE_ALL; else if (ctlr->channels > ctlr->numirqs && i == ctlr->numirqs - 1) ctlr->irqs[i].mode = AHCI_IRQ_MODE_AFTER; else ctlr->irqs[i].mode = AHCI_IRQ_MODE_ONE; if (!(ctlr->irqs[i].r_irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, &ctlr->irqs[i].r_irq_rid, RF_SHAREABLE | RF_ACTIVE))) { device_printf(dev, "unable to map interrupt\n"); return (ENXIO); } if ((bus_setup_intr(dev, ctlr->irqs[i].r_irq, ATA_INTR_FLAGS, NULL, (ctlr->irqs[i].mode != AHCI_IRQ_MODE_ONE) ? ahci_intr : ((ctlr->quirks & AHCI_Q_EDGEIS) ? ahci_intr_one_edge : ahci_intr_one), &ctlr->irqs[i], &ctlr->irqs[i].handle))) { /* SOS XXX release r_irq */ device_printf(dev, "unable to setup interrupt\n"); return (ENXIO); } if (ctlr->numirqs > 1) { bus_describe_intr(dev, ctlr->irqs[i].r_irq, ctlr->irqs[i].handle, ctlr->irqs[i].mode == AHCI_IRQ_MODE_ONE ? "ch%d" : "%d", i); } } return (0); } /* * Common case interrupt handler. */ static void ahci_intr(void *data) { struct ahci_controller_irq *irq = data; struct ahci_controller *ctlr = irq->ctlr; u_int32_t is, ise = 0; void *arg; int unit; if (irq->mode == AHCI_IRQ_MODE_ALL) { unit = 0; if (ctlr->ccc) is = ctlr->ichannels; else is = ATA_INL(ctlr->r_mem, AHCI_IS); } else { /* AHCI_IRQ_MODE_AFTER */ unit = irq->r_irq_rid - 1; is = ATA_INL(ctlr->r_mem, AHCI_IS); is &= (0xffffffff << unit); } /* CCC interrupt is edge triggered. */ if (ctlr->ccc) ise = 1 << ctlr->cccv; /* Some controllers have edge triggered IS. */ if (ctlr->quirks & AHCI_Q_EDGEIS) ise |= is; if (ise != 0) ATA_OUTL(ctlr->r_mem, AHCI_IS, ise); for (; unit < ctlr->channels; unit++) { if ((is & (1 << unit)) != 0 && (arg = ctlr->interrupt[unit].argument)) { ctlr->interrupt[unit].function(arg); } } /* AHCI declares level triggered IS. */ if (!(ctlr->quirks & AHCI_Q_EDGEIS)) ATA_OUTL(ctlr->r_mem, AHCI_IS, is); ATA_RBL(ctlr->r_mem, AHCI_IS); } /* * Simplified interrupt handler for multivector MSI mode. */ static void ahci_intr_one(void *data) { struct ahci_controller_irq *irq = data; struct ahci_controller *ctlr = irq->ctlr; void *arg; int unit; unit = irq->r_irq_rid - 1; if ((arg = ctlr->interrupt[unit].argument)) ctlr->interrupt[unit].function(arg); /* AHCI declares level triggered IS. */ ATA_OUTL(ctlr->r_mem, AHCI_IS, 1 << unit); ATA_RBL(ctlr->r_mem, AHCI_IS); } static void ahci_intr_one_edge(void *data) { struct ahci_controller_irq *irq = data; struct ahci_controller *ctlr = irq->ctlr; void *arg; int unit; unit = irq->r_irq_rid - 1; /* Some controllers have edge triggered IS. */ ATA_OUTL(ctlr->r_mem, AHCI_IS, 1 << unit); if ((arg = ctlr->interrupt[unit].argument)) ctlr->interrupt[unit].function(arg); ATA_RBL(ctlr->r_mem, AHCI_IS); } struct resource * ahci_alloc_resource(device_t dev, device_t child, int type, int *rid, rman_res_t start, rman_res_t end, rman_res_t count, u_int flags) { struct ahci_controller *ctlr = device_get_softc(dev); struct resource *res; rman_res_t st; int offset, size, unit; unit = (intptr_t)device_get_ivars(child); res = NULL; switch (type) { case SYS_RES_MEMORY: if (unit >= 0) { offset = AHCI_OFFSET + (unit << 7); size = 128; } else if (*rid == 0) { offset = AHCI_EM_CTL; size = 4; } else { offset = (ctlr->emloc & 0xffff0000) >> 14; size = (ctlr->emloc & 0x0000ffff) << 2; if (*rid != 1) { if (*rid == 2 && (ctlr->capsem & (AHCI_EM_XMT | AHCI_EM_SMB)) == 0) offset += size; else break; } } st = rman_get_start(ctlr->r_mem); res = rman_reserve_resource(&ctlr->sc_iomem, st + offset, st + offset + size - 1, size, RF_ACTIVE, child); if (res) { bus_space_handle_t bsh; bus_space_tag_t bst; bsh = rman_get_bushandle(ctlr->r_mem); bst = rman_get_bustag(ctlr->r_mem); bus_space_subregion(bst, bsh, offset, 128, &bsh); rman_set_bushandle(res, bsh); rman_set_bustag(res, bst); } break; case SYS_RES_IRQ: if (*rid == ATA_IRQ_RID) res = ctlr->irqs[0].r_irq; break; } return (res); } int ahci_release_resource(device_t dev, device_t child, int type, int rid, struct resource *r) { switch (type) { case SYS_RES_MEMORY: rman_release_resource(r); return (0); case SYS_RES_IRQ: if (rid != ATA_IRQ_RID) return (ENOENT); return (0); } return (EINVAL); } int ahci_setup_intr(device_t dev, device_t child, struct resource *irq, int flags, driver_filter_t *filter, driver_intr_t *function, void *argument, void **cookiep) { struct ahci_controller *ctlr = device_get_softc(dev); int unit = (intptr_t)device_get_ivars(child); if (filter != NULL) { printf("ahci.c: we cannot use a filter here\n"); return (EINVAL); } ctlr->interrupt[unit].function = function; ctlr->interrupt[unit].argument = argument; return (0); } int ahci_teardown_intr(device_t dev, device_t child, struct resource *irq, void *cookie) { struct ahci_controller *ctlr = device_get_softc(dev); int unit = (intptr_t)device_get_ivars(child); ctlr->interrupt[unit].function = NULL; ctlr->interrupt[unit].argument = NULL; return (0); } int ahci_print_child(device_t dev, device_t child) { int retval, channel; retval = bus_print_child_header(dev, child); channel = (int)(intptr_t)device_get_ivars(child); if (channel >= 0) retval += printf(" at channel %d", channel); retval += bus_print_child_footer(dev, child); return (retval); } int ahci_child_location_str(device_t dev, device_t child, char *buf, size_t buflen) { int channel; channel = (int)(intptr_t)device_get_ivars(child); if (channel >= 0) snprintf(buf, buflen, "channel=%d", channel); return (0); } bus_dma_tag_t ahci_get_dma_tag(device_t dev, device_t child) { struct ahci_controller *ctlr = device_get_softc(dev); return (ctlr->dma_tag); } static int ahci_ch_probe(device_t dev) { device_set_desc_copy(dev, "AHCI channel"); return (BUS_PROBE_DEFAULT); } static int ahci_ch_attach(device_t dev) { struct ahci_controller *ctlr = device_get_softc(device_get_parent(dev)); struct ahci_channel *ch = device_get_softc(dev); struct cam_devq *devq; int rid, error, i, sata_rev = 0; u_int32_t version; ch->dev = dev; ch->unit = (intptr_t)device_get_ivars(dev); ch->caps = ctlr->caps; ch->caps2 = ctlr->caps2; ch->start = ctlr->ch_start; ch->quirks = ctlr->quirks; ch->vendorid = ctlr->vendorid; ch->deviceid = ctlr->deviceid; ch->subvendorid = ctlr->subvendorid; ch->subdeviceid = ctlr->subdeviceid; ch->numslots = ((ch->caps & AHCI_CAP_NCS) >> AHCI_CAP_NCS_SHIFT) + 1; mtx_init(&ch->mtx, "AHCI channel lock", NULL, MTX_DEF); ch->pm_level = 0; resource_int_value(device_get_name(dev), device_get_unit(dev), "pm_level", &ch->pm_level); STAILQ_INIT(&ch->doneq); if (ch->pm_level > 3) callout_init_mtx(&ch->pm_timer, &ch->mtx, 0); callout_init_mtx(&ch->reset_timer, &ch->mtx, 0); /* JMicron external ports (0) sometimes limited */ if ((ctlr->quirks & AHCI_Q_SATA1_UNIT0) && ch->unit == 0) sata_rev = 1; if (ch->quirks & AHCI_Q_SATA2) sata_rev = 2; resource_int_value(device_get_name(dev), device_get_unit(dev), "sata_rev", &sata_rev); for (i = 0; i < 16; i++) { ch->user[i].revision = sata_rev; ch->user[i].mode = 0; ch->user[i].bytecount = 8192; ch->user[i].tags = ch->numslots; ch->user[i].caps = 0; ch->curr[i] = ch->user[i]; if (ch->pm_level) { ch->user[i].caps = CTS_SATA_CAPS_H_PMREQ | CTS_SATA_CAPS_H_APST | CTS_SATA_CAPS_D_PMREQ | CTS_SATA_CAPS_D_APST; } ch->user[i].caps |= CTS_SATA_CAPS_H_DMAAA | CTS_SATA_CAPS_H_AN; } rid = 0; if (!(ch->r_mem = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid, RF_ACTIVE))) return (ENXIO); ch->chcaps = ATA_INL(ch->r_mem, AHCI_P_CMD); version = ATA_INL(ctlr->r_mem, AHCI_VS); if (version < 0x00010200 && (ctlr->caps & AHCI_CAP_FBSS)) ch->chcaps |= AHCI_P_CMD_FBSCP; if (ch->caps2 & AHCI_CAP2_SDS) ch->chscaps = ATA_INL(ch->r_mem, AHCI_P_DEVSLP); if (bootverbose) { device_printf(dev, "Caps:%s%s%s%s%s%s\n", (ch->chcaps & AHCI_P_CMD_HPCP) ? " HPCP":"", (ch->chcaps & AHCI_P_CMD_MPSP) ? " MPSP":"", (ch->chcaps & AHCI_P_CMD_CPD) ? " CPD":"", (ch->chcaps & AHCI_P_CMD_ESP) ? " ESP":"", (ch->chcaps & AHCI_P_CMD_FBSCP) ? " FBSCP":"", (ch->chscaps & AHCI_P_DEVSLP_DSP) ? " DSP":""); } ahci_dmainit(dev); ahci_slotsalloc(dev); mtx_lock(&ch->mtx); ahci_ch_init(dev); rid = ATA_IRQ_RID; if (!(ch->r_irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, &rid, RF_SHAREABLE | RF_ACTIVE))) { device_printf(dev, "Unable to map interrupt\n"); error = ENXIO; goto err0; } if ((bus_setup_intr(dev, ch->r_irq, ATA_INTR_FLAGS, NULL, ctlr->direct ? ahci_ch_intr_direct : ahci_ch_intr, ch, &ch->ih))) { device_printf(dev, "Unable to setup interrupt\n"); error = ENXIO; goto err1; } /* Create the device queue for our SIM. */ devq = cam_simq_alloc(ch->numslots); if (devq == NULL) { device_printf(dev, "Unable to allocate simq\n"); error = ENOMEM; goto err1; } /* Construct SIM entry */ ch->sim = cam_sim_alloc(ahciaction, ahcipoll, "ahcich", ch, device_get_unit(dev), (struct mtx *)&ch->mtx, (ch->quirks & AHCI_Q_NOCCS) ? 1 : min(2, ch->numslots), (ch->caps & AHCI_CAP_SNCQ) ? ch->numslots : 0, devq); if (ch->sim == NULL) { cam_simq_free(devq); device_printf(dev, "unable to allocate sim\n"); error = ENOMEM; goto err1; } if (xpt_bus_register(ch->sim, dev, 0) != CAM_SUCCESS) { device_printf(dev, "unable to register xpt bus\n"); error = ENXIO; goto err2; } if (xpt_create_path(&ch->path, /*periph*/NULL, cam_sim_path(ch->sim), CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD) != CAM_REQ_CMP) { device_printf(dev, "unable to create path\n"); error = ENXIO; goto err3; } if (ch->pm_level > 3) { callout_reset(&ch->pm_timer, (ch->pm_level == 4) ? hz / 1000 : hz / 8, ahci_ch_pm, ch); } mtx_unlock(&ch->mtx); return (0); err3: xpt_bus_deregister(cam_sim_path(ch->sim)); err2: cam_sim_free(ch->sim, /*free_devq*/TRUE); err1: bus_release_resource(dev, SYS_RES_IRQ, ATA_IRQ_RID, ch->r_irq); err0: bus_release_resource(dev, SYS_RES_MEMORY, ch->unit, ch->r_mem); mtx_unlock(&ch->mtx); mtx_destroy(&ch->mtx); return (error); } static int ahci_ch_detach(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); mtx_lock(&ch->mtx); xpt_async(AC_LOST_DEVICE, ch->path, NULL); /* Forget about reset. */ if (ch->resetting) { ch->resetting = 0; xpt_release_simq(ch->sim, TRUE); } xpt_free_path(ch->path); xpt_bus_deregister(cam_sim_path(ch->sim)); cam_sim_free(ch->sim, /*free_devq*/TRUE); mtx_unlock(&ch->mtx); if (ch->pm_level > 3) callout_drain(&ch->pm_timer); callout_drain(&ch->reset_timer); bus_teardown_intr(dev, ch->r_irq, ch->ih); bus_release_resource(dev, SYS_RES_IRQ, ATA_IRQ_RID, ch->r_irq); ahci_ch_deinit(dev); ahci_slotsfree(dev); ahci_dmafini(dev); bus_release_resource(dev, SYS_RES_MEMORY, ch->unit, ch->r_mem); mtx_destroy(&ch->mtx); return (0); } static int ahci_ch_init(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); uint64_t work; /* Disable port interrupts */ ATA_OUTL(ch->r_mem, AHCI_P_IE, 0); /* Setup work areas */ work = ch->dma.work_bus + AHCI_CL_OFFSET; ATA_OUTL(ch->r_mem, AHCI_P_CLB, work & 0xffffffff); ATA_OUTL(ch->r_mem, AHCI_P_CLBU, work >> 32); work = ch->dma.rfis_bus; ATA_OUTL(ch->r_mem, AHCI_P_FB, work & 0xffffffff); ATA_OUTL(ch->r_mem, AHCI_P_FBU, work >> 32); /* Activate the channel and power/spin up device */ ATA_OUTL(ch->r_mem, AHCI_P_CMD, (AHCI_P_CMD_ACTIVE | AHCI_P_CMD_POD | AHCI_P_CMD_SUD | ((ch->pm_level == 2 || ch->pm_level == 3) ? AHCI_P_CMD_ALPE : 0) | ((ch->pm_level > 2) ? AHCI_P_CMD_ASP : 0 ))); ahci_start_fr(ch); ahci_start(ch, 1); return (0); } static int ahci_ch_deinit(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); /* Disable port interrupts. */ ATA_OUTL(ch->r_mem, AHCI_P_IE, 0); /* Reset command register. */ ahci_stop(ch); ahci_stop_fr(ch); ATA_OUTL(ch->r_mem, AHCI_P_CMD, 0); /* Allow everything, including partial and slumber modes. */ ATA_OUTL(ch->r_mem, AHCI_P_SCTL, 0); /* Request slumber mode transition and give some time to get there. */ ATA_OUTL(ch->r_mem, AHCI_P_CMD, AHCI_P_CMD_SLUMBER); DELAY(100); /* Disable PHY. */ ATA_OUTL(ch->r_mem, AHCI_P_SCTL, ATA_SC_DET_DISABLE); return (0); } static int ahci_ch_suspend(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); mtx_lock(&ch->mtx); xpt_freeze_simq(ch->sim, 1); /* Forget about reset. */ if (ch->resetting) { ch->resetting = 0; callout_stop(&ch->reset_timer); xpt_release_simq(ch->sim, TRUE); } while (ch->oslots) msleep(ch, &ch->mtx, PRIBIO, "ahcisusp", hz/100); ahci_ch_deinit(dev); mtx_unlock(&ch->mtx); return (0); } static int ahci_ch_resume(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); mtx_lock(&ch->mtx); ahci_ch_init(dev); ahci_reset(ch); xpt_release_simq(ch->sim, TRUE); mtx_unlock(&ch->mtx); return (0); } devclass_t ahcich_devclass; static device_method_t ahcich_methods[] = { DEVMETHOD(device_probe, ahci_ch_probe), DEVMETHOD(device_attach, ahci_ch_attach), DEVMETHOD(device_detach, ahci_ch_detach), DEVMETHOD(device_suspend, ahci_ch_suspend), DEVMETHOD(device_resume, ahci_ch_resume), DEVMETHOD_END }; static driver_t ahcich_driver = { "ahcich", ahcich_methods, sizeof(struct ahci_channel) }; DRIVER_MODULE(ahcich, ahci, ahcich_driver, ahcich_devclass, NULL, NULL); struct ahci_dc_cb_args { bus_addr_t maddr; int error; }; static void ahci_dmainit(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); struct ahci_dc_cb_args dcba; size_t rfsize; /* Command area. */ if (bus_dma_tag_create(bus_get_dma_tag(dev), 1024, 0, - AHCI_BUS_SPACE_MAXADDR(ch->quirks), - AHCI_BUS_SPACE_MAXADDR(ch->quirks), + BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, AHCI_WORK_SIZE, 1, AHCI_WORK_SIZE, 0, NULL, NULL, &ch->dma.work_tag)) goto error; if (bus_dmamem_alloc(ch->dma.work_tag, (void **)&ch->dma.work, BUS_DMA_ZERO, &ch->dma.work_map)) goto error; if (bus_dmamap_load(ch->dma.work_tag, ch->dma.work_map, ch->dma.work, AHCI_WORK_SIZE, ahci_dmasetupc_cb, &dcba, 0) || dcba.error) { bus_dmamem_free(ch->dma.work_tag, ch->dma.work, ch->dma.work_map); goto error; } ch->dma.work_bus = dcba.maddr; /* FIS receive area. */ if (ch->chcaps & AHCI_P_CMD_FBSCP) rfsize = 4096; else rfsize = 256; if (bus_dma_tag_create(bus_get_dma_tag(dev), rfsize, 0, - AHCI_BUS_SPACE_MAXADDR(ch->quirks), - AHCI_BUS_SPACE_MAXADDR(ch->quirks), + BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, rfsize, 1, rfsize, 0, NULL, NULL, &ch->dma.rfis_tag)) goto error; if (bus_dmamem_alloc(ch->dma.rfis_tag, (void **)&ch->dma.rfis, 0, &ch->dma.rfis_map)) goto error; if (bus_dmamap_load(ch->dma.rfis_tag, ch->dma.rfis_map, ch->dma.rfis, rfsize, ahci_dmasetupc_cb, &dcba, 0) || dcba.error) { bus_dmamem_free(ch->dma.rfis_tag, ch->dma.rfis, ch->dma.rfis_map); goto error; } ch->dma.rfis_bus = dcba.maddr; /* Data area. */ if (bus_dma_tag_create(bus_get_dma_tag(dev), 2, 0, - AHCI_BUS_SPACE_MAXADDR(ch->quirks), - AHCI_BUS_SPACE_MAXADDR(ch->quirks), + BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, AHCI_SG_ENTRIES * PAGE_SIZE * ch->numslots, AHCI_SG_ENTRIES, AHCI_PRD_MAX, 0, busdma_lock_mutex, &ch->mtx, &ch->dma.data_tag)) { goto error; } return; error: device_printf(dev, "WARNING - DMA initialization failed\n"); ahci_dmafini(dev); } static void ahci_dmasetupc_cb(void *xsc, bus_dma_segment_t *segs, int nsegs, int error) { struct ahci_dc_cb_args *dcba = (struct ahci_dc_cb_args *)xsc; if (!(dcba->error = error)) dcba->maddr = segs[0].ds_addr; } static void ahci_dmafini(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); if (ch->dma.data_tag) { bus_dma_tag_destroy(ch->dma.data_tag); ch->dma.data_tag = NULL; } if (ch->dma.rfis_bus) { bus_dmamap_unload(ch->dma.rfis_tag, ch->dma.rfis_map); bus_dmamem_free(ch->dma.rfis_tag, ch->dma.rfis, ch->dma.rfis_map); ch->dma.rfis_bus = 0; ch->dma.rfis = NULL; } if (ch->dma.work_bus) { bus_dmamap_unload(ch->dma.work_tag, ch->dma.work_map); bus_dmamem_free(ch->dma.work_tag, ch->dma.work, ch->dma.work_map); ch->dma.work_bus = 0; ch->dma.work = NULL; } if (ch->dma.work_tag) { bus_dma_tag_destroy(ch->dma.work_tag); ch->dma.work_tag = NULL; } } static void ahci_slotsalloc(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); int i; /* Alloc and setup command/dma slots */ bzero(ch->slot, sizeof(ch->slot)); for (i = 0; i < ch->numslots; i++) { struct ahci_slot *slot = &ch->slot[i]; slot->ch = ch; slot->slot = i; slot->state = AHCI_SLOT_EMPTY; slot->ccb = NULL; callout_init_mtx(&slot->timeout, &ch->mtx, 0); if (bus_dmamap_create(ch->dma.data_tag, 0, &slot->dma.data_map)) device_printf(ch->dev, "FAILURE - create data_map\n"); } } static void ahci_slotsfree(device_t dev) { struct ahci_channel *ch = device_get_softc(dev); int i; /* Free all dma slots */ for (i = 0; i < ch->numslots; i++) { struct ahci_slot *slot = &ch->slot[i]; callout_drain(&slot->timeout); if (slot->dma.data_map) { bus_dmamap_destroy(ch->dma.data_tag, slot->dma.data_map); slot->dma.data_map = NULL; } } } static int ahci_phy_check_events(struct ahci_channel *ch, u_int32_t serr) { if (((ch->pm_level == 0) && (serr & ATA_SE_PHY_CHANGED)) || ((ch->pm_level != 0 || ch->listening) && (serr & ATA_SE_EXCHANGED))) { u_int32_t status = ATA_INL(ch->r_mem, AHCI_P_SSTS); union ccb *ccb; if (bootverbose) { if ((status & ATA_SS_DET_MASK) != ATA_SS_DET_NO_DEVICE) device_printf(ch->dev, "CONNECT requested\n"); else device_printf(ch->dev, "DISCONNECT requested\n"); } ahci_reset(ch); if ((ccb = xpt_alloc_ccb_nowait()) == NULL) return (0); if (xpt_create_path(&ccb->ccb_h.path, NULL, cam_sim_path(ch->sim), CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD) != CAM_REQ_CMP) { xpt_free_ccb(ccb); return (0); } xpt_rescan(ccb); return (1); } return (0); } static void ahci_cpd_check_events(struct ahci_channel *ch) { u_int32_t status; union ccb *ccb; device_t dev; if (ch->pm_level == 0) return; status = ATA_INL(ch->r_mem, AHCI_P_CMD); if ((status & AHCI_P_CMD_CPD) == 0) return; if (bootverbose) { dev = ch->dev; if (status & AHCI_P_CMD_CPS) { device_printf(dev, "COLD CONNECT requested\n"); } else device_printf(dev, "COLD DISCONNECT requested\n"); } ahci_reset(ch); if ((ccb = xpt_alloc_ccb_nowait()) == NULL) return; if (xpt_create_path(&ccb->ccb_h.path, NULL, cam_sim_path(ch->sim), CAM_TARGET_WILDCARD, CAM_LUN_WILDCARD) != CAM_REQ_CMP) { xpt_free_ccb(ccb); return; } xpt_rescan(ccb); } static void ahci_notify_events(struct ahci_channel *ch, u_int32_t status) { struct cam_path *dpath; int i; if (ch->caps & AHCI_CAP_SSNTF) ATA_OUTL(ch->r_mem, AHCI_P_SNTF, status); if (bootverbose) device_printf(ch->dev, "SNTF 0x%04x\n", status); for (i = 0; i < 16; i++) { if ((status & (1 << i)) == 0) continue; if (xpt_create_path(&dpath, NULL, xpt_path_path_id(ch->path), i, 0) == CAM_REQ_CMP) { xpt_async(AC_SCSI_AEN, dpath, NULL); xpt_free_path(dpath); } } } static void ahci_done(struct ahci_channel *ch, union ccb *ccb) { mtx_assert(&ch->mtx, MA_OWNED); if ((ccb->ccb_h.func_code & XPT_FC_QUEUED) == 0 || ch->batch == 0) { xpt_done(ccb); return; } STAILQ_INSERT_TAIL(&ch->doneq, &ccb->ccb_h, sim_links.stqe); } static void ahci_ch_intr(void *arg) { struct ahci_channel *ch = (struct ahci_channel *)arg; uint32_t istatus; /* Read interrupt statuses. */ istatus = ATA_INL(ch->r_mem, AHCI_P_IS); mtx_lock(&ch->mtx); ahci_ch_intr_main(ch, istatus); mtx_unlock(&ch->mtx); } static void ahci_ch_intr_direct(void *arg) { struct ahci_channel *ch = (struct ahci_channel *)arg; struct ccb_hdr *ccb_h; uint32_t istatus; STAILQ_HEAD(, ccb_hdr) tmp_doneq = STAILQ_HEAD_INITIALIZER(tmp_doneq); /* Read interrupt statuses. */ istatus = ATA_INL(ch->r_mem, AHCI_P_IS); mtx_lock(&ch->mtx); ch->batch = 1; ahci_ch_intr_main(ch, istatus); ch->batch = 0; /* * Prevent the possibility of issues caused by processing the queue * while unlocked below by moving the contents to a local queue. */ STAILQ_CONCAT(&tmp_doneq, &ch->doneq); mtx_unlock(&ch->mtx); while ((ccb_h = STAILQ_FIRST(&tmp_doneq)) != NULL) { STAILQ_REMOVE_HEAD(&tmp_doneq, sim_links.stqe); xpt_done_direct((union ccb *)ccb_h); } } static void ahci_ch_pm(void *arg) { struct ahci_channel *ch = (struct ahci_channel *)arg; uint32_t work; if (ch->numrslots != 0) return; work = ATA_INL(ch->r_mem, AHCI_P_CMD); if (ch->pm_level == 4) work |= AHCI_P_CMD_PARTIAL; else work |= AHCI_P_CMD_SLUMBER; ATA_OUTL(ch->r_mem, AHCI_P_CMD, work); } static void ahci_ch_intr_main(struct ahci_channel *ch, uint32_t istatus) { uint32_t cstatus, serr = 0, sntf = 0, ok, err; enum ahci_err_type et; int i, ccs, port, reset = 0; /* Clear interrupt statuses. */ ATA_OUTL(ch->r_mem, AHCI_P_IS, istatus); /* Read command statuses. */ if (ch->numtslots != 0) cstatus = ATA_INL(ch->r_mem, AHCI_P_SACT); else cstatus = 0; if (ch->numrslots != ch->numtslots) cstatus |= ATA_INL(ch->r_mem, AHCI_P_CI); /* Read SNTF in one of possible ways. */ if ((istatus & AHCI_P_IX_SDB) && (ch->pm_present || ch->curr[0].atapi != 0)) { if (ch->caps & AHCI_CAP_SSNTF) sntf = ATA_INL(ch->r_mem, AHCI_P_SNTF); else if (ch->fbs_enabled) { u_int8_t *fis = ch->dma.rfis + 0x58; for (i = 0; i < 16; i++) { if (fis[1] & 0x80) { fis[1] &= 0x7f; sntf |= 1 << i; } fis += 256; } } else { u_int8_t *fis = ch->dma.rfis + 0x58; if (fis[1] & 0x80) sntf = (1 << (fis[1] & 0x0f)); } } /* Process PHY events */ if (istatus & (AHCI_P_IX_PC | AHCI_P_IX_PRC | AHCI_P_IX_OF | AHCI_P_IX_IF | AHCI_P_IX_HBD | AHCI_P_IX_HBF | AHCI_P_IX_TFE)) { serr = ATA_INL(ch->r_mem, AHCI_P_SERR); if (serr) { ATA_OUTL(ch->r_mem, AHCI_P_SERR, serr); reset = ahci_phy_check_events(ch, serr); } } /* Process cold presence detection events */ if ((istatus & AHCI_P_IX_CPD) && !reset) ahci_cpd_check_events(ch); /* Process command errors */ if (istatus & (AHCI_P_IX_OF | AHCI_P_IX_IF | AHCI_P_IX_HBD | AHCI_P_IX_HBF | AHCI_P_IX_TFE)) { if (ch->quirks & AHCI_Q_NOCCS) { /* * ASMedia chips sometimes report failed commands as * completed. Count all running commands as failed. */ cstatus |= ch->rslots; /* They also report wrong CCS, so try to guess one. */ ccs = powerof2(cstatus) ? ffs(cstatus) - 1 : -1; } else { ccs = (ATA_INL(ch->r_mem, AHCI_P_CMD) & AHCI_P_CMD_CCS_MASK) >> AHCI_P_CMD_CCS_SHIFT; } //device_printf(dev, "%s ERROR is %08x cs %08x ss %08x rs %08x tfd %02x serr %08x fbs %08x ccs %d\n", // __func__, istatus, cstatus, sstatus, ch->rslots, ATA_INL(ch->r_mem, AHCI_P_TFD), // serr, ATA_INL(ch->r_mem, AHCI_P_FBS), ccs); port = -1; if (ch->fbs_enabled) { uint32_t fbs = ATA_INL(ch->r_mem, AHCI_P_FBS); if (fbs & AHCI_P_FBS_SDE) { port = (fbs & AHCI_P_FBS_DWE) >> AHCI_P_FBS_DWE_SHIFT; } else { for (i = 0; i < 16; i++) { if (ch->numrslotspd[i] == 0) continue; if (port == -1) port = i; else if (port != i) { port = -2; break; } } } } err = ch->rslots & cstatus; } else { ccs = 0; err = 0; port = -1; } /* Complete all successful commands. */ ok = ch->rslots & ~cstatus; for (i = 0; i < ch->numslots; i++) { if ((ok >> i) & 1) ahci_end_transaction(&ch->slot[i], AHCI_ERR_NONE); } /* On error, complete the rest of commands with error statuses. */ if (err) { if (ch->frozen) { union ccb *fccb = ch->frozen; ch->frozen = NULL; fccb->ccb_h.status = CAM_REQUEUE_REQ | CAM_RELEASE_SIMQ; if (!(fccb->ccb_h.status & CAM_DEV_QFRZN)) { xpt_freeze_devq(fccb->ccb_h.path, 1); fccb->ccb_h.status |= CAM_DEV_QFRZN; } ahci_done(ch, fccb); } for (i = 0; i < ch->numslots; i++) { /* XXX: reqests in loading state. */ if (((err >> i) & 1) == 0) continue; if (port >= 0 && ch->slot[i].ccb->ccb_h.target_id != port) continue; if (istatus & AHCI_P_IX_TFE) { if (port != -2) { /* Task File Error */ if (ch->numtslotspd[ ch->slot[i].ccb->ccb_h.target_id] == 0) { /* Untagged operation. */ if (i == ccs) et = AHCI_ERR_TFE; else et = AHCI_ERR_INNOCENT; } else { /* Tagged operation. */ et = AHCI_ERR_NCQ; } } else { et = AHCI_ERR_TFE; ch->fatalerr = 1; } } else if (istatus & AHCI_P_IX_IF) { if (ch->numtslots == 0 && i != ccs && port != -2) et = AHCI_ERR_INNOCENT; else et = AHCI_ERR_SATA; } else et = AHCI_ERR_INVALID; ahci_end_transaction(&ch->slot[i], et); } /* * We can't reinit port if there are some other * commands active, use resume to complete them. */ if (ch->rslots != 0 && !ch->recoverycmd) ATA_OUTL(ch->r_mem, AHCI_P_FBS, AHCI_P_FBS_EN | AHCI_P_FBS_DEC); } /* Process NOTIFY events */ if (sntf) ahci_notify_events(ch, sntf); } /* Must be called with channel locked. */ static int ahci_check_collision(struct ahci_channel *ch, union ccb *ccb) { int t = ccb->ccb_h.target_id; if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & CAM_ATAIO_FPDMA)) { /* Tagged command while we have no supported tag free. */ if (((~ch->oslots) & (0xffffffff >> (32 - ch->curr[t].tags))) == 0) return (1); /* If we have FBS */ if (ch->fbs_enabled) { /* Tagged command while untagged are active. */ if (ch->numrslotspd[t] != 0 && ch->numtslotspd[t] == 0) return (1); } else { /* Tagged command while untagged are active. */ if (ch->numrslots != 0 && ch->numtslots == 0) return (1); /* Tagged command while tagged to other target is active. */ if (ch->numtslots != 0 && ch->taggedtarget != ccb->ccb_h.target_id) return (1); } } else { /* If we have FBS */ if (ch->fbs_enabled) { /* Untagged command while tagged are active. */ if (ch->numrslotspd[t] != 0 && ch->numtslotspd[t] != 0) return (1); } else { /* Untagged command while tagged are active. */ if (ch->numrslots != 0 && ch->numtslots != 0) return (1); } } if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & (CAM_ATAIO_CONTROL | CAM_ATAIO_NEEDRESULT))) { /* Atomic command while anything active. */ if (ch->numrslots != 0) return (1); } /* We have some atomic command running. */ if (ch->aslots != 0) return (1); return (0); } /* Must be called with channel locked. */ static void ahci_begin_transaction(struct ahci_channel *ch, union ccb *ccb) { struct ahci_slot *slot; int tag, tags; /* Choose empty slot. */ tags = ch->numslots; if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & CAM_ATAIO_FPDMA)) tags = ch->curr[ccb->ccb_h.target_id].tags; if (ch->lastslot + 1 < tags) tag = ffs(~(ch->oslots >> (ch->lastslot + 1))); else tag = 0; if (tag == 0 || tag + ch->lastslot >= tags) tag = ffs(~ch->oslots) - 1; else tag += ch->lastslot; ch->lastslot = tag; /* Occupy chosen slot. */ slot = &ch->slot[tag]; slot->ccb = ccb; /* Stop PM timer. */ if (ch->numrslots == 0 && ch->pm_level > 3) callout_stop(&ch->pm_timer); /* Update channel stats. */ ch->oslots |= (1 << tag); ch->numrslots++; ch->numrslotspd[ccb->ccb_h.target_id]++; if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & CAM_ATAIO_FPDMA)) { ch->numtslots++; ch->numtslotspd[ccb->ccb_h.target_id]++; ch->taggedtarget = ccb->ccb_h.target_id; } if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & (CAM_ATAIO_CONTROL | CAM_ATAIO_NEEDRESULT))) ch->aslots |= (1 << tag); if ((ccb->ccb_h.flags & CAM_DIR_MASK) != CAM_DIR_NONE) { slot->state = AHCI_SLOT_LOADING; bus_dmamap_load_ccb(ch->dma.data_tag, slot->dma.data_map, ccb, ahci_dmasetprd, slot, 0); } else { slot->dma.nsegs = 0; ahci_execute_transaction(slot); } } /* Locked by busdma engine. */ static void ahci_dmasetprd(void *arg, bus_dma_segment_t *segs, int nsegs, int error) { struct ahci_slot *slot = arg; struct ahci_channel *ch = slot->ch; struct ahci_cmd_tab *ctp; struct ahci_dma_prd *prd; int i; if (error) { device_printf(ch->dev, "DMA load error\n"); ahci_end_transaction(slot, AHCI_ERR_INVALID); return; } KASSERT(nsegs <= AHCI_SG_ENTRIES, ("too many DMA segment entries\n")); /* Get a piece of the workspace for this request */ ctp = (struct ahci_cmd_tab *) (ch->dma.work + AHCI_CT_OFFSET + (AHCI_CT_SIZE * slot->slot)); /* Fill S/G table */ prd = &ctp->prd_tab[0]; for (i = 0; i < nsegs; i++) { prd[i].dba = htole64(segs[i].ds_addr); prd[i].dbc = htole32((segs[i].ds_len - 1) & AHCI_PRD_MASK); } slot->dma.nsegs = nsegs; bus_dmamap_sync(ch->dma.data_tag, slot->dma.data_map, ((slot->ccb->ccb_h.flags & CAM_DIR_IN) ? BUS_DMASYNC_PREREAD : BUS_DMASYNC_PREWRITE)); ahci_execute_transaction(slot); } /* Must be called with channel locked. */ static void ahci_execute_transaction(struct ahci_slot *slot) { struct ahci_channel *ch = slot->ch; struct ahci_cmd_tab *ctp; struct ahci_cmd_list *clp; union ccb *ccb = slot->ccb; int port = ccb->ccb_h.target_id & 0x0f; int fis_size, i, softreset; uint8_t *fis = ch->dma.rfis + 0x40; uint8_t val; uint16_t cmd_flags; /* Get a piece of the workspace for this request */ ctp = (struct ahci_cmd_tab *) (ch->dma.work + AHCI_CT_OFFSET + (AHCI_CT_SIZE * slot->slot)); /* Setup the FIS for this request */ if (!(fis_size = ahci_setup_fis(ch, ctp, ccb, slot->slot))) { device_printf(ch->dev, "Setting up SATA FIS failed\n"); ahci_end_transaction(slot, AHCI_ERR_INVALID); return; } /* Setup the command list entry */ clp = (struct ahci_cmd_list *) (ch->dma.work + AHCI_CL_OFFSET + (AHCI_CL_SIZE * slot->slot)); cmd_flags = (ccb->ccb_h.flags & CAM_DIR_OUT ? AHCI_CMD_WRITE : 0) | (ccb->ccb_h.func_code == XPT_SCSI_IO ? (AHCI_CMD_ATAPI | AHCI_CMD_PREFETCH) : 0) | (fis_size / sizeof(u_int32_t)) | (port << 12); clp->prd_length = htole16(slot->dma.nsegs); /* Special handling for Soft Reset command. */ if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & CAM_ATAIO_CONTROL)) { if (ccb->ataio.cmd.control & ATA_A_RESET) { softreset = 1; /* Kick controller into sane state */ ahci_stop(ch); ahci_clo(ch); ahci_start(ch, 0); cmd_flags |= AHCI_CMD_RESET | AHCI_CMD_CLR_BUSY; } else { softreset = 2; /* Prepare FIS receive area for check. */ for (i = 0; i < 20; i++) fis[i] = 0xff; } } else softreset = 0; clp->bytecount = 0; clp->cmd_flags = htole16(cmd_flags); clp->cmd_table_phys = htole64(ch->dma.work_bus + AHCI_CT_OFFSET + (AHCI_CT_SIZE * slot->slot)); bus_dmamap_sync(ch->dma.work_tag, ch->dma.work_map, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); bus_dmamap_sync(ch->dma.rfis_tag, ch->dma.rfis_map, BUS_DMASYNC_PREREAD); /* Set ACTIVE bit for NCQ commands. */ if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & CAM_ATAIO_FPDMA)) { ATA_OUTL(ch->r_mem, AHCI_P_SACT, 1 << slot->slot); } /* If FBS is enabled, set PMP port. */ if (ch->fbs_enabled) { ATA_OUTL(ch->r_mem, AHCI_P_FBS, AHCI_P_FBS_EN | (port << AHCI_P_FBS_DEV_SHIFT)); } /* Issue command to the controller. */ slot->state = AHCI_SLOT_RUNNING; ch->rslots |= (1 << slot->slot); ATA_OUTL(ch->r_mem, AHCI_P_CI, (1 << slot->slot)); /* Device reset commands doesn't interrupt. Poll them. */ if (ccb->ccb_h.func_code == XPT_ATA_IO && (ccb->ataio.cmd.command == ATA_DEVICE_RESET || softreset)) { int count, timeout = ccb->ccb_h.timeout * 100; enum ahci_err_type et = AHCI_ERR_NONE; for (count = 0; count < timeout; count++) { DELAY(10); if (!(ATA_INL(ch->r_mem, AHCI_P_CI) & (1 << slot->slot))) break; if ((ATA_INL(ch->r_mem, AHCI_P_TFD) & ATA_S_ERROR) && softreset != 1) { #if 0 device_printf(ch->dev, "Poll error on slot %d, TFD: %04x\n", slot->slot, ATA_INL(ch->r_mem, AHCI_P_TFD)); #endif et = AHCI_ERR_TFE; break; } /* Workaround for ATI SB600/SB700 chipsets. */ if (ccb->ccb_h.target_id == 15 && (ch->quirks & AHCI_Q_ATI_PMP_BUG) && (ATA_INL(ch->r_mem, AHCI_P_IS) & AHCI_P_IX_IPM)) { et = AHCI_ERR_TIMEOUT; break; } } /* * Some Marvell controllers require additional time * after soft reset to work properly. Setup delay * to 50ms after soft reset. */ if (ch->quirks & AHCI_Q_MRVL_SR_DEL) DELAY(50000); /* * Marvell HBAs with non-RAID firmware do not wait for * readiness after soft reset, so we have to wait here. * Marvell RAIDs do not have this problem, but instead * sometimes forget to update FIS receive area, breaking * this wait. */ if ((ch->quirks & AHCI_Q_NOBSYRES) == 0 && (ch->quirks & AHCI_Q_ATI_PMP_BUG) == 0 && softreset == 2 && et == AHCI_ERR_NONE) { for ( ; count < timeout; count++) { bus_dmamap_sync(ch->dma.rfis_tag, ch->dma.rfis_map, BUS_DMASYNC_POSTREAD); val = fis[2]; bus_dmamap_sync(ch->dma.rfis_tag, ch->dma.rfis_map, BUS_DMASYNC_PREREAD); if ((val & ATA_S_BUSY) == 0) break; DELAY(10); } } if (timeout && (count >= timeout)) { device_printf(ch->dev, "Poll timeout on slot %d port %d\n", slot->slot, port); device_printf(ch->dev, "is %08x cs %08x ss %08x " "rs %08x tfd %02x serr %08x cmd %08x\n", ATA_INL(ch->r_mem, AHCI_P_IS), ATA_INL(ch->r_mem, AHCI_P_CI), ATA_INL(ch->r_mem, AHCI_P_SACT), ch->rslots, ATA_INL(ch->r_mem, AHCI_P_TFD), ATA_INL(ch->r_mem, AHCI_P_SERR), ATA_INL(ch->r_mem, AHCI_P_CMD)); et = AHCI_ERR_TIMEOUT; } /* Kick controller into sane state and enable FBS. */ if (softreset == 2) ch->eslots |= (1 << slot->slot); ahci_end_transaction(slot, et); return; } /* Start command execution timeout */ callout_reset_sbt(&slot->timeout, SBT_1MS * ccb->ccb_h.timeout / 2, 0, (timeout_t*)ahci_timeout, slot, 0); return; } /* Must be called with channel locked. */ static void ahci_process_timeout(struct ahci_channel *ch) { int i; mtx_assert(&ch->mtx, MA_OWNED); /* Handle the rest of commands. */ for (i = 0; i < ch->numslots; i++) { /* Do we have a running request on slot? */ if (ch->slot[i].state < AHCI_SLOT_RUNNING) continue; ahci_end_transaction(&ch->slot[i], AHCI_ERR_TIMEOUT); } } /* Must be called with channel locked. */ static void ahci_rearm_timeout(struct ahci_channel *ch) { int i; mtx_assert(&ch->mtx, MA_OWNED); for (i = 0; i < ch->numslots; i++) { struct ahci_slot *slot = &ch->slot[i]; /* Do we have a running request on slot? */ if (slot->state < AHCI_SLOT_RUNNING) continue; if ((ch->toslots & (1 << i)) == 0) continue; callout_reset_sbt(&slot->timeout, SBT_1MS * slot->ccb->ccb_h.timeout / 2, 0, (timeout_t*)ahci_timeout, slot, 0); } } /* Locked by callout mechanism. */ static void ahci_timeout(struct ahci_slot *slot) { struct ahci_channel *ch = slot->ch; device_t dev = ch->dev; uint32_t sstatus; int ccs; int i; /* Check for stale timeout. */ if (slot->state < AHCI_SLOT_RUNNING) return; /* Check if slot was not being executed last time we checked. */ if (slot->state < AHCI_SLOT_EXECUTING) { /* Check if slot started executing. */ sstatus = ATA_INL(ch->r_mem, AHCI_P_SACT); ccs = (ATA_INL(ch->r_mem, AHCI_P_CMD) & AHCI_P_CMD_CCS_MASK) >> AHCI_P_CMD_CCS_SHIFT; if ((sstatus & (1 << slot->slot)) != 0 || ccs == slot->slot || ch->fbs_enabled || ch->wrongccs) slot->state = AHCI_SLOT_EXECUTING; else if ((ch->rslots & (1 << ccs)) == 0) { ch->wrongccs = 1; slot->state = AHCI_SLOT_EXECUTING; } callout_reset_sbt(&slot->timeout, SBT_1MS * slot->ccb->ccb_h.timeout / 2, 0, (timeout_t*)ahci_timeout, slot, 0); return; } device_printf(dev, "Timeout on slot %d port %d\n", slot->slot, slot->ccb->ccb_h.target_id & 0x0f); device_printf(dev, "is %08x cs %08x ss %08x rs %08x tfd %02x " "serr %08x cmd %08x\n", ATA_INL(ch->r_mem, AHCI_P_IS), ATA_INL(ch->r_mem, AHCI_P_CI), ATA_INL(ch->r_mem, AHCI_P_SACT), ch->rslots, ATA_INL(ch->r_mem, AHCI_P_TFD), ATA_INL(ch->r_mem, AHCI_P_SERR), ATA_INL(ch->r_mem, AHCI_P_CMD)); /* Handle frozen command. */ if (ch->frozen) { union ccb *fccb = ch->frozen; ch->frozen = NULL; fccb->ccb_h.status = CAM_REQUEUE_REQ | CAM_RELEASE_SIMQ; if (!(fccb->ccb_h.status & CAM_DEV_QFRZN)) { xpt_freeze_devq(fccb->ccb_h.path, 1); fccb->ccb_h.status |= CAM_DEV_QFRZN; } ahci_done(ch, fccb); } if (!ch->fbs_enabled && !ch->wrongccs) { /* Without FBS we know real timeout source. */ ch->fatalerr = 1; /* Handle command with timeout. */ ahci_end_transaction(&ch->slot[slot->slot], AHCI_ERR_TIMEOUT); /* Handle the rest of commands. */ for (i = 0; i < ch->numslots; i++) { /* Do we have a running request on slot? */ if (ch->slot[i].state < AHCI_SLOT_RUNNING) continue; ahci_end_transaction(&ch->slot[i], AHCI_ERR_INNOCENT); } } else { /* With FBS we wait for other commands timeout and pray. */ if (ch->toslots == 0) xpt_freeze_simq(ch->sim, 1); ch->toslots |= (1 << slot->slot); if ((ch->rslots & ~ch->toslots) == 0) ahci_process_timeout(ch); else device_printf(dev, " ... waiting for slots %08x\n", ch->rslots & ~ch->toslots); } } /* Must be called with channel locked. */ static void ahci_end_transaction(struct ahci_slot *slot, enum ahci_err_type et) { struct ahci_channel *ch = slot->ch; union ccb *ccb = slot->ccb; struct ahci_cmd_list *clp; int lastto; uint32_t sig; bus_dmamap_sync(ch->dma.work_tag, ch->dma.work_map, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); clp = (struct ahci_cmd_list *) (ch->dma.work + AHCI_CL_OFFSET + (AHCI_CL_SIZE * slot->slot)); /* Read result registers to the result struct * May be incorrect if several commands finished same time, * so read only when sure or have to. */ if (ccb->ccb_h.func_code == XPT_ATA_IO) { struct ata_res *res = &ccb->ataio.res; if ((et == AHCI_ERR_TFE) || (ccb->ataio.cmd.flags & CAM_ATAIO_NEEDRESULT)) { u_int8_t *fis = ch->dma.rfis + 0x40; bus_dmamap_sync(ch->dma.rfis_tag, ch->dma.rfis_map, BUS_DMASYNC_POSTREAD); if (ch->fbs_enabled) { fis += ccb->ccb_h.target_id * 256; res->status = fis[2]; res->error = fis[3]; } else { uint16_t tfd = ATA_INL(ch->r_mem, AHCI_P_TFD); res->status = tfd; res->error = tfd >> 8; } res->lba_low = fis[4]; res->lba_mid = fis[5]; res->lba_high = fis[6]; res->device = fis[7]; res->lba_low_exp = fis[8]; res->lba_mid_exp = fis[9]; res->lba_high_exp = fis[10]; res->sector_count = fis[12]; res->sector_count_exp = fis[13]; /* * Some weird controllers do not return signature in * FIS receive area. Read it from PxSIG register. */ if ((ch->quirks & AHCI_Q_ALTSIG) && (ccb->ataio.cmd.flags & CAM_ATAIO_CONTROL) && (ccb->ataio.cmd.control & ATA_A_RESET) == 0) { sig = ATA_INL(ch->r_mem, AHCI_P_SIG); res->lba_high = sig >> 24; res->lba_mid = sig >> 16; res->lba_low = sig >> 8; res->sector_count = sig; } } else bzero(res, sizeof(*res)); if ((ccb->ataio.cmd.flags & CAM_ATAIO_FPDMA) == 0 && (ccb->ccb_h.flags & CAM_DIR_MASK) != CAM_DIR_NONE && (ch->quirks & AHCI_Q_NOCOUNT) == 0) { ccb->ataio.resid = ccb->ataio.dxfer_len - le32toh(clp->bytecount); } } else { if ((ccb->ccb_h.flags & CAM_DIR_MASK) != CAM_DIR_NONE && (ch->quirks & AHCI_Q_NOCOUNT) == 0) { ccb->csio.resid = ccb->csio.dxfer_len - le32toh(clp->bytecount); } } if ((ccb->ccb_h.flags & CAM_DIR_MASK) != CAM_DIR_NONE) { bus_dmamap_sync(ch->dma.data_tag, slot->dma.data_map, (ccb->ccb_h.flags & CAM_DIR_IN) ? BUS_DMASYNC_POSTREAD : BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(ch->dma.data_tag, slot->dma.data_map); } if (et != AHCI_ERR_NONE) ch->eslots |= (1 << slot->slot); /* In case of error, freeze device for proper recovery. */ if ((et != AHCI_ERR_NONE) && (!ch->recoverycmd) && !(ccb->ccb_h.status & CAM_DEV_QFRZN)) { xpt_freeze_devq(ccb->ccb_h.path, 1); ccb->ccb_h.status |= CAM_DEV_QFRZN; } /* Set proper result status. */ ccb->ccb_h.status &= ~CAM_STATUS_MASK; switch (et) { case AHCI_ERR_NONE: ccb->ccb_h.status |= CAM_REQ_CMP; if (ccb->ccb_h.func_code == XPT_SCSI_IO) ccb->csio.scsi_status = SCSI_STATUS_OK; break; case AHCI_ERR_INVALID: ch->fatalerr = 1; ccb->ccb_h.status |= CAM_REQ_INVALID; break; case AHCI_ERR_INNOCENT: ccb->ccb_h.status |= CAM_REQUEUE_REQ; break; case AHCI_ERR_TFE: case AHCI_ERR_NCQ: if (ccb->ccb_h.func_code == XPT_SCSI_IO) { ccb->ccb_h.status |= CAM_SCSI_STATUS_ERROR; ccb->csio.scsi_status = SCSI_STATUS_CHECK_COND; } else { ccb->ccb_h.status |= CAM_ATA_STATUS_ERROR; } break; case AHCI_ERR_SATA: ch->fatalerr = 1; if (!ch->recoverycmd) { xpt_freeze_simq(ch->sim, 1); ccb->ccb_h.status &= ~CAM_STATUS_MASK; ccb->ccb_h.status |= CAM_RELEASE_SIMQ; } ccb->ccb_h.status |= CAM_UNCOR_PARITY; break; case AHCI_ERR_TIMEOUT: if (!ch->recoverycmd) { xpt_freeze_simq(ch->sim, 1); ccb->ccb_h.status &= ~CAM_STATUS_MASK; ccb->ccb_h.status |= CAM_RELEASE_SIMQ; } ccb->ccb_h.status |= CAM_CMD_TIMEOUT; break; default: ch->fatalerr = 1; ccb->ccb_h.status |= CAM_REQ_CMP_ERR; } /* Free slot. */ ch->oslots &= ~(1 << slot->slot); ch->rslots &= ~(1 << slot->slot); ch->aslots &= ~(1 << slot->slot); slot->state = AHCI_SLOT_EMPTY; slot->ccb = NULL; /* Update channel stats. */ ch->numrslots--; ch->numrslotspd[ccb->ccb_h.target_id]--; if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & CAM_ATAIO_FPDMA)) { ch->numtslots--; ch->numtslotspd[ccb->ccb_h.target_id]--; } /* Cancel timeout state if request completed normally. */ if (et != AHCI_ERR_TIMEOUT) { lastto = (ch->toslots == (1 << slot->slot)); ch->toslots &= ~(1 << slot->slot); if (lastto) xpt_release_simq(ch->sim, TRUE); } /* If it was first request of reset sequence and there is no error, * proceed to second request. */ if ((ccb->ccb_h.func_code == XPT_ATA_IO) && (ccb->ataio.cmd.flags & CAM_ATAIO_CONTROL) && (ccb->ataio.cmd.control & ATA_A_RESET) && et == AHCI_ERR_NONE) { ccb->ataio.cmd.control &= ~ATA_A_RESET; ahci_begin_transaction(ch, ccb); return; } /* If it was our READ LOG command - process it. */ if (ccb->ccb_h.recovery_type == RECOVERY_READ_LOG) { ahci_process_read_log(ch, ccb); /* If it was our REQUEST SENSE command - process it. */ } else if (ccb->ccb_h.recovery_type == RECOVERY_REQUEST_SENSE) { ahci_process_request_sense(ch, ccb); /* If it was NCQ or ATAPI command error, put result on hold. */ } else if (et == AHCI_ERR_NCQ || ((ccb->ccb_h.status & CAM_STATUS_MASK) == CAM_SCSI_STATUS_ERROR && (ccb->ccb_h.flags & CAM_DIS_AUTOSENSE) == 0)) { ch->hold[slot->slot] = ccb; ch->numhslots++; } else ahci_done(ch, ccb); /* If we have no other active commands, ... */ if (ch->rslots == 0) { /* if there was fatal error - reset port. */ if (ch->toslots != 0 || ch->fatalerr) { ahci_reset(ch); } else { /* if we have slots in error, we can reinit port. */ if (ch->eslots != 0) { ahci_stop(ch); ahci_clo(ch); ahci_start(ch, 1); } /* if there commands on hold, we can do READ LOG. */ if (!ch->recoverycmd && ch->numhslots) ahci_issue_recovery(ch); } /* If all the rest of commands are in timeout - give them chance. */ } else if ((ch->rslots & ~ch->toslots) == 0 && et != AHCI_ERR_TIMEOUT) ahci_rearm_timeout(ch); /* Unfreeze frozen command. */ if (ch->frozen && !ahci_check_collision(ch, ch->frozen)) { union ccb *fccb = ch->frozen; ch->frozen = NULL; ahci_begin_transaction(ch, fccb); xpt_release_simq(ch->sim, TRUE); } /* Start PM timer. */ if (ch->numrslots == 0 && ch->pm_level > 3 && (ch->curr[ch->pm_present ? 15 : 0].caps & CTS_SATA_CAPS_D_PMREQ)) { callout_schedule(&ch->pm_timer, (ch->pm_level == 4) ? hz / 1000 : hz / 8); } } static void ahci_issue_recovery(struct ahci_channel *ch) { union ccb *ccb; struct ccb_ataio *ataio; struct ccb_scsiio *csio; int i; /* Find some held command. */ for (i = 0; i < ch->numslots; i++) { if (ch->hold[i]) break; } ccb = xpt_alloc_ccb_nowait(); if (ccb == NULL) { device_printf(ch->dev, "Unable to allocate recovery command\n"); completeall: /* We can't do anything -- complete held commands. */ for (i = 0; i < ch->numslots; i++) { if (ch->hold[i] == NULL) continue; ch->hold[i]->ccb_h.status &= ~CAM_STATUS_MASK; ch->hold[i]->ccb_h.status |= CAM_RESRC_UNAVAIL; ahci_done(ch, ch->hold[i]); ch->hold[i] = NULL; ch->numhslots--; } ahci_reset(ch); return; } ccb->ccb_h = ch->hold[i]->ccb_h; /* Reuse old header. */ if (ccb->ccb_h.func_code == XPT_ATA_IO) { /* READ LOG */ ccb->ccb_h.recovery_type = RECOVERY_READ_LOG; ccb->ccb_h.func_code = XPT_ATA_IO; ccb->ccb_h.flags = CAM_DIR_IN; ccb->ccb_h.timeout = 1000; /* 1s should be enough. */ ataio = &ccb->ataio; ataio->data_ptr = malloc(512, M_AHCI, M_NOWAIT); if (ataio->data_ptr == NULL) { xpt_free_ccb(ccb); device_printf(ch->dev, "Unable to allocate memory for READ LOG command\n"); goto completeall; } ataio->dxfer_len = 512; bzero(&ataio->cmd, sizeof(ataio->cmd)); ataio->cmd.flags = CAM_ATAIO_48BIT; ataio->cmd.command = 0x2F; /* READ LOG EXT */ ataio->cmd.sector_count = 1; ataio->cmd.sector_count_exp = 0; ataio->cmd.lba_low = 0x10; ataio->cmd.lba_mid = 0; ataio->cmd.lba_mid_exp = 0; } else { /* REQUEST SENSE */ ccb->ccb_h.recovery_type = RECOVERY_REQUEST_SENSE; ccb->ccb_h.recovery_slot = i; ccb->ccb_h.func_code = XPT_SCSI_IO; ccb->ccb_h.flags = CAM_DIR_IN; ccb->ccb_h.status = 0; ccb->ccb_h.timeout = 1000; /* 1s should be enough. */ csio = &ccb->csio; csio->data_ptr = (void *)&ch->hold[i]->csio.sense_data; csio->dxfer_len = ch->hold[i]->csio.sense_len; csio->cdb_len = 6; bzero(&csio->cdb_io, sizeof(csio->cdb_io)); csio->cdb_io.cdb_bytes[0] = 0x03; csio->cdb_io.cdb_bytes[4] = csio->dxfer_len; } /* Freeze SIM while doing recovery. */ ch->recoverycmd = 1; xpt_freeze_simq(ch->sim, 1); ahci_begin_transaction(ch, ccb); } static void ahci_process_read_log(struct ahci_channel *ch, union ccb *ccb) { uint8_t *data; struct ata_res *res; int i; ch->recoverycmd = 0; data = ccb->ataio.data_ptr; if ((ccb->ccb_h.status & CAM_STATUS_MASK) == CAM_REQ_CMP && (data[0] & 0x80) == 0) { for (i = 0; i < ch->numslots; i++) { if (!ch->hold[i]) continue; if (ch->hold[i]->ccb_h.func_code != XPT_ATA_IO) continue; if ((data[0] & 0x1F) == i) { res = &ch->hold[i]->ataio.res; res->status = data[2]; res->error = data[3]; res->lba_low = data[4]; res->lba_mid = data[5]; res->lba_high = data[6]; res->device = data[7]; res->lba_low_exp = data[8]; res->lba_mid_exp = data[9]; res->lba_high_exp = data[10]; res->sector_count = data[12]; res->sector_count_exp = data[13]; } else { ch->hold[i]->ccb_h.status &= ~CAM_STATUS_MASK; ch->hold[i]->ccb_h.status |= CAM_REQUEUE_REQ; } ahci_done(ch, ch->hold[i]); ch->hold[i] = NULL; ch->numhslots--; } } else { if ((ccb->ccb_h.status & CAM_STATUS_MASK) != CAM_REQ_CMP) device_printf(ch->dev, "Error while READ LOG EXT\n"); else if ((data[0] & 0x80) == 0) { device_printf(ch->dev, "Non-queued command error in READ LOG EXT\n"); } for (i = 0; i < ch->numslots; i++) { if (!ch->hold[i]) continue; if (ch->hold[i]->ccb_h.func_code != XPT_ATA_IO) continue; ahci_done(ch, ch->hold[i]); ch->hold[i] = NULL; ch->numhslots--; } } free(ccb->ataio.data_ptr, M_AHCI); xpt_free_ccb(ccb); xpt_release_simq(ch->sim, TRUE); } static void ahci_process_request_sense(struct ahci_channel *ch, union ccb *ccb) { int i; ch->recoverycmd = 0; i = ccb->ccb_h.recovery_slot; if ((ccb->ccb_h.status & CAM_STATUS_MASK) == CAM_REQ_CMP) { ch->hold[i]->ccb_h.status |= CAM_AUTOSNS_VALID; } else { ch->hold[i]->ccb_h.status &= ~CAM_STATUS_MASK; ch->hold[i]->ccb_h.status |= CAM_AUTOSENSE_FAIL; } ahci_done(ch, ch->hold[i]); ch->hold[i] = NULL; ch->numhslots--; xpt_free_ccb(ccb); xpt_release_simq(ch->sim, TRUE); } static void ahci_start(struct ahci_channel *ch, int fbs) { u_int32_t cmd; /* Run the channel start callback, if any. */ if (ch->start) ch->start(ch); /* Clear SATA error register */ ATA_OUTL(ch->r_mem, AHCI_P_SERR, 0xFFFFFFFF); /* Clear any interrupts pending on this channel */ ATA_OUTL(ch->r_mem, AHCI_P_IS, 0xFFFFFFFF); /* Configure FIS-based switching if supported. */ if (ch->chcaps & AHCI_P_CMD_FBSCP) { ch->fbs_enabled = (fbs && ch->pm_present) ? 1 : 0; ATA_OUTL(ch->r_mem, AHCI_P_FBS, ch->fbs_enabled ? AHCI_P_FBS_EN : 0); } /* Start operations on this channel */ cmd = ATA_INL(ch->r_mem, AHCI_P_CMD); cmd &= ~AHCI_P_CMD_PMA; ATA_OUTL(ch->r_mem, AHCI_P_CMD, cmd | AHCI_P_CMD_ST | (ch->pm_present ? AHCI_P_CMD_PMA : 0)); } static void ahci_stop(struct ahci_channel *ch) { u_int32_t cmd; int timeout; /* Kill all activity on this channel */ cmd = ATA_INL(ch->r_mem, AHCI_P_CMD); ATA_OUTL(ch->r_mem, AHCI_P_CMD, cmd & ~AHCI_P_CMD_ST); /* Wait for activity stop. */ timeout = 0; do { DELAY(10); if (timeout++ > 50000) { device_printf(ch->dev, "stopping AHCI engine failed\n"); break; } } while (ATA_INL(ch->r_mem, AHCI_P_CMD) & AHCI_P_CMD_CR); ch->eslots = 0; } static void ahci_clo(struct ahci_channel *ch) { u_int32_t cmd; int timeout; /* Issue Command List Override if supported */ if (ch->caps & AHCI_CAP_SCLO) { cmd = ATA_INL(ch->r_mem, AHCI_P_CMD); cmd |= AHCI_P_CMD_CLO; ATA_OUTL(ch->r_mem, AHCI_P_CMD, cmd); timeout = 0; do { DELAY(10); if (timeout++ > 50000) { device_printf(ch->dev, "executing CLO failed\n"); break; } } while (ATA_INL(ch->r_mem, AHCI_P_CMD) & AHCI_P_CMD_CLO); } } static void ahci_stop_fr(struct ahci_channel *ch) { u_int32_t cmd; int timeout; /* Kill all FIS reception on this channel */ cmd = ATA_INL(ch->r_mem, AHCI_P_CMD); ATA_OUTL(ch->r_mem, AHCI_P_CMD, cmd & ~AHCI_P_CMD_FRE); /* Wait for FIS reception stop. */ timeout = 0; do { DELAY(10); if (timeout++ > 50000) { device_printf(ch->dev, "stopping AHCI FR engine failed\n"); break; } } while (ATA_INL(ch->r_mem, AHCI_P_CMD) & AHCI_P_CMD_FR); } static void ahci_start_fr(struct ahci_channel *ch) { u_int32_t cmd; /* Start FIS reception on this channel */ cmd = ATA_INL(ch->r_mem, AHCI_P_CMD); ATA_OUTL(ch->r_mem, AHCI_P_CMD, cmd | AHCI_P_CMD_FRE); } static int ahci_wait_ready(struct ahci_channel *ch, int t, int t0) { int timeout = 0; uint32_t val; while ((val = ATA_INL(ch->r_mem, AHCI_P_TFD)) & (ATA_S_BUSY | ATA_S_DRQ)) { if (timeout > t) { if (t != 0) { device_printf(ch->dev, "AHCI reset: device not ready after %dms " "(tfd = %08x)\n", MAX(t, 0) + t0, val); } return (EBUSY); } DELAY(1000); timeout++; } if (bootverbose) device_printf(ch->dev, "AHCI reset: device ready after %dms\n", timeout + t0); return (0); } static void ahci_reset_to(void *arg) { struct ahci_channel *ch = arg; if (ch->resetting == 0) return; ch->resetting--; if (ahci_wait_ready(ch, ch->resetting == 0 ? -1 : 0, (310 - ch->resetting) * 100) == 0) { ch->resetting = 0; ahci_start(ch, 1); xpt_release_simq(ch->sim, TRUE); return; } if (ch->resetting == 0) { ahci_clo(ch); ahci_start(ch, 1); xpt_release_simq(ch->sim, TRUE); return; } callout_schedule(&ch->reset_timer, hz / 10); } static void ahci_reset(struct ahci_channel *ch) { struct ahci_controller *ctlr = device_get_softc(device_get_parent(ch->dev)); int i; xpt_freeze_simq(ch->sim, 1); if (bootverbose) device_printf(ch->dev, "AHCI reset...\n"); /* Forget about previous reset. */ if (ch->resetting) { ch->resetting = 0; callout_stop(&ch->reset_timer); xpt_release_simq(ch->sim, TRUE); } /* Requeue freezed command. */ if (ch->frozen) { union ccb *fccb = ch->frozen; ch->frozen = NULL; fccb->ccb_h.status = CAM_REQUEUE_REQ | CAM_RELEASE_SIMQ; if (!(fccb->ccb_h.status & CAM_DEV_QFRZN)) { xpt_freeze_devq(fccb->ccb_h.path, 1); fccb->ccb_h.status |= CAM_DEV_QFRZN; } ahci_done(ch, fccb); } /* Kill the engine and requeue all running commands. */ ahci_stop(ch); for (i = 0; i < ch->numslots; i++) { /* Do we have a running request on slot? */ if (ch->slot[i].state < AHCI_SLOT_RUNNING) continue; /* XXX; Commands in loading state. */ ahci_end_transaction(&ch->slot[i], AHCI_ERR_INNOCENT); } for (i = 0; i < ch->numslots; i++) { if (!ch->hold[i]) continue; ahci_done(ch, ch->hold[i]); ch->hold[i] = NULL; ch->numhslots--; } if (ch->toslots != 0) xpt_release_simq(ch->sim, TRUE); ch->eslots = 0; ch->toslots = 0; ch->wrongccs = 0; ch->fatalerr = 0; /* Tell the XPT about the event */ xpt_async(AC_BUS_RESET, ch->path, NULL); /* Disable port interrupts */ ATA_OUTL(ch->r_mem, AHCI_P_IE, 0); /* Reset and reconnect PHY, */ if (!ahci_sata_phy_reset(ch)) { if (bootverbose) device_printf(ch->dev, "AHCI reset: device not found\n"); ch->devices = 0; /* Enable wanted port interrupts */ ATA_OUTL(ch->r_mem, AHCI_P_IE, (((ch->pm_level != 0) ? AHCI_P_IX_CPD | AHCI_P_IX_MP : 0) | AHCI_P_IX_PRC | AHCI_P_IX_PC)); xpt_release_simq(ch->sim, TRUE); return; } if (bootverbose) device_printf(ch->dev, "AHCI reset: device found\n"); /* Wait for clearing busy status. */ if (ahci_wait_ready(ch, dumping ? 31000 : 0, 0)) { if (dumping) ahci_clo(ch); else ch->resetting = 310; } ch->devices = 1; /* Enable wanted port interrupts */ ATA_OUTL(ch->r_mem, AHCI_P_IE, (((ch->pm_level != 0) ? AHCI_P_IX_CPD | AHCI_P_IX_MP : 0) | AHCI_P_IX_TFE | AHCI_P_IX_HBF | AHCI_P_IX_HBD | AHCI_P_IX_IF | AHCI_P_IX_OF | ((ch->pm_level == 0) ? AHCI_P_IX_PRC : 0) | AHCI_P_IX_PC | AHCI_P_IX_DP | AHCI_P_IX_UF | (ctlr->ccc ? 0 : AHCI_P_IX_SDB) | AHCI_P_IX_DS | AHCI_P_IX_PS | (ctlr->ccc ? 0 : AHCI_P_IX_DHR))); if (ch->resetting) callout_reset(&ch->reset_timer, hz / 10, ahci_reset_to, ch); else { ahci_start(ch, 1); xpt_release_simq(ch->sim, TRUE); } } static int ahci_setup_fis(struct ahci_channel *ch, struct ahci_cmd_tab *ctp, union ccb *ccb, int tag) { u_int8_t *fis = &ctp->cfis[0]; bzero(fis, 20); fis[0] = 0x27; /* host to device */ fis[1] = (ccb->ccb_h.target_id & 0x0f); if (ccb->ccb_h.func_code == XPT_SCSI_IO) { fis[1] |= 0x80; fis[2] = ATA_PACKET_CMD; if ((ccb->ccb_h.flags & CAM_DIR_MASK) != CAM_DIR_NONE && ch->curr[ccb->ccb_h.target_id].mode >= ATA_DMA) fis[3] = ATA_F_DMA; else { fis[5] = ccb->csio.dxfer_len; fis[6] = ccb->csio.dxfer_len >> 8; } fis[7] = ATA_D_LBA; fis[15] = ATA_A_4BIT; bcopy((ccb->ccb_h.flags & CAM_CDB_POINTER) ? ccb->csio.cdb_io.cdb_ptr : ccb->csio.cdb_io.cdb_bytes, ctp->acmd, ccb->csio.cdb_len); bzero(ctp->acmd + ccb->csio.cdb_len, 32 - ccb->csio.cdb_len); } else if ((ccb->ataio.cmd.flags & CAM_ATAIO_CONTROL) == 0) { fis[1] |= 0x80; fis[2] = ccb->ataio.cmd.command; fis[3] = ccb->ataio.cmd.features; fis[4] = ccb->ataio.cmd.lba_low; fis[5] = ccb->ataio.cmd.lba_mid; fis[6] = ccb->ataio.cmd.lba_high; fis[7] = ccb->ataio.cmd.device; fis[8] = ccb->ataio.cmd.lba_low_exp; fis[9] = ccb->ataio.cmd.lba_mid_exp; fis[10] = ccb->ataio.cmd.lba_high_exp; fis[11] = ccb->ataio.cmd.features_exp; if (ccb->ataio.cmd.flags & CAM_ATAIO_FPDMA) { fis[12] = tag << 3; } else { fis[12] = ccb->ataio.cmd.sector_count; } fis[13] = ccb->ataio.cmd.sector_count_exp; fis[15] = ATA_A_4BIT; } else { fis[15] = ccb->ataio.cmd.control; } if (ccb->ataio.ata_flags & ATA_FLAG_AUX) { fis[16] = ccb->ataio.aux & 0xff; fis[17] = (ccb->ataio.aux >> 8) & 0xff; fis[18] = (ccb->ataio.aux >> 16) & 0xff; fis[19] = (ccb->ataio.aux >> 24) & 0xff; } return (20); } static int ahci_sata_connect(struct ahci_channel *ch) { u_int32_t status; int timeout, found = 0; /* Wait up to 100ms for "connect well" */ for (timeout = 0; timeout < 1000 ; timeout++) { status = ATA_INL(ch->r_mem, AHCI_P_SSTS); if ((status & ATA_SS_DET_MASK) != ATA_SS_DET_NO_DEVICE) found = 1; if (((status & ATA_SS_DET_MASK) == ATA_SS_DET_PHY_ONLINE) && ((status & ATA_SS_SPD_MASK) != ATA_SS_SPD_NO_SPEED) && ((status & ATA_SS_IPM_MASK) == ATA_SS_IPM_ACTIVE)) break; if ((status & ATA_SS_DET_MASK) == ATA_SS_DET_PHY_OFFLINE) { if (bootverbose) { device_printf(ch->dev, "SATA offline status=%08x\n", status); } return (0); } if (found == 0 && timeout >= 100) break; DELAY(100); } if (timeout >= 1000 || !found) { if (bootverbose) { device_printf(ch->dev, "SATA connect timeout time=%dus status=%08x\n", timeout * 100, status); } return (0); } if (bootverbose) { device_printf(ch->dev, "SATA connect time=%dus status=%08x\n", timeout * 100, status); } /* Clear SATA error register */ ATA_OUTL(ch->r_mem, AHCI_P_SERR, 0xffffffff); return (1); } static int ahci_sata_phy_reset(struct ahci_channel *ch) { int sata_rev; uint32_t val; if (ch->listening) { val = ATA_INL(ch->r_mem, AHCI_P_CMD); val |= AHCI_P_CMD_SUD; ATA_OUTL(ch->r_mem, AHCI_P_CMD, val); ch->listening = 0; } sata_rev = ch->user[ch->pm_present ? 15 : 0].revision; if (sata_rev == 1) val = ATA_SC_SPD_SPEED_GEN1; else if (sata_rev == 2) val = ATA_SC_SPD_SPEED_GEN2; else if (sata_rev == 3) val = ATA_SC_SPD_SPEED_GEN3; else val = 0; ATA_OUTL(ch->r_mem, AHCI_P_SCTL, ATA_SC_DET_RESET | val | ATA_SC_IPM_DIS_PARTIAL | ATA_SC_IPM_DIS_SLUMBER); DELAY(1000); ATA_OUTL(ch->r_mem, AHCI_P_SCTL, ATA_SC_DET_IDLE | val | ((ch->pm_level > 0) ? 0 : (ATA_SC_IPM_DIS_PARTIAL | ATA_SC_IPM_DIS_SLUMBER))); if (!ahci_sata_connect(ch)) { if (ch->caps & AHCI_CAP_SSS) { val = ATA_INL(ch->r_mem, AHCI_P_CMD); val &= ~AHCI_P_CMD_SUD; ATA_OUTL(ch->r_mem, AHCI_P_CMD, val); ch->listening = 1; } else if (ch->pm_level > 0) ATA_OUTL(ch->r_mem, AHCI_P_SCTL, ATA_SC_DET_DISABLE); return (0); } return (1); } static int ahci_check_ids(struct ahci_channel *ch, union ccb *ccb) { if (ccb->ccb_h.target_id > ((ch->caps & AHCI_CAP_SPM) ? 15 : 0)) { ccb->ccb_h.status = CAM_TID_INVALID; ahci_done(ch, ccb); return (-1); } if (ccb->ccb_h.target_lun != 0) { ccb->ccb_h.status = CAM_LUN_INVALID; ahci_done(ch, ccb); return (-1); } return (0); } static void ahciaction(struct cam_sim *sim, union ccb *ccb) { struct ahci_channel *ch; CAM_DEBUG(ccb->ccb_h.path, CAM_DEBUG_TRACE, ("ahciaction func_code=%x\n", ccb->ccb_h.func_code)); ch = (struct ahci_channel *)cam_sim_softc(sim); switch (ccb->ccb_h.func_code) { /* Common cases first */ case XPT_ATA_IO: /* Execute the requested I/O operation */ case XPT_SCSI_IO: if (ahci_check_ids(ch, ccb)) return; if (ch->devices == 0 || (ch->pm_present == 0 && ccb->ccb_h.target_id > 0 && ccb->ccb_h.target_id < 15)) { ccb->ccb_h.status = CAM_SEL_TIMEOUT; break; } ccb->ccb_h.recovery_type = RECOVERY_NONE; /* Check for command collision. */ if (ahci_check_collision(ch, ccb)) { /* Freeze command. */ ch->frozen = ccb; /* We have only one frozen slot, so freeze simq also. */ xpt_freeze_simq(ch->sim, 1); return; } ahci_begin_transaction(ch, ccb); return; case XPT_ABORT: /* Abort the specified CCB */ /* XXX Implement */ ccb->ccb_h.status = CAM_REQ_INVALID; break; case XPT_SET_TRAN_SETTINGS: { struct ccb_trans_settings *cts = &ccb->cts; struct ahci_device *d; if (ahci_check_ids(ch, ccb)) return; if (cts->type == CTS_TYPE_CURRENT_SETTINGS) d = &ch->curr[ccb->ccb_h.target_id]; else d = &ch->user[ccb->ccb_h.target_id]; if (cts->xport_specific.sata.valid & CTS_SATA_VALID_REVISION) d->revision = cts->xport_specific.sata.revision; if (cts->xport_specific.sata.valid & CTS_SATA_VALID_MODE) d->mode = cts->xport_specific.sata.mode; if (cts->xport_specific.sata.valid & CTS_SATA_VALID_BYTECOUNT) d->bytecount = min(8192, cts->xport_specific.sata.bytecount); if (cts->xport_specific.sata.valid & CTS_SATA_VALID_TAGS) d->tags = min(ch->numslots, cts->xport_specific.sata.tags); if (cts->xport_specific.sata.valid & CTS_SATA_VALID_PM) ch->pm_present = cts->xport_specific.sata.pm_present; if (cts->xport_specific.sata.valid & CTS_SATA_VALID_ATAPI) d->atapi = cts->xport_specific.sata.atapi; if (cts->xport_specific.sata.valid & CTS_SATA_VALID_CAPS) d->caps = cts->xport_specific.sata.caps; ccb->ccb_h.status = CAM_REQ_CMP; break; } case XPT_GET_TRAN_SETTINGS: /* Get default/user set transfer settings for the target */ { struct ccb_trans_settings *cts = &ccb->cts; struct ahci_device *d; uint32_t status; if (ahci_check_ids(ch, ccb)) return; if (cts->type == CTS_TYPE_CURRENT_SETTINGS) d = &ch->curr[ccb->ccb_h.target_id]; else d = &ch->user[ccb->ccb_h.target_id]; cts->protocol = PROTO_UNSPECIFIED; cts->protocol_version = PROTO_VERSION_UNSPECIFIED; cts->transport = XPORT_SATA; cts->transport_version = XPORT_VERSION_UNSPECIFIED; cts->proto_specific.valid = 0; cts->xport_specific.sata.valid = 0; if (cts->type == CTS_TYPE_CURRENT_SETTINGS && (ccb->ccb_h.target_id == 15 || (ccb->ccb_h.target_id == 0 && !ch->pm_present))) { status = ATA_INL(ch->r_mem, AHCI_P_SSTS) & ATA_SS_SPD_MASK; if (status & 0x0f0) { cts->xport_specific.sata.revision = (status & 0x0f0) >> 4; cts->xport_specific.sata.valid |= CTS_SATA_VALID_REVISION; } cts->xport_specific.sata.caps = d->caps & CTS_SATA_CAPS_D; if (ch->pm_level) { if (ch->caps & (AHCI_CAP_PSC | AHCI_CAP_SSC)) cts->xport_specific.sata.caps |= CTS_SATA_CAPS_H_PMREQ; if (ch->caps2 & AHCI_CAP2_APST) cts->xport_specific.sata.caps |= CTS_SATA_CAPS_H_APST; } if ((ch->caps & AHCI_CAP_SNCQ) && (ch->quirks & AHCI_Q_NOAA) == 0) cts->xport_specific.sata.caps |= CTS_SATA_CAPS_H_DMAAA; cts->xport_specific.sata.caps |= CTS_SATA_CAPS_H_AN; cts->xport_specific.sata.caps &= ch->user[ccb->ccb_h.target_id].caps; cts->xport_specific.sata.valid |= CTS_SATA_VALID_CAPS; } else { cts->xport_specific.sata.revision = d->revision; cts->xport_specific.sata.valid |= CTS_SATA_VALID_REVISION; cts->xport_specific.sata.caps = d->caps; cts->xport_specific.sata.valid |= CTS_SATA_VALID_CAPS; } cts->xport_specific.sata.mode = d->mode; cts->xport_specific.sata.valid |= CTS_SATA_VALID_MODE; cts->xport_specific.sata.bytecount = d->bytecount; cts->xport_specific.sata.valid |= CTS_SATA_VALID_BYTECOUNT; cts->xport_specific.sata.pm_present = ch->pm_present; cts->xport_specific.sata.valid |= CTS_SATA_VALID_PM; cts->xport_specific.sata.tags = d->tags; cts->xport_specific.sata.valid |= CTS_SATA_VALID_TAGS; cts->xport_specific.sata.atapi = d->atapi; cts->xport_specific.sata.valid |= CTS_SATA_VALID_ATAPI; ccb->ccb_h.status = CAM_REQ_CMP; break; } case XPT_RESET_BUS: /* Reset the specified SCSI bus */ case XPT_RESET_DEV: /* Bus Device Reset the specified SCSI device */ ahci_reset(ch); ccb->ccb_h.status = CAM_REQ_CMP; break; case XPT_TERM_IO: /* Terminate the I/O process */ /* XXX Implement */ ccb->ccb_h.status = CAM_REQ_INVALID; break; case XPT_PATH_INQ: /* Path routing inquiry */ { struct ccb_pathinq *cpi = &ccb->cpi; cpi->version_num = 1; /* XXX??? */ cpi->hba_inquiry = PI_SDTR_ABLE; if (ch->caps & AHCI_CAP_SNCQ) cpi->hba_inquiry |= PI_TAG_ABLE; if (ch->caps & AHCI_CAP_SPM) cpi->hba_inquiry |= PI_SATAPM; cpi->target_sprt = 0; cpi->hba_misc = PIM_SEQSCAN | PIM_UNMAPPED; if ((ch->quirks & AHCI_Q_NOAUX) == 0) cpi->hba_misc |= PIM_ATA_EXT; cpi->hba_eng_cnt = 0; if (ch->caps & AHCI_CAP_SPM) cpi->max_target = 15; else cpi->max_target = 0; cpi->max_lun = 0; cpi->initiator_id = 0; cpi->bus_id = cam_sim_bus(sim); cpi->base_transfer_speed = 150000; strlcpy(cpi->sim_vid, "FreeBSD", SIM_IDLEN); strlcpy(cpi->hba_vid, "AHCI", HBA_IDLEN); strlcpy(cpi->dev_name, cam_sim_name(sim), DEV_IDLEN); cpi->unit_number = cam_sim_unit(sim); cpi->transport = XPORT_SATA; cpi->transport_version = XPORT_VERSION_UNSPECIFIED; cpi->protocol = PROTO_ATA; cpi->protocol_version = PROTO_VERSION_UNSPECIFIED; cpi->maxio = MAXPHYS; /* ATI SB600 can't handle 256 sectors with FPDMA (NCQ). */ if (ch->quirks & AHCI_Q_MAXIO_64K) cpi->maxio = min(cpi->maxio, 128 * 512); cpi->hba_vendor = ch->vendorid; cpi->hba_device = ch->deviceid; cpi->hba_subvendor = ch->subvendorid; cpi->hba_subdevice = ch->subdeviceid; cpi->ccb_h.status = CAM_REQ_CMP; break; } default: ccb->ccb_h.status = CAM_REQ_INVALID; break; } ahci_done(ch, ccb); } static void ahcipoll(struct cam_sim *sim) { struct ahci_channel *ch = (struct ahci_channel *)cam_sim_softc(sim); uint32_t istatus; /* Read interrupt statuses and process if any. */ istatus = ATA_INL(ch->r_mem, AHCI_P_IS); if (istatus != 0) ahci_ch_intr_main(ch, istatus); if (ch->resetting != 0 && (--ch->resetpolldiv <= 0 || !callout_pending(&ch->reset_timer))) { ch->resetpolldiv = 1000; ahci_reset_to(ch); } } devclass_t ahci_devclass; MODULE_VERSION(ahci, 1); MODULE_DEPEND(ahci, cam, 1, 1, 1); Index: projects/power8_bringup_hacks/sys/dev/ahci/ahci.h =================================================================== --- projects/power8_bringup_hacks/sys/dev/ahci/ahci.h (revision 339414) +++ projects/power8_bringup_hacks/sys/dev/ahci/ahci.h (revision 339415) @@ -1,658 +1,656 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 1998 - 2008 Søren Schmidt * Copyright (c) 2009-2012 Alexander Motin * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer, * without modification, immediately at the beginning of the file. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. * * $FreeBSD$ */ /* ATA register defines */ #define ATA_DATA 0 /* (RW) data */ #define ATA_FEATURE 1 /* (W) feature */ #define ATA_F_DMA 0x01 /* enable DMA */ #define ATA_F_OVL 0x02 /* enable overlap */ #define ATA_COUNT 2 /* (W) sector count */ #define ATA_SECTOR 3 /* (RW) sector # */ #define ATA_CYL_LSB 4 /* (RW) cylinder# LSB */ #define ATA_CYL_MSB 5 /* (RW) cylinder# MSB */ #define ATA_DRIVE 6 /* (W) Sector/Drive/Head */ #define ATA_D_LBA 0x40 /* use LBA addressing */ #define ATA_D_IBM 0xa0 /* 512 byte sectors, ECC */ #define ATA_COMMAND 7 /* (W) command */ #define ATA_ERROR 8 /* (R) error */ #define ATA_E_ILI 0x01 /* illegal length */ #define ATA_E_NM 0x02 /* no media */ #define ATA_E_ABORT 0x04 /* command aborted */ #define ATA_E_MCR 0x08 /* media change request */ #define ATA_E_IDNF 0x10 /* ID not found */ #define ATA_E_MC 0x20 /* media changed */ #define ATA_E_UNC 0x40 /* uncorrectable data */ #define ATA_E_ICRC 0x80 /* UDMA crc error */ #define ATA_E_ATAPI_SENSE_MASK 0xf0 /* ATAPI sense key mask */ #define ATA_IREASON 9 /* (R) interrupt reason */ #define ATA_I_CMD 0x01 /* cmd (1) | data (0) */ #define ATA_I_IN 0x02 /* read (1) | write (0) */ #define ATA_I_RELEASE 0x04 /* released bus (1) */ #define ATA_I_TAGMASK 0xf8 /* tag mask */ #define ATA_STATUS 10 /* (R) status */ #define ATA_ALTSTAT 11 /* (R) alternate status */ #define ATA_S_ERROR 0x01 /* error */ #define ATA_S_INDEX 0x02 /* index */ #define ATA_S_CORR 0x04 /* data corrected */ #define ATA_S_DRQ 0x08 /* data request */ #define ATA_S_DSC 0x10 /* drive seek completed */ #define ATA_S_SERVICE 0x10 /* drive needs service */ #define ATA_S_DWF 0x20 /* drive write fault */ #define ATA_S_DMA 0x20 /* DMA ready */ #define ATA_S_READY 0x40 /* drive ready */ #define ATA_S_BUSY 0x80 /* busy */ #define ATA_CONTROL 12 /* (W) control */ #define ATA_A_IDS 0x02 /* disable interrupts */ #define ATA_A_RESET 0x04 /* RESET controller */ #define ATA_A_4BIT 0x08 /* 4 head bits */ #define ATA_A_HOB 0x80 /* High Order Byte enable */ /* SATA register defines */ #define ATA_SSTATUS 13 #define ATA_SS_DET_MASK 0x0000000f #define ATA_SS_DET_NO_DEVICE 0x00000000 #define ATA_SS_DET_DEV_PRESENT 0x00000001 #define ATA_SS_DET_PHY_ONLINE 0x00000003 #define ATA_SS_DET_PHY_OFFLINE 0x00000004 #define ATA_SS_SPD_MASK 0x000000f0 #define ATA_SS_SPD_NO_SPEED 0x00000000 #define ATA_SS_SPD_GEN1 0x00000010 #define ATA_SS_SPD_GEN2 0x00000020 #define ATA_SS_SPD_GEN3 0x00000030 #define ATA_SS_IPM_MASK 0x00000f00 #define ATA_SS_IPM_NO_DEVICE 0x00000000 #define ATA_SS_IPM_ACTIVE 0x00000100 #define ATA_SS_IPM_PARTIAL 0x00000200 #define ATA_SS_IPM_SLUMBER 0x00000600 #define ATA_SS_IPM_DEVSLEEP 0x00000800 #define ATA_SERROR 14 #define ATA_SE_DATA_CORRECTED 0x00000001 #define ATA_SE_COMM_CORRECTED 0x00000002 #define ATA_SE_DATA_ERR 0x00000100 #define ATA_SE_COMM_ERR 0x00000200 #define ATA_SE_PROT_ERR 0x00000400 #define ATA_SE_HOST_ERR 0x00000800 #define ATA_SE_PHY_CHANGED 0x00010000 #define ATA_SE_PHY_IERROR 0x00020000 #define ATA_SE_COMM_WAKE 0x00040000 #define ATA_SE_DECODE_ERR 0x00080000 #define ATA_SE_PARITY_ERR 0x00100000 #define ATA_SE_CRC_ERR 0x00200000 #define ATA_SE_HANDSHAKE_ERR 0x00400000 #define ATA_SE_LINKSEQ_ERR 0x00800000 #define ATA_SE_TRANSPORT_ERR 0x01000000 #define ATA_SE_UNKNOWN_FIS 0x02000000 #define ATA_SE_EXCHANGED 0x04000000 #define ATA_SCONTROL 15 #define ATA_SC_DET_MASK 0x0000000f #define ATA_SC_DET_IDLE 0x00000000 #define ATA_SC_DET_RESET 0x00000001 #define ATA_SC_DET_DISABLE 0x00000004 #define ATA_SC_SPD_MASK 0x000000f0 #define ATA_SC_SPD_NO_SPEED 0x00000000 #define ATA_SC_SPD_SPEED_GEN1 0x00000010 #define ATA_SC_SPD_SPEED_GEN2 0x00000020 #define ATA_SC_SPD_SPEED_GEN3 0x00000030 #define ATA_SC_IPM_MASK 0x00000f00 #define ATA_SC_IPM_NONE 0x00000000 #define ATA_SC_IPM_DIS_PARTIAL 0x00000100 #define ATA_SC_IPM_DIS_SLUMBER 0x00000200 #define ATA_SC_IPM_DIS_DEVSLEEP 0x00000400 #define ATA_SACTIVE 16 #define AHCI_MAX_PORTS 32 #define AHCI_MAX_SLOTS 32 #define AHCI_MAX_IRQS 16 /* SATA AHCI v1.0 register defines */ #define AHCI_CAP 0x00 #define AHCI_CAP_NPMASK 0x0000001f #define AHCI_CAP_SXS 0x00000020 #define AHCI_CAP_EMS 0x00000040 #define AHCI_CAP_CCCS 0x00000080 #define AHCI_CAP_NCS 0x00001F00 #define AHCI_CAP_NCS_SHIFT 8 #define AHCI_CAP_PSC 0x00002000 #define AHCI_CAP_SSC 0x00004000 #define AHCI_CAP_PMD 0x00008000 #define AHCI_CAP_FBSS 0x00010000 #define AHCI_CAP_SPM 0x00020000 #define AHCI_CAP_SAM 0x00080000 #define AHCI_CAP_ISS 0x00F00000 #define AHCI_CAP_ISS_SHIFT 20 #define AHCI_CAP_SCLO 0x01000000 #define AHCI_CAP_SAL 0x02000000 #define AHCI_CAP_SALP 0x04000000 #define AHCI_CAP_SSS 0x08000000 #define AHCI_CAP_SMPS 0x10000000 #define AHCI_CAP_SSNTF 0x20000000 #define AHCI_CAP_SNCQ 0x40000000 #define AHCI_CAP_64BIT 0x80000000 #define AHCI_GHC 0x04 #define AHCI_GHC_AE 0x80000000 #define AHCI_GHC_MRSM 0x00000004 #define AHCI_GHC_IE 0x00000002 #define AHCI_GHC_HR 0x00000001 #define AHCI_IS 0x08 #define AHCI_PI 0x0c #define AHCI_VS 0x10 #define AHCI_CCCC 0x14 #define AHCI_CCCC_TV_MASK 0xffff0000 #define AHCI_CCCC_TV_SHIFT 16 #define AHCI_CCCC_CC_MASK 0x0000ff00 #define AHCI_CCCC_CC_SHIFT 8 #define AHCI_CCCC_INT_MASK 0x000000f8 #define AHCI_CCCC_INT_SHIFT 3 #define AHCI_CCCC_EN 0x00000001 #define AHCI_CCCP 0x18 #define AHCI_EM_LOC 0x1C #define AHCI_EM_CTL 0x20 #define AHCI_EM_MR 0x00000001 #define AHCI_EM_TM 0x00000100 #define AHCI_EM_RST 0x00000200 #define AHCI_EM_LED 0x00010000 #define AHCI_EM_SAFTE 0x00020000 #define AHCI_EM_SES2 0x00040000 #define AHCI_EM_SGPIO 0x00080000 #define AHCI_EM_SMB 0x01000000 #define AHCI_EM_XMT 0x02000000 #define AHCI_EM_ALHD 0x04000000 #define AHCI_EM_PM 0x08000000 #define AHCI_CAP2 0x24 #define AHCI_CAP2_BOH 0x00000001 #define AHCI_CAP2_NVMP 0x00000002 #define AHCI_CAP2_APST 0x00000004 #define AHCI_CAP2_SDS 0x00000008 #define AHCI_CAP2_SADM 0x00000010 #define AHCI_CAP2_DESO 0x00000020 #define AHCI_OFFSET 0x100 #define AHCI_STEP 0x80 #define AHCI_P_CLB 0x00 #define AHCI_P_CLBU 0x04 #define AHCI_P_FB 0x08 #define AHCI_P_FBU 0x0c #define AHCI_P_IS 0x10 #define AHCI_P_IE 0x14 #define AHCI_P_IX_DHR 0x00000001 #define AHCI_P_IX_PS 0x00000002 #define AHCI_P_IX_DS 0x00000004 #define AHCI_P_IX_SDB 0x00000008 #define AHCI_P_IX_UF 0x00000010 #define AHCI_P_IX_DP 0x00000020 #define AHCI_P_IX_PC 0x00000040 #define AHCI_P_IX_MP 0x00000080 #define AHCI_P_IX_PRC 0x00400000 #define AHCI_P_IX_IPM 0x00800000 #define AHCI_P_IX_OF 0x01000000 #define AHCI_P_IX_INF 0x04000000 #define AHCI_P_IX_IF 0x08000000 #define AHCI_P_IX_HBD 0x10000000 #define AHCI_P_IX_HBF 0x20000000 #define AHCI_P_IX_TFE 0x40000000 #define AHCI_P_IX_CPD 0x80000000 #define AHCI_P_CMD 0x18 #define AHCI_P_CMD_ST 0x00000001 #define AHCI_P_CMD_SUD 0x00000002 #define AHCI_P_CMD_POD 0x00000004 #define AHCI_P_CMD_CLO 0x00000008 #define AHCI_P_CMD_FRE 0x00000010 #define AHCI_P_CMD_CCS_MASK 0x00001f00 #define AHCI_P_CMD_CCS_SHIFT 8 #define AHCI_P_CMD_ISS 0x00002000 #define AHCI_P_CMD_FR 0x00004000 #define AHCI_P_CMD_CR 0x00008000 #define AHCI_P_CMD_CPS 0x00010000 #define AHCI_P_CMD_PMA 0x00020000 #define AHCI_P_CMD_HPCP 0x00040000 #define AHCI_P_CMD_MPSP 0x00080000 #define AHCI_P_CMD_CPD 0x00100000 #define AHCI_P_CMD_ESP 0x00200000 #define AHCI_P_CMD_FBSCP 0x00400000 #define AHCI_P_CMD_APSTE 0x00800000 #define AHCI_P_CMD_ATAPI 0x01000000 #define AHCI_P_CMD_DLAE 0x02000000 #define AHCI_P_CMD_ALPE 0x04000000 #define AHCI_P_CMD_ASP 0x08000000 #define AHCI_P_CMD_ICC_MASK 0xf0000000 #define AHCI_P_CMD_NOOP 0x00000000 #define AHCI_P_CMD_ACTIVE 0x10000000 #define AHCI_P_CMD_PARTIAL 0x20000000 #define AHCI_P_CMD_SLUMBER 0x60000000 #define AHCI_P_CMD_DEVSLEEP 0x80000000 #define AHCI_P_TFD 0x20 #define AHCI_P_SIG 0x24 #define AHCI_P_SSTS 0x28 #define AHCI_P_SCTL 0x2c #define AHCI_P_SERR 0x30 #define AHCI_P_SACT 0x34 #define AHCI_P_CI 0x38 #define AHCI_P_SNTF 0x3C #define AHCI_P_FBS 0x40 #define AHCI_P_FBS_EN 0x00000001 #define AHCI_P_FBS_DEC 0x00000002 #define AHCI_P_FBS_SDE 0x00000004 #define AHCI_P_FBS_DEV 0x00000f00 #define AHCI_P_FBS_DEV_SHIFT 8 #define AHCI_P_FBS_ADO 0x0000f000 #define AHCI_P_FBS_ADO_SHIFT 12 #define AHCI_P_FBS_DWE 0x000f0000 #define AHCI_P_FBS_DWE_SHIFT 16 #define AHCI_P_DEVSLP 0x44 #define AHCI_P_DEVSLP_ADSE 0x00000001 #define AHCI_P_DEVSLP_DSP 0x00000002 #define AHCI_P_DEVSLP_DETO 0x000003fc #define AHCI_P_DEVSLP_DETO_SHIFT 2 #define AHCI_P_DEVSLP_MDAT 0x00007c00 #define AHCI_P_DEVSLP_MDAT_SHIFT 10 #define AHCI_P_DEVSLP_DITO 0x01ff8000 #define AHCI_P_DEVSLP_DITO_SHIFT 15 #define AHCI_P_DEVSLP_DM 0x0e000000 #define AHCI_P_DEVSLP_DM_SHIFT 25 /* Just to be sure, if building as module. */ #if MAXPHYS < 512 * 1024 #undef MAXPHYS #define MAXPHYS 512 * 1024 #endif /* Pessimistic prognosis on number of required S/G entries */ #define AHCI_SG_ENTRIES (roundup(btoc(MAXPHYS) + 1, 8)) /* Command list. 32 commands. First, 1Kbyte aligned. */ #define AHCI_CL_OFFSET 0 #define AHCI_CL_SIZE 32 /* Command tables. Up to 32 commands, Each, 128byte aligned. */ #define AHCI_CT_OFFSET (AHCI_CL_OFFSET + AHCI_CL_SIZE * AHCI_MAX_SLOTS) #define AHCI_CT_SIZE (128 + AHCI_SG_ENTRIES * 16) /* Total main work area. */ #define AHCI_WORK_SIZE (AHCI_CT_OFFSET + AHCI_CT_SIZE * ch->numslots) struct ahci_dma_prd { u_int64_t dba; u_int32_t reserved; u_int32_t dbc; /* 0 based */ #define AHCI_PRD_MASK 0x003fffff /* max 4MB */ #define AHCI_PRD_MAX (AHCI_PRD_MASK + 1) #define AHCI_PRD_IPC (1U << 31) } __packed; struct ahci_cmd_tab { u_int8_t cfis[64]; u_int8_t acmd[32]; u_int8_t reserved[32]; struct ahci_dma_prd prd_tab[AHCI_SG_ENTRIES]; } __packed; struct ahci_cmd_list { u_int16_t cmd_flags; #define AHCI_CMD_ATAPI 0x0020 #define AHCI_CMD_WRITE 0x0040 #define AHCI_CMD_PREFETCH 0x0080 #define AHCI_CMD_RESET 0x0100 #define AHCI_CMD_BIST 0x0200 #define AHCI_CMD_CLR_BUSY 0x0400 u_int16_t prd_length; /* PRD entries */ u_int32_t bytecount; u_int64_t cmd_table_phys; /* 128byte aligned */ } __packed; /* misc defines */ #define ATA_IRQ_RID 0 #define ATA_INTR_FLAGS (INTR_MPSAFE|INTR_TYPE_BIO|INTR_ENTROPY) struct ata_dmaslot { bus_dmamap_t data_map; /* data DMA map */ int nsegs; /* Number of segs loaded */ }; /* structure holding DMA related information */ struct ata_dma { bus_dma_tag_t work_tag; /* workspace DMA tag */ bus_dmamap_t work_map; /* workspace DMA map */ uint8_t *work; /* workspace */ bus_addr_t work_bus; /* bus address of work */ bus_dma_tag_t rfis_tag; /* RFIS list DMA tag */ bus_dmamap_t rfis_map; /* RFIS list DMA map */ uint8_t *rfis; /* FIS receive area */ bus_addr_t rfis_bus; /* bus address of rfis */ bus_dma_tag_t data_tag; /* data DMA tag */ }; enum ahci_slot_states { AHCI_SLOT_EMPTY, AHCI_SLOT_LOADING, AHCI_SLOT_RUNNING, AHCI_SLOT_EXECUTING }; struct ahci_slot { struct ahci_channel *ch; /* Channel */ u_int8_t slot; /* Number of this slot */ enum ahci_slot_states state; /* Slot state */ union ccb *ccb; /* CCB occupying slot */ struct ata_dmaslot dma; /* DMA data of this slot */ struct callout timeout; /* Execution timeout */ }; struct ahci_device { int revision; int mode; u_int bytecount; u_int atapi; u_int tags; u_int caps; }; struct ahci_led { device_t dev; /* Device handle */ struct cdev *led; uint8_t num; /* Number of this led */ uint8_t state; /* State of this led */ }; #define AHCI_NUM_LEDS 3 /* structure describing an ATA channel */ struct ahci_channel { device_t dev; /* Device handle */ int unit; /* Physical channel */ struct resource *r_mem; /* Memory of this channel */ struct resource *r_irq; /* Interrupt of this channel */ void *ih; /* Interrupt handle */ struct ata_dma dma; /* DMA data */ struct cam_sim *sim; struct cam_path *path; uint32_t caps; /* Controller capabilities */ uint32_t caps2; /* Controller capabilities */ uint32_t chcaps; /* Channel capabilities */ uint32_t chscaps; /* Channel sleep capabilities */ uint16_t vendorid; /* Vendor ID from the bus */ uint16_t deviceid; /* Device ID from the bus */ uint16_t subvendorid; /* Subvendor ID from the bus */ uint16_t subdeviceid; /* Subdevice ID from the bus */ int quirks; int numslots; /* Number of present slots */ int pm_level; /* power management level */ int devices; /* What is present */ int pm_present; /* PM presence reported */ int fbs_enabled; /* FIS-based switching enabled */ void (*start)(struct ahci_channel *); union ccb *hold[AHCI_MAX_SLOTS]; struct ahci_slot slot[AHCI_MAX_SLOTS]; uint32_t oslots; /* Occupied slots */ uint32_t rslots; /* Running slots */ uint32_t aslots; /* Slots with atomic commands */ uint32_t eslots; /* Slots in error */ uint32_t toslots; /* Slots in timeout */ int lastslot; /* Last used slot */ int taggedtarget; /* Last tagged target */ int numrslots; /* Number of running slots */ int numrslotspd[16];/* Number of running slots per dev */ int numtslots; /* Number of tagged slots */ int numtslotspd[16];/* Number of tagged slots per dev */ int numhslots; /* Number of held slots */ int recoverycmd; /* Our READ LOG active */ int fatalerr; /* Fatal error happened */ int resetting; /* Hard-reset in progress. */ int resetpolldiv; /* Hard-reset poll divider. */ int listening; /* SUD bit is cleared. */ int wrongccs; /* CCS field in CMD was wrong */ union ccb *frozen; /* Frozen command */ struct callout pm_timer; /* Power management events */ struct callout reset_timer; /* Hard-reset timeout */ struct ahci_device user[16]; /* User-specified settings */ struct ahci_device curr[16]; /* Current settings */ struct mtx_padalign mtx; /* state lock */ STAILQ_HEAD(, ccb_hdr) doneq; /* queue of completed CCBs */ int batch; /* doneq is in use */ }; struct ahci_enclosure { device_t dev; /* Device handle */ struct resource *r_memc; /* Control register */ struct resource *r_memt; /* Transmit buffer */ struct resource *r_memr; /* Receive buffer */ struct cam_sim *sim; struct cam_path *path; struct mtx mtx; /* state lock */ struct ahci_led leds[AHCI_MAX_PORTS * 3]; uint32_t capsem; /* Controller capabilities */ uint8_t status[AHCI_MAX_PORTS][4]; /* ArrayDev statuses */ int quirks; int channels; uint32_t ichannels; }; /* structure describing a AHCI controller */ struct ahci_controller { device_t dev; bus_dma_tag_t dma_tag; int r_rid; int r_msix_tab_rid; int r_msix_pba_rid; uint16_t vendorid; /* Vendor ID from the bus */ uint16_t deviceid; /* Device ID from the bus */ uint16_t subvendorid; /* Subvendor ID from the bus */ uint16_t subdeviceid; /* Subdevice ID from the bus */ struct resource *r_mem; struct resource *r_msix_table; struct resource *r_msix_pba; struct rman sc_iomem; struct ahci_controller_irq { struct ahci_controller *ctlr; struct resource *r_irq; void *handle; int r_irq_rid; int mode; #define AHCI_IRQ_MODE_ALL 0 #define AHCI_IRQ_MODE_AFTER 1 #define AHCI_IRQ_MODE_ONE 2 } irqs[AHCI_MAX_IRQS]; uint32_t caps; /* Controller capabilities */ uint32_t caps2; /* Controller capabilities */ uint32_t capsem; /* Controller capabilities */ uint32_t emloc; /* EM buffer location */ int quirks; int numirqs; int channels; uint32_t ichannels; int ccc; /* CCC timeout */ int cccv; /* CCC vector */ int direct; /* Direct command completion */ int msi; /* MSI interupts */ struct { void (*function)(void *); void *argument; } interrupt[AHCI_MAX_PORTS]; void (*ch_start)(struct ahci_channel *); int dma_coherent; /* DMA is cache-coherent */ }; enum ahci_err_type { AHCI_ERR_NONE, /* No error */ AHCI_ERR_INVALID, /* Error detected by us before submitting. */ AHCI_ERR_INNOCENT, /* Innocent victim. */ AHCI_ERR_TFE, /* Task File Error. */ AHCI_ERR_SATA, /* SATA error. */ AHCI_ERR_TIMEOUT, /* Command execution timeout. */ AHCI_ERR_NCQ, /* NCQ command error. CCB should be put on hold * until READ LOG executed to reveal error. */ }; /* macros to hide busspace uglyness */ #define ATA_INB(res, offset) \ bus_read_1((res), (offset)) #define ATA_INW(res, offset) \ bus_read_2((res), (offset)) #define ATA_INL(res, offset) \ bus_read_4((res), (offset)) #define ATA_INSW(res, offset, addr, count) \ bus_read_multi_2((res), (offset), (addr), (count)) #define ATA_INSW_STRM(res, offset, addr, count) \ bus_read_multi_stream_2((res), (offset), (addr), (count)) #define ATA_INSL(res, offset, addr, count) \ bus_read_multi_4((res), (offset), (addr), (count)) #define ATA_INSL_STRM(res, offset, addr, count) \ bus_read_multi_stream_4((res), (offset), (addr), (count)) #define ATA_OUTB(res, offset, value) \ bus_write_1((res), (offset), (value)) #define ATA_OUTW(res, offset, value) \ bus_write_2((res), (offset), (value)) #define ATA_OUTL(res, offset, value) \ bus_write_4((res), (offset), (value)) #define ATA_OUTSW(res, offset, addr, count) \ bus_write_multi_2((res), (offset), (addr), (count)) #define ATA_OUTSW_STRM(res, offset, addr, count) \ bus_write_multi_stream_2((res), (offset), (addr), (count)) #define ATA_OUTSL(res, offset, addr, count) \ bus_write_multi_4((res), (offset), (addr), (count)) #define ATA_OUTSL_STRM(res, offset, addr, count) \ bus_write_multi_stream_4((res), (offset), (addr), (count)) /* * On some platforms, we must ensure proper interdevice write ordering. * The AHCI interrupt status register must be updated in HW before * registers in interrupt controller. * Unfortunately, only way how we can do it is readback. * * Currently, only ARM is known to have this issue. */ #if defined(__arm__) #define ATA_RBL(res, offset) \ bus_read_4((res), (offset)) #else #define ATA_RBL(res, offset) #endif #define AHCI_Q_NOFORCE 0x00000001 #define AHCI_Q_NOPMP 0x00000002 #define AHCI_Q_NONCQ 0x00000004 #define AHCI_Q_1CH 0x00000008 #define AHCI_Q_2CH 0x00000010 #define AHCI_Q_4CH 0x00000020 #define AHCI_Q_EDGEIS 0x00000040 #define AHCI_Q_SATA2 0x00000080 #define AHCI_Q_NOBSYRES 0x00000100 #define AHCI_Q_NOAA 0x00000200 #define AHCI_Q_NOCOUNT 0x00000400 #define AHCI_Q_ALTSIG 0x00000800 #define AHCI_Q_NOMSI 0x00001000 #define AHCI_Q_ATI_PMP_BUG 0x00002000 #define AHCI_Q_MAXIO_64K 0x00004000 #define AHCI_Q_SATA1_UNIT0 0x00008000 /* need better method for this */ #define AHCI_Q_ABAR0 0x00010000 #define AHCI_Q_1MSI 0x00020000 #define AHCI_Q_FORCE_PI 0x00040000 #define AHCI_Q_RESTORE_CAP 0x00080000 #define AHCI_Q_NOMSIX 0x00100000 #define AHCI_Q_MRVL_SR_DEL 0x00200000 #define AHCI_Q_NOCCS 0x00400000 #define AHCI_Q_NOAUX 0x00800000 -#define AHCI_Q_DMA31 0x01000000 #define AHCI_Q_BIT_STRING \ "\020" \ "\001NOFORCE" \ "\002NOPMP" \ "\003NONCQ" \ "\0041CH" \ "\0052CH" \ "\0064CH" \ "\007EDGEIS" \ "\010SATA2" \ "\011NOBSYRES" \ "\012NOAA" \ "\013NOCOUNT" \ "\014ALTSIG" \ "\015NOMSI" \ "\016ATI_PMP_BUG" \ "\017MAXIO_64K" \ "\020SATA1_UNIT0" \ "\021ABAR0" \ "\0221MSI" \ "\023FORCE_PI" \ "\024RESTORE_CAP" \ "\025NOMSIX" \ "\026MRVL_SR_DEL" \ "\027NOCCS" \ - "\030NOAUX" \ - "\031DMA31" + "\030NOAUX" int ahci_attach(device_t dev); int ahci_detach(device_t dev); int ahci_setup_interrupt(device_t dev); int ahci_print_child(device_t dev, device_t child); struct resource *ahci_alloc_resource(device_t dev, device_t child, int type, int *rid, rman_res_t start, rman_res_t end, rman_res_t count, u_int flags); int ahci_release_resource(device_t dev, device_t child, int type, int rid, struct resource *r); int ahci_setup_intr(device_t dev, device_t child, struct resource *irq, int flags, driver_filter_t *filter, driver_intr_t *function, void *argument, void **cookiep); int ahci_teardown_intr(device_t dev, device_t child, struct resource *irq, void *cookie); int ahci_child_location_str(device_t dev, device_t child, char *buf, size_t buflen); bus_dma_tag_t ahci_get_dma_tag(device_t dev, device_t child); int ahci_ctlr_reset(device_t dev); int ahci_ctlr_setup(device_t dev); void ahci_free_mem(device_t dev); extern devclass_t ahci_devclass; Index: projects/power8_bringup_hacks/sys/dev/ahci/ahci_pci.c =================================================================== --- projects/power8_bringup_hacks/sys/dev/ahci/ahci_pci.c (revision 339414) +++ projects/power8_bringup_hacks/sys/dev/ahci/ahci_pci.c (revision 339415) @@ -1,690 +1,690 @@ /*- * Copyright (c) 2009-2012 Alexander Motin * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer, * without modification, immediately at the beginning of the file. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. */ #include __FBSDID("$FreeBSD$"); #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include "ahci.h" static int force_ahci = 1; TUNABLE_INT("hw.ahci.force", &force_ahci); static const struct { uint32_t id; uint8_t rev; const char *name; int quirks; } ahci_ids[] = { {0x43801002, 0x00, "AMD SB600", AHCI_Q_NOMSI | AHCI_Q_ATI_PMP_BUG | AHCI_Q_MAXIO_64K}, {0x43901002, 0x00, "AMD SB7x0/SB8x0/SB9x0", AHCI_Q_ATI_PMP_BUG | AHCI_Q_1MSI}, {0x43911002, 0x00, "AMD SB7x0/SB8x0/SB9x0", AHCI_Q_ATI_PMP_BUG | AHCI_Q_1MSI}, {0x43921002, 0x00, "AMD SB7x0/SB8x0/SB9x0", AHCI_Q_ATI_PMP_BUG | AHCI_Q_1MSI}, {0x43931002, 0x00, "AMD SB7x0/SB8x0/SB9x0", AHCI_Q_ATI_PMP_BUG | AHCI_Q_1MSI}, {0x43941002, 0x00, "AMD SB7x0/SB8x0/SB9x0", AHCI_Q_ATI_PMP_BUG | AHCI_Q_1MSI}, /* Not sure SB8x0/SB9x0 needs this quirk. Be conservative though */ {0x43951002, 0x00, "AMD SB8x0/SB9x0", AHCI_Q_ATI_PMP_BUG}, {0x43b61022, 0x00, "AMD X399", 0}, {0x43b51022, 0x00, "AMD 300 Series", 0}, /* X370 */ {0x43b71022, 0x00, "AMD 300 Series", 0}, /* B350 */ {0x78001022, 0x00, "AMD Hudson-2", 0}, {0x78011022, 0x00, "AMD Hudson-2", 0}, {0x78021022, 0x00, "AMD Hudson-2", 0}, {0x78031022, 0x00, "AMD Hudson-2", 0}, {0x78041022, 0x00, "AMD Hudson-2", 0}, {0x79001022, 0x00, "AMD KERNCZ", 0}, {0x79011022, 0x00, "AMD KERNCZ", 0}, {0x79021022, 0x00, "AMD KERNCZ", 0}, {0x79031022, 0x00, "AMD KERNCZ", 0}, {0x79041022, 0x00, "AMD KERNCZ", 0}, {0x06011b21, 0x00, "ASMedia ASM1060", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06021b21, 0x00, "ASMedia ASM1060", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06111b21, 0x00, "ASMedia ASM1061", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06121b21, 0x00, "ASMedia ASM1062", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06201b21, 0x00, "ASMedia ASM106x", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06211b21, 0x00, "ASMedia ASM106x", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06221b21, 0x00, "ASMedia ASM106x", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06241b21, 0x00, "ASMedia ASM106x", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x06251b21, 0x00, "ASMedia ASM106x", AHCI_Q_NOCCS|AHCI_Q_NOAUX}, {0x26528086, 0x00, "Intel ICH6", AHCI_Q_NOFORCE}, {0x26538086, 0x00, "Intel ICH6M", AHCI_Q_NOFORCE}, {0x26818086, 0x00, "Intel ESB2", 0}, {0x26828086, 0x00, "Intel ESB2", 0}, {0x26838086, 0x00, "Intel ESB2", 0}, {0x27c18086, 0x00, "Intel ICH7", 0}, {0x27c38086, 0x00, "Intel ICH7", 0}, {0x27c58086, 0x00, "Intel ICH7M", 0}, {0x27c68086, 0x00, "Intel ICH7M", 0}, {0x28218086, 0x00, "Intel ICH8", 0}, {0x28228086, 0x00, "Intel ICH8+ (RAID)", 0}, {0x28248086, 0x00, "Intel ICH8", 0}, {0x28298086, 0x00, "Intel ICH8M", 0}, {0x282a8086, 0x00, "Intel ICH8M+ (RAID)", 0}, {0x29228086, 0x00, "Intel ICH9", 0}, {0x29238086, 0x00, "Intel ICH9", 0}, {0x29248086, 0x00, "Intel ICH9", 0}, {0x29258086, 0x00, "Intel ICH9", 0}, {0x29278086, 0x00, "Intel ICH9", 0}, {0x29298086, 0x00, "Intel ICH9M", 0}, {0x292a8086, 0x00, "Intel ICH9M", 0}, {0x292b8086, 0x00, "Intel ICH9M", 0}, {0x292c8086, 0x00, "Intel ICH9M", 0}, {0x292f8086, 0x00, "Intel ICH9M", 0}, {0x294d8086, 0x00, "Intel ICH9", 0}, {0x294e8086, 0x00, "Intel ICH9M", 0}, {0x3a058086, 0x00, "Intel ICH10 (RAID)", 0}, {0x3a228086, 0x00, "Intel ICH10", 0}, {0x3a258086, 0x00, "Intel ICH10 (RAID)", 0}, {0x3b228086, 0x00, "Intel Ibex Peak", 0}, {0x3b238086, 0x00, "Intel Ibex Peak", 0}, {0x3b258086, 0x00, "Intel Ibex Peak (RAID)", 0}, {0x3b298086, 0x00, "Intel Ibex Peak-M", 0}, {0x3b2c8086, 0x00, "Intel Ibex Peak-M (RAID)", 0}, {0x3b2f8086, 0x00, "Intel Ibex Peak-M", 0}, {0x19b08086, 0x00, "Intel Denverton", 0}, {0x19b18086, 0x00, "Intel Denverton", 0}, {0x19b28086, 0x00, "Intel Denverton", 0}, {0x19b38086, 0x00, "Intel Denverton", 0}, {0x19b48086, 0x00, "Intel Denverton", 0}, {0x19b58086, 0x00, "Intel Denverton", 0}, {0x19b68086, 0x00, "Intel Denverton", 0}, {0x19b78086, 0x00, "Intel Denverton", 0}, {0x19be8086, 0x00, "Intel Denverton", 0}, {0x19bf8086, 0x00, "Intel Denverton", 0}, {0x19c08086, 0x00, "Intel Denverton", 0}, {0x19c18086, 0x00, "Intel Denverton", 0}, {0x19c28086, 0x00, "Intel Denverton", 0}, {0x19c38086, 0x00, "Intel Denverton", 0}, {0x19c48086, 0x00, "Intel Denverton", 0}, {0x19c58086, 0x00, "Intel Denverton", 0}, {0x19c68086, 0x00, "Intel Denverton", 0}, {0x19c78086, 0x00, "Intel Denverton", 0}, {0x19ce8086, 0x00, "Intel Denverton", 0}, {0x19cf8086, 0x00, "Intel Denverton", 0}, {0x1c028086, 0x00, "Intel Cougar Point", 0}, {0x1c038086, 0x00, "Intel Cougar Point", 0}, {0x1c048086, 0x00, "Intel Cougar Point (RAID)", 0}, {0x1c058086, 0x00, "Intel Cougar Point (RAID)", 0}, {0x1c068086, 0x00, "Intel Cougar Point (RAID)", 0}, {0x1d028086, 0x00, "Intel Patsburg", 0}, {0x1d048086, 0x00, "Intel Patsburg", 0}, {0x1d068086, 0x00, "Intel Patsburg", 0}, {0x28268086, 0x00, "Intel Patsburg+ (RAID)", 0}, {0x1e028086, 0x00, "Intel Panther Point", 0}, {0x1e038086, 0x00, "Intel Panther Point", 0}, {0x1e048086, 0x00, "Intel Panther Point (RAID)", 0}, {0x1e058086, 0x00, "Intel Panther Point (RAID)", 0}, {0x1e068086, 0x00, "Intel Panther Point (RAID)", 0}, {0x1e078086, 0x00, "Intel Panther Point (RAID)", 0}, {0x1e0e8086, 0x00, "Intel Panther Point (RAID)", 0}, {0x1e0f8086, 0x00, "Intel Panther Point (RAID)", 0}, {0x1f228086, 0x00, "Intel Avoton", 0}, {0x1f238086, 0x00, "Intel Avoton", 0}, {0x1f248086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f258086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f268086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f278086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f2e8086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f2f8086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f328086, 0x00, "Intel Avoton", 0}, {0x1f338086, 0x00, "Intel Avoton", 0}, {0x1f348086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f358086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f368086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f378086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f3e8086, 0x00, "Intel Avoton (RAID)", 0}, {0x1f3f8086, 0x00, "Intel Avoton (RAID)", 0}, {0x23a38086, 0x00, "Intel Coleto Creek", 0}, {0x8c028086, 0x00, "Intel Lynx Point", 0}, {0x8c038086, 0x00, "Intel Lynx Point", 0}, {0x8c048086, 0x00, "Intel Lynx Point (RAID)", 0}, {0x8c058086, 0x00, "Intel Lynx Point (RAID)", 0}, {0x8c068086, 0x00, "Intel Lynx Point (RAID)", 0}, {0x8c078086, 0x00, "Intel Lynx Point (RAID)", 0}, {0x8c0e8086, 0x00, "Intel Lynx Point (RAID)", 0}, {0x8c0f8086, 0x00, "Intel Lynx Point (RAID)", 0}, {0x8c828086, 0x00, "Intel Wildcat Point", 0}, {0x8c838086, 0x00, "Intel Wildcat Point", 0}, {0x8c848086, 0x00, "Intel Wildcat Point (RAID)", 0}, {0x8c858086, 0x00, "Intel Wildcat Point (RAID)", 0}, {0x8c868086, 0x00, "Intel Wildcat Point (RAID)", 0}, {0x8c878086, 0x00, "Intel Wildcat Point (RAID)", 0}, {0x8c8e8086, 0x00, "Intel Wildcat Point (RAID)", 0}, {0x8c8f8086, 0x00, "Intel Wildcat Point (RAID)", 0}, {0x8d028086, 0x00, "Intel Wellsburg", 0}, {0x8d048086, 0x00, "Intel Wellsburg (RAID)", 0}, {0x8d068086, 0x00, "Intel Wellsburg (RAID)", 0}, {0x8d628086, 0x00, "Intel Wellsburg", 0}, {0x8d648086, 0x00, "Intel Wellsburg (RAID)", 0}, {0x8d668086, 0x00, "Intel Wellsburg (RAID)", 0}, {0x8d6e8086, 0x00, "Intel Wellsburg (RAID)", 0}, {0x28238086, 0x00, "Intel Wellsburg+ (RAID)", 0}, {0x28278086, 0x00, "Intel Wellsburg+ (RAID)", 0}, {0x9c028086, 0x00, "Intel Lynx Point-LP", 0}, {0x9c038086, 0x00, "Intel Lynx Point-LP", 0}, {0x9c048086, 0x00, "Intel Lynx Point-LP (RAID)", 0}, {0x9c058086, 0x00, "Intel Lynx Point-LP (RAID)", 0}, {0x9c068086, 0x00, "Intel Lynx Point-LP (RAID)", 0}, {0x9c078086, 0x00, "Intel Lynx Point-LP (RAID)", 0}, {0x9c0e8086, 0x00, "Intel Lynx Point-LP (RAID)", 0}, {0x9c0f8086, 0x00, "Intel Lynx Point-LP (RAID)", 0}, {0x9d038086, 0x00, "Intel Sunrise Point-LP", 0}, {0x9d058086, 0x00, "Intel Sunrise Point-LP (RAID)", 0}, {0x9d078086, 0x00, "Intel Sunrise Point-LP (RAID)", 0}, {0xa1028086, 0x00, "Intel Sunrise Point", 0}, {0xa1038086, 0x00, "Intel Sunrise Point", 0}, {0xa1058086, 0x00, "Intel Sunrise Point (RAID)", 0}, {0xa1068086, 0x00, "Intel Sunrise Point (RAID)", 0}, {0xa1078086, 0x00, "Intel Sunrise Point (RAID)", 0}, {0xa10f8086, 0x00, "Intel Sunrise Point (RAID)", 0}, {0xa1828086, 0x00, "Intel Lewisburg", 0}, {0xa1868086, 0x00, "Intel Lewisburg (RAID)", 0}, {0xa1d28086, 0x00, "Intel Lewisburg", 0}, {0xa1d68086, 0x00, "Intel Lewisburg (RAID)", 0}, {0xa2028086, 0x00, "Intel Lewisburg", 0}, {0xa2068086, 0x00, "Intel Lewisburg (RAID)", 0}, {0xa2528086, 0x00, "Intel Lewisburg", 0}, {0xa2568086, 0x00, "Intel Lewisburg (RAID)", 0}, {0xa2828086, 0x00, "Intel Union Point", 0}, {0xa2868086, 0x00, "Intel Union Point (RAID)", 0}, {0xa28e8086, 0x00, "Intel Union Point (RAID)", 0}, {0x23238086, 0x00, "Intel DH89xxCC", 0}, {0x2360197b, 0x00, "JMicron JMB360", 0}, {0x2361197b, 0x00, "JMicron JMB361", AHCI_Q_NOFORCE | AHCI_Q_1CH}, {0x2362197b, 0x00, "JMicron JMB362", 0}, {0x2363197b, 0x00, "JMicron JMB363", AHCI_Q_NOFORCE}, {0x2365197b, 0x00, "JMicron JMB365", AHCI_Q_NOFORCE}, {0x2366197b, 0x00, "JMicron JMB366", AHCI_Q_NOFORCE}, {0x2368197b, 0x00, "JMicron JMB368", AHCI_Q_NOFORCE}, {0x611111ab, 0x00, "Marvell 88SE6111", AHCI_Q_NOFORCE | AHCI_Q_NOPMP | AHCI_Q_1CH | AHCI_Q_EDGEIS}, {0x612111ab, 0x00, "Marvell 88SE6121", AHCI_Q_NOFORCE | AHCI_Q_NOPMP | AHCI_Q_2CH | AHCI_Q_EDGEIS | AHCI_Q_NONCQ | AHCI_Q_NOCOUNT}, {0x614111ab, 0x00, "Marvell 88SE6141", AHCI_Q_NOFORCE | AHCI_Q_NOPMP | AHCI_Q_4CH | AHCI_Q_EDGEIS | AHCI_Q_NONCQ | AHCI_Q_NOCOUNT}, {0x614511ab, 0x00, "Marvell 88SE6145", AHCI_Q_NOFORCE | AHCI_Q_NOPMP | AHCI_Q_4CH | AHCI_Q_EDGEIS | AHCI_Q_NONCQ | AHCI_Q_NOCOUNT}, {0x91201b4b, 0x00, "Marvell 88SE912x", AHCI_Q_EDGEIS}, {0x91231b4b, 0x11, "Marvell 88SE912x", AHCI_Q_ALTSIG}, {0x91231b4b, 0x00, "Marvell 88SE912x", AHCI_Q_EDGEIS|AHCI_Q_SATA2}, {0x91251b4b, 0x00, "Marvell 88SE9125", 0}, {0x91281b4b, 0x00, "Marvell 88SE9128", AHCI_Q_ALTSIG}, {0x91301b4b, 0x00, "Marvell 88SE9130", AHCI_Q_ALTSIG}, {0x91721b4b, 0x00, "Marvell 88SE9172", 0}, {0x91821b4b, 0x00, "Marvell 88SE9182", 0}, {0x91831b4b, 0x00, "Marvell 88SS9183", 0}, {0x91a01b4b, 0x00, "Marvell 88SE91Ax", 0}, {0x92151b4b, 0x00, "Marvell 88SE9215", 0}, {0x92201b4b, 0x00, "Marvell 88SE9220", AHCI_Q_ALTSIG}, {0x92301b4b, 0x00, "Marvell 88SE9230", AHCI_Q_ALTSIG}, - {0x92351b4b, 0x00, "Marvell 88SE9235", AHCI_Q_DMA31}, + {0x92351b4b, 0x00, "Marvell 88SE9235", 0}, {0x06201103, 0x00, "HighPoint RocketRAID 620", 0}, {0x06201b4b, 0x00, "HighPoint RocketRAID 620", 0}, {0x06221103, 0x00, "HighPoint RocketRAID 622", 0}, {0x06221b4b, 0x00, "HighPoint RocketRAID 622", 0}, {0x06401103, 0x00, "HighPoint RocketRAID 640", 0}, {0x06401b4b, 0x00, "HighPoint RocketRAID 640", 0}, {0x06441103, 0x00, "HighPoint RocketRAID 644", 0}, {0x06441b4b, 0x00, "HighPoint RocketRAID 644", 0}, {0x06411103, 0x00, "HighPoint RocketRAID 640L", 0}, {0x06421103, 0x00, "HighPoint RocketRAID 642L", 0}, {0x06451103, 0x00, "HighPoint RocketRAID 644L", 0}, {0x044c10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x044d10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x044e10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x044f10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x045c10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x045d10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x045e10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x045f10de, 0x00, "NVIDIA MCP65", AHCI_Q_NOAA}, {0x055010de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055110de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055210de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055310de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055410de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055510de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055610de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055710de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055810de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055910de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055A10de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x055B10de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x058410de, 0x00, "NVIDIA MCP67", AHCI_Q_NOAA}, {0x07f010de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f110de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f210de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f310de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f410de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f510de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f610de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f710de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f810de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07f910de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07fa10de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x07fb10de, 0x00, "NVIDIA MCP73", AHCI_Q_NOAA}, {0x0ad010de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad110de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad210de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad310de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad410de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad510de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad610de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad710de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad810de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ad910de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ada10de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0adb10de, 0x00, "NVIDIA MCP77", AHCI_Q_NOAA}, {0x0ab410de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0ab510de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0ab610de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0ab710de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0ab810de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0ab910de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0aba10de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0abb10de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0abc10de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0abd10de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0abe10de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0abf10de, 0x00, "NVIDIA MCP79", AHCI_Q_NOAA}, {0x0d8410de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8510de, 0x00, "NVIDIA MCP89", AHCI_Q_NOFORCE|AHCI_Q_NOAA}, {0x0d8610de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8710de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8810de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8910de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8a10de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8b10de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8c10de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8d10de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8e10de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x0d8f10de, 0x00, "NVIDIA MCP89", AHCI_Q_NOAA}, {0x3781105a, 0x00, "Promise TX8660", 0}, {0x33491106, 0x00, "VIA VT8251", AHCI_Q_NOPMP|AHCI_Q_NONCQ}, {0x62871106, 0x00, "VIA VT8251", AHCI_Q_NOPMP|AHCI_Q_NONCQ}, {0x11841039, 0x00, "SiS 966", 0}, {0x11851039, 0x00, "SiS 968", 0}, {0x01861039, 0x00, "SiS 968", 0}, {0xa01c177d, 0x00, "ThunderX", AHCI_Q_ABAR0|AHCI_Q_1MSI}, {0x00311c36, 0x00, "Annapurna", AHCI_Q_FORCE_PI|AHCI_Q_RESTORE_CAP|AHCI_Q_NOMSIX}, {0x00000000, 0x00, NULL, 0} }; static int ahci_pci_ctlr_reset(device_t dev) { if (pci_read_config(dev, PCIR_DEVVENDOR, 4) == 0x28298086 && (pci_read_config(dev, 0x92, 1) & 0xfe) == 0x04) pci_write_config(dev, 0x92, 0x01, 1); return ahci_ctlr_reset(dev); } static int ahci_probe(device_t dev) { char buf[64]; int i, valid = 0; uint32_t devid = pci_get_devid(dev); uint8_t revid = pci_get_revid(dev); /* * Ensure it is not a PCI bridge (some vendors use * the same PID and VID in PCI bridge and AHCI cards). */ if (pci_get_class(dev) == PCIC_BRIDGE) return (ENXIO); /* Is this a possible AHCI candidate? */ if (pci_get_class(dev) == PCIC_STORAGE && pci_get_subclass(dev) == PCIS_STORAGE_SATA && pci_get_progif(dev) == PCIP_STORAGE_SATA_AHCI_1_0) valid = 1; else if (pci_get_class(dev) == PCIC_STORAGE && pci_get_subclass(dev) == PCIS_STORAGE_RAID) valid = 2; /* Is this a known AHCI chip? */ for (i = 0; ahci_ids[i].id != 0; i++) { if (ahci_ids[i].id == devid && ahci_ids[i].rev <= revid && (valid || (force_ahci == 1 && !(ahci_ids[i].quirks & AHCI_Q_NOFORCE)))) { /* Do not attach JMicrons with single PCI function. */ if (pci_get_vendor(dev) == 0x197b && (pci_read_config(dev, 0xdf, 1) & 0x40) == 0) return (ENXIO); snprintf(buf, sizeof(buf), "%s AHCI SATA controller", ahci_ids[i].name); device_set_desc_copy(dev, buf); return (BUS_PROBE_DEFAULT); } } if (valid != 1) return (ENXIO); device_set_desc_copy(dev, "AHCI SATA controller"); return (BUS_PROBE_DEFAULT); } static int ahci_ata_probe(device_t dev) { char buf[64]; int i; uint32_t devid = pci_get_devid(dev); uint8_t revid = pci_get_revid(dev); if ((intptr_t)device_get_ivars(dev) >= 0) return (ENXIO); /* Is this a known AHCI chip? */ for (i = 0; ahci_ids[i].id != 0; i++) { if (ahci_ids[i].id == devid && ahci_ids[i].rev <= revid) { snprintf(buf, sizeof(buf), "%s AHCI SATA controller", ahci_ids[i].name); device_set_desc_copy(dev, buf); return (BUS_PROBE_DEFAULT); } } device_set_desc_copy(dev, "AHCI SATA controller"); return (BUS_PROBE_DEFAULT); } static int ahci_pci_read_msix_bars(device_t dev, uint8_t *table_bar, uint8_t *pba_bar) { int cap_offset = 0, ret; uint32_t val; if ((table_bar == NULL) || (pba_bar == NULL)) return (EINVAL); ret = pci_find_cap(dev, PCIY_MSIX, &cap_offset); if (ret != 0) return (EINVAL); val = pci_read_config(dev, cap_offset + PCIR_MSIX_TABLE, 4); *table_bar = PCIR_BAR(val & PCIM_MSIX_BIR_MASK); val = pci_read_config(dev, cap_offset + PCIR_MSIX_PBA, 4); *pba_bar = PCIR_BAR(val & PCIM_MSIX_BIR_MASK); return (0); } static int ahci_pci_attach(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); int error, i; uint32_t devid = pci_get_devid(dev); uint8_t revid = pci_get_revid(dev); int msi_count, msix_count; uint8_t table_bar = 0, pba_bar = 0; msi_count = pci_msi_count(dev); msix_count = pci_msix_count(dev); i = 0; while (ahci_ids[i].id != 0 && (ahci_ids[i].id != devid || ahci_ids[i].rev > revid)) i++; ctlr->quirks = ahci_ids[i].quirks; /* Limit speed for my onboard JMicron external port. * It is not eSATA really, limit to SATA 1 */ if (pci_get_devid(dev) == 0x2363197b && pci_get_subvendor(dev) == 0x1043 && pci_get_subdevice(dev) == 0x81e4) ctlr->quirks |= AHCI_Q_SATA1_UNIT0; resource_int_value(device_get_name(dev), device_get_unit(dev), "quirks", &ctlr->quirks); ctlr->vendorid = pci_get_vendor(dev); ctlr->deviceid = pci_get_device(dev); ctlr->subvendorid = pci_get_subvendor(dev); ctlr->subdeviceid = pci_get_subdevice(dev); /* Default AHCI Base Address is BAR(5), Cavium uses BAR(0) */ if (ctlr->quirks & AHCI_Q_ABAR0) ctlr->r_rid = PCIR_BAR(0); else ctlr->r_rid = PCIR_BAR(5); if (!(ctlr->r_mem = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &ctlr->r_rid, RF_ACTIVE))) return ENXIO; if (ctlr->quirks & AHCI_Q_NOMSIX) msix_count = 0; /* Read MSI-x BAR IDs if supported */ if (msix_count > 0) { error = ahci_pci_read_msix_bars(dev, &table_bar, &pba_bar); if (error == 0) { ctlr->r_msix_tab_rid = table_bar; ctlr->r_msix_pba_rid = pba_bar; } else { /* Failed to read BARs, disable MSI-x */ msix_count = 0; } } /* Allocate resources for MSI-x table and PBA */ if (msix_count > 0) { /* * Allocate new MSI-x table only if not * allocated before. */ ctlr->r_msix_table = NULL; if (ctlr->r_msix_tab_rid != ctlr->r_rid) { /* Separate BAR for MSI-x */ ctlr->r_msix_table = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &ctlr->r_msix_tab_rid, RF_ACTIVE); if (ctlr->r_msix_table == NULL) { ahci_free_mem(dev); return (ENXIO); } } /* * Allocate new PBA table only if not * allocated before. */ ctlr->r_msix_pba = NULL; if ((ctlr->r_msix_pba_rid != ctlr->r_msix_tab_rid) && (ctlr->r_msix_pba_rid != ctlr->r_rid)) { /* Separate BAR for PBA */ ctlr->r_msix_pba = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &ctlr->r_msix_pba_rid, RF_ACTIVE); if (ctlr->r_msix_pba == NULL) { ahci_free_mem(dev); return (ENXIO); } } } pci_enable_busmaster(dev); /* Reset controller */ if ((error = ahci_pci_ctlr_reset(dev)) != 0) { ahci_free_mem(dev); return (error); } /* Setup interrupts. */ /* Setup MSI register parameters */ /* Process hints. */ if (ctlr->quirks & AHCI_Q_NOMSI) ctlr->msi = 0; else if (ctlr->quirks & AHCI_Q_1MSI) ctlr->msi = 1; else ctlr->msi = 2; resource_int_value(device_get_name(dev), device_get_unit(dev), "msi", &ctlr->msi); ctlr->numirqs = 1; if (msi_count == 0 && msix_count == 0) ctlr->msi = 0; if (ctlr->msi < 0) ctlr->msi = 0; else if (ctlr->msi == 1) { msi_count = min(1, msi_count); msix_count = min(1, msix_count); } else if (ctlr->msi > 1) ctlr->msi = 2; /* Allocate MSI/MSI-x if needed/present. */ if (ctlr->msi > 0) { error = ENXIO; /* Try to allocate MSI-x first */ if (msix_count > 0) { error = pci_alloc_msix(dev, &msix_count); if (error == 0) ctlr->numirqs = msix_count; } /* * Try to allocate MSI if msi_count is greater than 0 * and if MSI-x allocation failed. */ if ((error != 0) && (msi_count > 0)) { error = pci_alloc_msi(dev, &msi_count); if (error == 0) ctlr->numirqs = msi_count; } /* Both MSI and MSI-x allocations failed */ if (error != 0) { ctlr->msi = 0; device_printf(dev, "Failed to allocate MSI/MSI-x, " "falling back to INTx\n"); } } error = ahci_attach(dev); if (error != 0) { if (ctlr->msi > 0) pci_release_msi(dev); ahci_free_mem(dev); } return error; } static int ahci_pci_detach(device_t dev) { ahci_detach(dev); pci_release_msi(dev); return (0); } static int ahci_pci_suspend(device_t dev) { struct ahci_controller *ctlr = device_get_softc(dev); bus_generic_suspend(dev); /* Disable interupts, so the state change(s) doesn't trigger */ ATA_OUTL(ctlr->r_mem, AHCI_GHC, ATA_INL(ctlr->r_mem, AHCI_GHC) & (~AHCI_GHC_IE)); return 0; } static int ahci_pci_resume(device_t dev) { int res; if ((res = ahci_pci_ctlr_reset(dev)) != 0) return (res); ahci_ctlr_setup(dev); return (bus_generic_resume(dev)); } static device_method_t ahci_methods[] = { DEVMETHOD(device_probe, ahci_probe), DEVMETHOD(device_attach, ahci_pci_attach), DEVMETHOD(device_detach, ahci_pci_detach), DEVMETHOD(device_suspend, ahci_pci_suspend), DEVMETHOD(device_resume, ahci_pci_resume), DEVMETHOD(bus_print_child, ahci_print_child), DEVMETHOD(bus_alloc_resource, ahci_alloc_resource), DEVMETHOD(bus_release_resource, ahci_release_resource), DEVMETHOD(bus_setup_intr, ahci_setup_intr), DEVMETHOD(bus_teardown_intr,ahci_teardown_intr), DEVMETHOD(bus_child_location_str, ahci_child_location_str), DEVMETHOD(bus_get_dma_tag, ahci_get_dma_tag), DEVMETHOD_END }; static driver_t ahci_driver = { "ahci", ahci_methods, sizeof(struct ahci_controller) }; DRIVER_MODULE(ahci, pci, ahci_driver, ahci_devclass, NULL, NULL); /* Also matches class / subclass / progid XXX need to add when we have masking support */ MODULE_PNP_INFO("W32:vendor/device", pci, ahci, ahci_ids, nitems(ahci_ids) - 1); static device_method_t ahci_ata_methods[] = { DEVMETHOD(device_probe, ahci_ata_probe), DEVMETHOD(device_attach, ahci_pci_attach), DEVMETHOD(device_detach, ahci_pci_detach), DEVMETHOD(device_suspend, ahci_pci_suspend), DEVMETHOD(device_resume, ahci_pci_resume), DEVMETHOD(bus_print_child, ahci_print_child), DEVMETHOD(bus_alloc_resource, ahci_alloc_resource), DEVMETHOD(bus_release_resource, ahci_release_resource), DEVMETHOD(bus_setup_intr, ahci_setup_intr), DEVMETHOD(bus_teardown_intr,ahci_teardown_intr), DEVMETHOD(bus_child_location_str, ahci_child_location_str), DEVMETHOD_END }; static driver_t ahci_ata_driver = { "ahci", ahci_ata_methods, sizeof(struct ahci_controller) }; DRIVER_MODULE(ahci, atapci, ahci_ata_driver, ahci_devclass, NULL, NULL); Index: projects/power8_bringup_hacks/sys/dev/bge/if_bge.c =================================================================== --- projects/power8_bringup_hacks/sys/dev/bge/if_bge.c (revision 339414) +++ projects/power8_bringup_hacks/sys/dev/bge/if_bge.c (revision 339415) @@ -1,6894 +1,6891 @@ /*- * SPDX-License-Identifier: BSD-4-Clause * * Copyright (c) 2001 Wind River Systems * Copyright (c) 1997, 1998, 1999, 2001 * Bill Paul . All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * 3. All advertising materials mentioning features or use of this software * must display the following acknowledgement: * This product includes software developed by Bill Paul. * 4. Neither the name of the author nor the names of any co-contributors * may be used to endorse or promote products derived from this software * without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF * THE POSSIBILITY OF SUCH DAMAGE. */ #include __FBSDID("$FreeBSD$"); /* * Broadcom BCM57xx(x)/BCM590x NetXtreme and NetLink family Ethernet driver * * The Broadcom BCM5700 is based on technology originally developed by * Alteon Networks as part of the Tigon I and Tigon II Gigabit Ethernet * MAC chips. The BCM5700, sometimes referred to as the Tigon III, has * two on-board MIPS R4000 CPUs and can have as much as 16MB of external * SSRAM. The BCM5700 supports TCP, UDP and IP checksum offload, jumbo * frames, highly configurable RX filtering, and 16 RX and TX queues * (which, along with RX filter rules, can be used for QOS applications). * Other features, such as TCP segmentation, may be available as part * of value-added firmware updates. Unlike the Tigon I and Tigon II, * firmware images can be stored in hardware and need not be compiled * into the driver. * * The BCM5700 supports the PCI v2.2 and PCI-X v1.0 standards, and will * function in a 32-bit/64-bit 33/66Mhz bus, or a 64-bit/133Mhz bus. * * The BCM5701 is a single-chip solution incorporating both the BCM5700 * MAC and a BCM5401 10/100/1000 PHY. Unlike the BCM5700, the BCM5701 * does not support external SSRAM. * * Broadcom also produces a variation of the BCM5700 under the "Altima" * brand name, which is functionally similar but lacks PCI-X support. * * Without external SSRAM, you can only have at most 4 TX rings, * and the use of the mini RX ring is disabled. This seems to imply * that these features are simply not available on the BCM5701. As a * result, this driver does not implement any support for the mini RX * ring. */ #ifdef HAVE_KERNEL_OPTION_HEADERS #include "opt_device_polling.h" #endif #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include "miidevs.h" #include #ifdef __sparc64__ #include #include #include #include #endif #include #include #include #define BGE_CSUM_FEATURES (CSUM_IP | CSUM_TCP) #define ETHER_MIN_NOPAD (ETHER_MIN_LEN - ETHER_CRC_LEN) /* i.e., 60 */ MODULE_DEPEND(bge, pci, 1, 1, 1); MODULE_DEPEND(bge, ether, 1, 1, 1); MODULE_DEPEND(bge, miibus, 1, 1, 1); /* "device miibus" required. See GENERIC if you get errors here. */ #include "miibus_if.h" -#define BGE_BUS_SPACE_MAXADDR_32BIT 0x7FFFFFFFU - /* * Various supported device vendors/types and their names. Note: the * spec seems to indicate that the hardware still has Alteon's vendor * ID burned into it, though it will always be overriden by the vendor * ID in the EEPROM. Just to be safe, we cover all possibilities. */ static const struct bge_type { uint16_t bge_vid; uint16_t bge_did; } bge_devs[] = { { ALTEON_VENDORID, ALTEON_DEVICEID_BCM5700 }, { ALTEON_VENDORID, ALTEON_DEVICEID_BCM5701 }, { ALTIMA_VENDORID, ALTIMA_DEVICE_AC1000 }, { ALTIMA_VENDORID, ALTIMA_DEVICE_AC1002 }, { ALTIMA_VENDORID, ALTIMA_DEVICE_AC9100 }, { APPLE_VENDORID, APPLE_DEVICE_BCM5701 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5700 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5701 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5702 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5702_ALT }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5702X }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5703 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5703_ALT }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5703X }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5704C }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5704S }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5704S_ALT }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5705 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5705F }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5705K }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5705M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5705M_ALT }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5714C }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5714S }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5715 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5715S }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5717 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5717C }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5718 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5719 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5720 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5721 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5722 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5723 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5725 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5727 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5750 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5750M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5751 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5751F }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5751M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5752 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5752M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5753 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5753F }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5753M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5754 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5754M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5755 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5755M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5756 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5761 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5761E }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5761S }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5761SE }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5762 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5764 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5780 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5780S }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5781 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5782 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5784 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5785F }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5785G }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5786 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5787 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5787F }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5787M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5788 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5789 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5901 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5901A2 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5903M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5906 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM5906M }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57760 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57761 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57762 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57764 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57765 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57766 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57767 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57780 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57781 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57782 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57785 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57786 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57787 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57788 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57790 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57791 }, { BCOM_VENDORID, BCOM_DEVICEID_BCM57795 }, { SK_VENDORID, SK_DEVICEID_ALTIMA }, { TC_VENDORID, TC_DEVICEID_3C996 }, { FJTSU_VENDORID, FJTSU_DEVICEID_PW008GE4 }, { FJTSU_VENDORID, FJTSU_DEVICEID_PW008GE5 }, { FJTSU_VENDORID, FJTSU_DEVICEID_PP250450 }, { 0, 0 } }; static const struct bge_vendor { uint16_t v_id; const char *v_name; } bge_vendors[] = { { ALTEON_VENDORID, "Alteon" }, { ALTIMA_VENDORID, "Altima" }, { APPLE_VENDORID, "Apple" }, { BCOM_VENDORID, "Broadcom" }, { SK_VENDORID, "SysKonnect" }, { TC_VENDORID, "3Com" }, { FJTSU_VENDORID, "Fujitsu" }, { 0, NULL } }; static const struct bge_revision { uint32_t br_chipid; const char *br_name; } bge_revisions[] = { { BGE_CHIPID_BCM5700_A0, "BCM5700 A0" }, { BGE_CHIPID_BCM5700_A1, "BCM5700 A1" }, { BGE_CHIPID_BCM5700_B0, "BCM5700 B0" }, { BGE_CHIPID_BCM5700_B1, "BCM5700 B1" }, { BGE_CHIPID_BCM5700_B2, "BCM5700 B2" }, { BGE_CHIPID_BCM5700_B3, "BCM5700 B3" }, { BGE_CHIPID_BCM5700_ALTIMA, "BCM5700 Altima" }, { BGE_CHIPID_BCM5700_C0, "BCM5700 C0" }, { BGE_CHIPID_BCM5701_A0, "BCM5701 A0" }, { BGE_CHIPID_BCM5701_B0, "BCM5701 B0" }, { BGE_CHIPID_BCM5701_B2, "BCM5701 B2" }, { BGE_CHIPID_BCM5701_B5, "BCM5701 B5" }, { BGE_CHIPID_BCM5703_A0, "BCM5703 A0" }, { BGE_CHIPID_BCM5703_A1, "BCM5703 A1" }, { BGE_CHIPID_BCM5703_A2, "BCM5703 A2" }, { BGE_CHIPID_BCM5703_A3, "BCM5703 A3" }, { BGE_CHIPID_BCM5703_B0, "BCM5703 B0" }, { BGE_CHIPID_BCM5704_A0, "BCM5704 A0" }, { BGE_CHIPID_BCM5704_A1, "BCM5704 A1" }, { BGE_CHIPID_BCM5704_A2, "BCM5704 A2" }, { BGE_CHIPID_BCM5704_A3, "BCM5704 A3" }, { BGE_CHIPID_BCM5704_B0, "BCM5704 B0" }, { BGE_CHIPID_BCM5705_A0, "BCM5705 A0" }, { BGE_CHIPID_BCM5705_A1, "BCM5705 A1" }, { BGE_CHIPID_BCM5705_A2, "BCM5705 A2" }, { BGE_CHIPID_BCM5705_A3, "BCM5705 A3" }, { BGE_CHIPID_BCM5750_A0, "BCM5750 A0" }, { BGE_CHIPID_BCM5750_A1, "BCM5750 A1" }, { BGE_CHIPID_BCM5750_A3, "BCM5750 A3" }, { BGE_CHIPID_BCM5750_B0, "BCM5750 B0" }, { BGE_CHIPID_BCM5750_B1, "BCM5750 B1" }, { BGE_CHIPID_BCM5750_C0, "BCM5750 C0" }, { BGE_CHIPID_BCM5750_C1, "BCM5750 C1" }, { BGE_CHIPID_BCM5750_C2, "BCM5750 C2" }, { BGE_CHIPID_BCM5714_A0, "BCM5714 A0" }, { BGE_CHIPID_BCM5752_A0, "BCM5752 A0" }, { BGE_CHIPID_BCM5752_A1, "BCM5752 A1" }, { BGE_CHIPID_BCM5752_A2, "BCM5752 A2" }, { BGE_CHIPID_BCM5714_B0, "BCM5714 B0" }, { BGE_CHIPID_BCM5714_B3, "BCM5714 B3" }, { BGE_CHIPID_BCM5715_A0, "BCM5715 A0" }, { BGE_CHIPID_BCM5715_A1, "BCM5715 A1" }, { BGE_CHIPID_BCM5715_A3, "BCM5715 A3" }, { BGE_CHIPID_BCM5717_A0, "BCM5717 A0" }, { BGE_CHIPID_BCM5717_B0, "BCM5717 B0" }, { BGE_CHIPID_BCM5717_C0, "BCM5717 C0" }, { BGE_CHIPID_BCM5719_A0, "BCM5719 A0" }, { BGE_CHIPID_BCM5720_A0, "BCM5720 A0" }, { BGE_CHIPID_BCM5755_A0, "BCM5755 A0" }, { BGE_CHIPID_BCM5755_A1, "BCM5755 A1" }, { BGE_CHIPID_BCM5755_A2, "BCM5755 A2" }, { BGE_CHIPID_BCM5722_A0, "BCM5722 A0" }, { BGE_CHIPID_BCM5761_A0, "BCM5761 A0" }, { BGE_CHIPID_BCM5761_A1, "BCM5761 A1" }, { BGE_CHIPID_BCM5762_A0, "BCM5762 A0" }, { BGE_CHIPID_BCM5784_A0, "BCM5784 A0" }, { BGE_CHIPID_BCM5784_A1, "BCM5784 A1" }, /* 5754 and 5787 share the same ASIC ID */ { BGE_CHIPID_BCM5787_A0, "BCM5754/5787 A0" }, { BGE_CHIPID_BCM5787_A1, "BCM5754/5787 A1" }, { BGE_CHIPID_BCM5787_A2, "BCM5754/5787 A2" }, { BGE_CHIPID_BCM5906_A1, "BCM5906 A1" }, { BGE_CHIPID_BCM5906_A2, "BCM5906 A2" }, { BGE_CHIPID_BCM57765_A0, "BCM57765 A0" }, { BGE_CHIPID_BCM57765_B0, "BCM57765 B0" }, { BGE_CHIPID_BCM57780_A0, "BCM57780 A0" }, { BGE_CHIPID_BCM57780_A1, "BCM57780 A1" }, { 0, NULL } }; /* * Some defaults for major revisions, so that newer steppings * that we don't know about have a shot at working. */ static const struct bge_revision bge_majorrevs[] = { { BGE_ASICREV_BCM5700, "unknown BCM5700" }, { BGE_ASICREV_BCM5701, "unknown BCM5701" }, { BGE_ASICREV_BCM5703, "unknown BCM5703" }, { BGE_ASICREV_BCM5704, "unknown BCM5704" }, { BGE_ASICREV_BCM5705, "unknown BCM5705" }, { BGE_ASICREV_BCM5750, "unknown BCM5750" }, { BGE_ASICREV_BCM5714_A0, "unknown BCM5714" }, { BGE_ASICREV_BCM5752, "unknown BCM5752" }, { BGE_ASICREV_BCM5780, "unknown BCM5780" }, { BGE_ASICREV_BCM5714, "unknown BCM5714" }, { BGE_ASICREV_BCM5755, "unknown BCM5755" }, { BGE_ASICREV_BCM5761, "unknown BCM5761" }, { BGE_ASICREV_BCM5784, "unknown BCM5784" }, { BGE_ASICREV_BCM5785, "unknown BCM5785" }, /* 5754 and 5787 share the same ASIC ID */ { BGE_ASICREV_BCM5787, "unknown BCM5754/5787" }, { BGE_ASICREV_BCM5906, "unknown BCM5906" }, { BGE_ASICREV_BCM57765, "unknown BCM57765" }, { BGE_ASICREV_BCM57766, "unknown BCM57766" }, { BGE_ASICREV_BCM57780, "unknown BCM57780" }, { BGE_ASICREV_BCM5717, "unknown BCM5717" }, { BGE_ASICREV_BCM5719, "unknown BCM5719" }, { BGE_ASICREV_BCM5720, "unknown BCM5720" }, { BGE_ASICREV_BCM5762, "unknown BCM5762" }, { 0, NULL } }; #define BGE_IS_JUMBO_CAPABLE(sc) ((sc)->bge_flags & BGE_FLAG_JUMBO) #define BGE_IS_5700_FAMILY(sc) ((sc)->bge_flags & BGE_FLAG_5700_FAMILY) #define BGE_IS_5705_PLUS(sc) ((sc)->bge_flags & BGE_FLAG_5705_PLUS) #define BGE_IS_5714_FAMILY(sc) ((sc)->bge_flags & BGE_FLAG_5714_FAMILY) #define BGE_IS_575X_PLUS(sc) ((sc)->bge_flags & BGE_FLAG_575X_PLUS) #define BGE_IS_5755_PLUS(sc) ((sc)->bge_flags & BGE_FLAG_5755_PLUS) #define BGE_IS_5717_PLUS(sc) ((sc)->bge_flags & BGE_FLAG_5717_PLUS) #define BGE_IS_57765_PLUS(sc) ((sc)->bge_flags & BGE_FLAG_57765_PLUS) static uint32_t bge_chipid(device_t); static const struct bge_vendor * bge_lookup_vendor(uint16_t); static const struct bge_revision * bge_lookup_rev(uint32_t); typedef int (*bge_eaddr_fcn_t)(struct bge_softc *, uint8_t[]); static int bge_probe(device_t); static int bge_attach(device_t); static int bge_detach(device_t); static int bge_suspend(device_t); static int bge_resume(device_t); static void bge_release_resources(struct bge_softc *); static void bge_dma_map_addr(void *, bus_dma_segment_t *, int, int); static int bge_dma_alloc(struct bge_softc *); static void bge_dma_free(struct bge_softc *); static int bge_dma_ring_alloc(struct bge_softc *, bus_size_t, bus_size_t, bus_dma_tag_t *, uint8_t **, bus_dmamap_t *, bus_addr_t *, const char *); static void bge_devinfo(struct bge_softc *); static int bge_mbox_reorder(struct bge_softc *); static int bge_get_eaddr_fw(struct bge_softc *sc, uint8_t ether_addr[]); static int bge_get_eaddr_mem(struct bge_softc *, uint8_t[]); static int bge_get_eaddr_nvram(struct bge_softc *, uint8_t[]); static int bge_get_eaddr_eeprom(struct bge_softc *, uint8_t[]); static int bge_get_eaddr(struct bge_softc *, uint8_t[]); static void bge_txeof(struct bge_softc *, uint16_t); static void bge_rxcsum(struct bge_softc *, struct bge_rx_bd *, struct mbuf *); static int bge_rxeof(struct bge_softc *, uint16_t, int); static void bge_asf_driver_up (struct bge_softc *); static void bge_tick(void *); static void bge_stats_clear_regs(struct bge_softc *); static void bge_stats_update(struct bge_softc *); static void bge_stats_update_regs(struct bge_softc *); static struct mbuf *bge_check_short_dma(struct mbuf *); static struct mbuf *bge_setup_tso(struct bge_softc *, struct mbuf *, uint16_t *, uint16_t *); static int bge_encap(struct bge_softc *, struct mbuf **, uint32_t *); static void bge_intr(void *); static int bge_msi_intr(void *); static void bge_intr_task(void *, int); static void bge_start(if_t); static void bge_start_locked(if_t); static void bge_start_tx(struct bge_softc *, uint32_t); static int bge_ioctl(if_t, u_long, caddr_t); static void bge_init_locked(struct bge_softc *); static void bge_init(void *); static void bge_stop_block(struct bge_softc *, bus_size_t, uint32_t); static void bge_stop(struct bge_softc *); static void bge_watchdog(struct bge_softc *); static int bge_shutdown(device_t); static int bge_ifmedia_upd_locked(if_t); static int bge_ifmedia_upd(if_t); static void bge_ifmedia_sts(if_t, struct ifmediareq *); static uint64_t bge_get_counter(if_t, ift_counter); static uint8_t bge_nvram_getbyte(struct bge_softc *, int, uint8_t *); static int bge_read_nvram(struct bge_softc *, caddr_t, int, int); static uint8_t bge_eeprom_getbyte(struct bge_softc *, int, uint8_t *); static int bge_read_eeprom(struct bge_softc *, caddr_t, int, int); static void bge_setpromisc(struct bge_softc *); static void bge_setmulti(struct bge_softc *); static void bge_setvlan(struct bge_softc *); static __inline void bge_rxreuse_std(struct bge_softc *, int); static __inline void bge_rxreuse_jumbo(struct bge_softc *, int); static int bge_newbuf_std(struct bge_softc *, int); static int bge_newbuf_jumbo(struct bge_softc *, int); static int bge_init_rx_ring_std(struct bge_softc *); static void bge_free_rx_ring_std(struct bge_softc *); static int bge_init_rx_ring_jumbo(struct bge_softc *); static void bge_free_rx_ring_jumbo(struct bge_softc *); static void bge_free_tx_ring(struct bge_softc *); static int bge_init_tx_ring(struct bge_softc *); static int bge_chipinit(struct bge_softc *); static int bge_blockinit(struct bge_softc *); static uint32_t bge_dma_swap_options(struct bge_softc *); static int bge_has_eaddr(struct bge_softc *); static uint32_t bge_readmem_ind(struct bge_softc *, int); static void bge_writemem_ind(struct bge_softc *, int, int); static void bge_writembx(struct bge_softc *, int, int); #ifdef notdef static uint32_t bge_readreg_ind(struct bge_softc *, int); #endif static void bge_writemem_direct(struct bge_softc *, int, int); static void bge_writereg_ind(struct bge_softc *, int, int); static int bge_miibus_readreg(device_t, int, int); static int bge_miibus_writereg(device_t, int, int, int); static void bge_miibus_statchg(device_t); #ifdef DEVICE_POLLING static int bge_poll(if_t ifp, enum poll_cmd cmd, int count); #endif #define BGE_RESET_SHUTDOWN 0 #define BGE_RESET_START 1 #define BGE_RESET_SUSPEND 2 static void bge_sig_post_reset(struct bge_softc *, int); static void bge_sig_legacy(struct bge_softc *, int); static void bge_sig_pre_reset(struct bge_softc *, int); static void bge_stop_fw(struct bge_softc *); static int bge_reset(struct bge_softc *); static void bge_link_upd(struct bge_softc *); static void bge_ape_lock_init(struct bge_softc *); static void bge_ape_read_fw_ver(struct bge_softc *); static int bge_ape_lock(struct bge_softc *, int); static void bge_ape_unlock(struct bge_softc *, int); static void bge_ape_send_event(struct bge_softc *, uint32_t); static void bge_ape_driver_state_change(struct bge_softc *, int); /* * The BGE_REGISTER_DEBUG option is only for low-level debugging. It may * leak information to untrusted users. It is also known to cause alignment * traps on certain architectures. */ #ifdef BGE_REGISTER_DEBUG static int bge_sysctl_debug_info(SYSCTL_HANDLER_ARGS); static int bge_sysctl_reg_read(SYSCTL_HANDLER_ARGS); static int bge_sysctl_ape_read(SYSCTL_HANDLER_ARGS); static int bge_sysctl_mem_read(SYSCTL_HANDLER_ARGS); #endif static void bge_add_sysctls(struct bge_softc *); static void bge_add_sysctl_stats_regs(struct bge_softc *, struct sysctl_ctx_list *, struct sysctl_oid_list *); static void bge_add_sysctl_stats(struct bge_softc *, struct sysctl_ctx_list *, struct sysctl_oid_list *); static int bge_sysctl_stats(SYSCTL_HANDLER_ARGS); NETDUMP_DEFINE(bge); static device_method_t bge_methods[] = { /* Device interface */ DEVMETHOD(device_probe, bge_probe), DEVMETHOD(device_attach, bge_attach), DEVMETHOD(device_detach, bge_detach), DEVMETHOD(device_shutdown, bge_shutdown), DEVMETHOD(device_suspend, bge_suspend), DEVMETHOD(device_resume, bge_resume), /* MII interface */ DEVMETHOD(miibus_readreg, bge_miibus_readreg), DEVMETHOD(miibus_writereg, bge_miibus_writereg), DEVMETHOD(miibus_statchg, bge_miibus_statchg), DEVMETHOD_END }; static driver_t bge_driver = { "bge", bge_methods, sizeof(struct bge_softc) }; static devclass_t bge_devclass; DRIVER_MODULE(bge, pci, bge_driver, bge_devclass, 0, 0); MODULE_PNP_INFO("U16:vendor;U16:device", pci, bge, bge_devs, nitems(bge_devs) - 1); DRIVER_MODULE(miibus, bge, miibus_driver, miibus_devclass, 0, 0); static int bge_allow_asf = 1; static SYSCTL_NODE(_hw, OID_AUTO, bge, CTLFLAG_RD, 0, "BGE driver parameters"); SYSCTL_INT(_hw_bge, OID_AUTO, allow_asf, CTLFLAG_RDTUN, &bge_allow_asf, 0, "Allow ASF mode if available"); #define SPARC64_BLADE_1500_MODEL "SUNW,Sun-Blade-1500" #define SPARC64_BLADE_1500_PATH_BGE "/pci@1f,700000/network@2" #define SPARC64_BLADE_2500_MODEL "SUNW,Sun-Blade-2500" #define SPARC64_BLADE_2500_PATH_BGE "/pci@1c,600000/network@3" #define SPARC64_OFW_SUBVENDOR "subsystem-vendor-id" static int bge_has_eaddr(struct bge_softc *sc) { #ifdef __sparc64__ char buf[sizeof(SPARC64_BLADE_1500_PATH_BGE)]; device_t dev; uint32_t subvendor; dev = sc->bge_dev; /* * The on-board BGEs found in sun4u machines aren't fitted with * an EEPROM which means that we have to obtain the MAC address * via OFW and that some tests will always fail. We distinguish * such BGEs by the subvendor ID, which also has to be obtained * from OFW instead of the PCI configuration space as the latter * indicates Broadcom as the subvendor of the netboot interface. * For early Blade 1500 and 2500 we even have to check the OFW * device path as the subvendor ID always defaults to Broadcom * there. */ if (OF_getprop(ofw_bus_get_node(dev), SPARC64_OFW_SUBVENDOR, &subvendor, sizeof(subvendor)) == sizeof(subvendor) && (subvendor == FJTSU_VENDORID || subvendor == SUN_VENDORID)) return (0); memset(buf, 0, sizeof(buf)); if (OF_package_to_path(ofw_bus_get_node(dev), buf, sizeof(buf)) > 0) { if (strcmp(sparc64_model, SPARC64_BLADE_1500_MODEL) == 0 && strcmp(buf, SPARC64_BLADE_1500_PATH_BGE) == 0) return (0); if (strcmp(sparc64_model, SPARC64_BLADE_2500_MODEL) == 0 && strcmp(buf, SPARC64_BLADE_2500_PATH_BGE) == 0) return (0); } #endif return (1); } static uint32_t bge_readmem_ind(struct bge_softc *sc, int off) { device_t dev; uint32_t val; if (sc->bge_asicrev == BGE_ASICREV_BCM5906 && off >= BGE_STATS_BLOCK && off < BGE_SEND_RING_1_TO_4) return (0); dev = sc->bge_dev; pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, off, 4); val = pci_read_config(dev, BGE_PCI_MEMWIN_DATA, 4); pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, 0, 4); return (val); } static void bge_writemem_ind(struct bge_softc *sc, int off, int val) { device_t dev; if (sc->bge_asicrev == BGE_ASICREV_BCM5906 && off >= BGE_STATS_BLOCK && off < BGE_SEND_RING_1_TO_4) return; dev = sc->bge_dev; pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, off, 4); pci_write_config(dev, BGE_PCI_MEMWIN_DATA, val, 4); pci_write_config(dev, BGE_PCI_MEMWIN_BASEADDR, 0, 4); } #ifdef notdef static uint32_t bge_readreg_ind(struct bge_softc *sc, int off) { device_t dev; dev = sc->bge_dev; pci_write_config(dev, BGE_PCI_REG_BASEADDR, off, 4); return (pci_read_config(dev, BGE_PCI_REG_DATA, 4)); } #endif static void bge_writereg_ind(struct bge_softc *sc, int off, int val) { device_t dev; dev = sc->bge_dev; pci_write_config(dev, BGE_PCI_REG_BASEADDR, off, 4); pci_write_config(dev, BGE_PCI_REG_DATA, val, 4); } static void bge_writemem_direct(struct bge_softc *sc, int off, int val) { CSR_WRITE_4(sc, off, val); } static void bge_writembx(struct bge_softc *sc, int off, int val) { if (sc->bge_asicrev == BGE_ASICREV_BCM5906) off += BGE_LPMBX_IRQ0_HI - BGE_MBX_IRQ0_HI; CSR_WRITE_4(sc, off, val); if ((sc->bge_flags & BGE_FLAG_MBOX_REORDER) != 0) CSR_READ_4(sc, off); } /* * Clear all stale locks and select the lock for this driver instance. */ static void bge_ape_lock_init(struct bge_softc *sc) { uint32_t bit, regbase; int i; if (sc->bge_asicrev == BGE_ASICREV_BCM5761) regbase = BGE_APE_LOCK_GRANT; else regbase = BGE_APE_PER_LOCK_GRANT; /* Clear any stale locks. */ for (i = BGE_APE_LOCK_PHY0; i <= BGE_APE_LOCK_GPIO; i++) { switch (i) { case BGE_APE_LOCK_PHY0: case BGE_APE_LOCK_PHY1: case BGE_APE_LOCK_PHY2: case BGE_APE_LOCK_PHY3: bit = BGE_APE_LOCK_GRANT_DRIVER0; break; default: if (sc->bge_func_addr == 0) bit = BGE_APE_LOCK_GRANT_DRIVER0; else bit = (1 << sc->bge_func_addr); } APE_WRITE_4(sc, regbase + 4 * i, bit); } /* Select the PHY lock based on the device's function number. */ switch (sc->bge_func_addr) { case 0: sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY0; break; case 1: sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY1; break; case 2: sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY2; break; case 3: sc->bge_phy_ape_lock = BGE_APE_LOCK_PHY3; break; default: device_printf(sc->bge_dev, "PHY lock not supported on this function\n"); } } /* * Check for APE firmware, set flags, and print version info. */ static void bge_ape_read_fw_ver(struct bge_softc *sc) { const char *fwtype; uint32_t apedata, features; /* Check for a valid APE signature in shared memory. */ apedata = APE_READ_4(sc, BGE_APE_SEG_SIG); if (apedata != BGE_APE_SEG_SIG_MAGIC) { sc->bge_mfw_flags &= ~ BGE_MFW_ON_APE; return; } /* Check if APE firmware is running. */ apedata = APE_READ_4(sc, BGE_APE_FW_STATUS); if ((apedata & BGE_APE_FW_STATUS_READY) == 0) { device_printf(sc->bge_dev, "APE signature found " "but FW status not ready! 0x%08x\n", apedata); return; } sc->bge_mfw_flags |= BGE_MFW_ON_APE; /* Fetch the APE firwmare type and version. */ apedata = APE_READ_4(sc, BGE_APE_FW_VERSION); features = APE_READ_4(sc, BGE_APE_FW_FEATURES); if ((features & BGE_APE_FW_FEATURE_NCSI) != 0) { sc->bge_mfw_flags |= BGE_MFW_TYPE_NCSI; fwtype = "NCSI"; } else if ((features & BGE_APE_FW_FEATURE_DASH) != 0) { sc->bge_mfw_flags |= BGE_MFW_TYPE_DASH; fwtype = "DASH"; } else fwtype = "UNKN"; /* Print the APE firmware version. */ device_printf(sc->bge_dev, "APE FW version: %s v%d.%d.%d.%d\n", fwtype, (apedata & BGE_APE_FW_VERSION_MAJMSK) >> BGE_APE_FW_VERSION_MAJSFT, (apedata & BGE_APE_FW_VERSION_MINMSK) >> BGE_APE_FW_VERSION_MINSFT, (apedata & BGE_APE_FW_VERSION_REVMSK) >> BGE_APE_FW_VERSION_REVSFT, (apedata & BGE_APE_FW_VERSION_BLDMSK)); } static int bge_ape_lock(struct bge_softc *sc, int locknum) { uint32_t bit, gnt, req, status; int i, off; if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0) return (0); /* Lock request/grant registers have different bases. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5761) { req = BGE_APE_LOCK_REQ; gnt = BGE_APE_LOCK_GRANT; } else { req = BGE_APE_PER_LOCK_REQ; gnt = BGE_APE_PER_LOCK_GRANT; } off = 4 * locknum; switch (locknum) { case BGE_APE_LOCK_GPIO: /* Lock required when using GPIO. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5761) return (0); if (sc->bge_func_addr == 0) bit = BGE_APE_LOCK_REQ_DRIVER0; else bit = (1 << sc->bge_func_addr); break; case BGE_APE_LOCK_GRC: /* Lock required to reset the device. */ if (sc->bge_func_addr == 0) bit = BGE_APE_LOCK_REQ_DRIVER0; else bit = (1 << sc->bge_func_addr); break; case BGE_APE_LOCK_MEM: /* Lock required when accessing certain APE memory. */ if (sc->bge_func_addr == 0) bit = BGE_APE_LOCK_REQ_DRIVER0; else bit = (1 << sc->bge_func_addr); break; case BGE_APE_LOCK_PHY0: case BGE_APE_LOCK_PHY1: case BGE_APE_LOCK_PHY2: case BGE_APE_LOCK_PHY3: /* Lock required when accessing PHYs. */ bit = BGE_APE_LOCK_REQ_DRIVER0; break; default: return (EINVAL); } /* Request a lock. */ APE_WRITE_4(sc, req + off, bit); /* Wait up to 1 second to acquire lock. */ for (i = 0; i < 20000; i++) { status = APE_READ_4(sc, gnt + off); if (status == bit) break; DELAY(50); } /* Handle any errors. */ if (status != bit) { device_printf(sc->bge_dev, "APE lock %d request failed! " "request = 0x%04x[0x%04x], status = 0x%04x[0x%04x]\n", locknum, req + off, bit & 0xFFFF, gnt + off, status & 0xFFFF); /* Revoke the lock request. */ APE_WRITE_4(sc, gnt + off, bit); return (EBUSY); } return (0); } static void bge_ape_unlock(struct bge_softc *sc, int locknum) { uint32_t bit, gnt; int off; if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0) return; if (sc->bge_asicrev == BGE_ASICREV_BCM5761) gnt = BGE_APE_LOCK_GRANT; else gnt = BGE_APE_PER_LOCK_GRANT; off = 4 * locknum; switch (locknum) { case BGE_APE_LOCK_GPIO: if (sc->bge_asicrev == BGE_ASICREV_BCM5761) return; if (sc->bge_func_addr == 0) bit = BGE_APE_LOCK_GRANT_DRIVER0; else bit = (1 << sc->bge_func_addr); break; case BGE_APE_LOCK_GRC: if (sc->bge_func_addr == 0) bit = BGE_APE_LOCK_GRANT_DRIVER0; else bit = (1 << sc->bge_func_addr); break; case BGE_APE_LOCK_MEM: if (sc->bge_func_addr == 0) bit = BGE_APE_LOCK_GRANT_DRIVER0; else bit = (1 << sc->bge_func_addr); break; case BGE_APE_LOCK_PHY0: case BGE_APE_LOCK_PHY1: case BGE_APE_LOCK_PHY2: case BGE_APE_LOCK_PHY3: bit = BGE_APE_LOCK_GRANT_DRIVER0; break; default: return; } APE_WRITE_4(sc, gnt + off, bit); } /* * Send an event to the APE firmware. */ static void bge_ape_send_event(struct bge_softc *sc, uint32_t event) { uint32_t apedata; int i; /* NCSI does not support APE events. */ if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0) return; /* Wait up to 1ms for APE to service previous event. */ for (i = 10; i > 0; i--) { if (bge_ape_lock(sc, BGE_APE_LOCK_MEM) != 0) break; apedata = APE_READ_4(sc, BGE_APE_EVENT_STATUS); if ((apedata & BGE_APE_EVENT_STATUS_EVENT_PENDING) == 0) { APE_WRITE_4(sc, BGE_APE_EVENT_STATUS, event | BGE_APE_EVENT_STATUS_EVENT_PENDING); bge_ape_unlock(sc, BGE_APE_LOCK_MEM); APE_WRITE_4(sc, BGE_APE_EVENT, BGE_APE_EVENT_1); break; } bge_ape_unlock(sc, BGE_APE_LOCK_MEM); DELAY(100); } if (i == 0) device_printf(sc->bge_dev, "APE event 0x%08x send timed out\n", event); } static void bge_ape_driver_state_change(struct bge_softc *sc, int kind) { uint32_t apedata, event; if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) == 0) return; switch (kind) { case BGE_RESET_START: /* If this is the first load, clear the load counter. */ apedata = APE_READ_4(sc, BGE_APE_HOST_SEG_SIG); if (apedata != BGE_APE_HOST_SEG_SIG_MAGIC) APE_WRITE_4(sc, BGE_APE_HOST_INIT_COUNT, 0); else { apedata = APE_READ_4(sc, BGE_APE_HOST_INIT_COUNT); APE_WRITE_4(sc, BGE_APE_HOST_INIT_COUNT, ++apedata); } APE_WRITE_4(sc, BGE_APE_HOST_SEG_SIG, BGE_APE_HOST_SEG_SIG_MAGIC); APE_WRITE_4(sc, BGE_APE_HOST_SEG_LEN, BGE_APE_HOST_SEG_LEN_MAGIC); /* Add some version info if bge(4) supports it. */ APE_WRITE_4(sc, BGE_APE_HOST_DRIVER_ID, BGE_APE_HOST_DRIVER_ID_MAGIC(1, 0)); APE_WRITE_4(sc, BGE_APE_HOST_BEHAVIOR, BGE_APE_HOST_BEHAV_NO_PHYLOCK); APE_WRITE_4(sc, BGE_APE_HOST_HEARTBEAT_INT_MS, BGE_APE_HOST_HEARTBEAT_INT_DISABLE); APE_WRITE_4(sc, BGE_APE_HOST_DRVR_STATE, BGE_APE_HOST_DRVR_STATE_START); event = BGE_APE_EVENT_STATUS_STATE_START; break; case BGE_RESET_SHUTDOWN: APE_WRITE_4(sc, BGE_APE_HOST_DRVR_STATE, BGE_APE_HOST_DRVR_STATE_UNLOAD); event = BGE_APE_EVENT_STATUS_STATE_UNLOAD; break; case BGE_RESET_SUSPEND: event = BGE_APE_EVENT_STATUS_STATE_SUSPEND; break; default: return; } bge_ape_send_event(sc, event | BGE_APE_EVENT_STATUS_DRIVER_EVNT | BGE_APE_EVENT_STATUS_STATE_CHNGE); } /* * Map a single buffer address. */ static void bge_dma_map_addr(void *arg, bus_dma_segment_t *segs, int nseg, int error) { struct bge_dmamap_arg *ctx; if (error) return; KASSERT(nseg == 1, ("%s: %d segments returned!", __func__, nseg)); ctx = arg; ctx->bge_busaddr = segs->ds_addr; } static uint8_t bge_nvram_getbyte(struct bge_softc *sc, int addr, uint8_t *dest) { uint32_t access, byte = 0; int i; /* Lock. */ CSR_WRITE_4(sc, BGE_NVRAM_SWARB, BGE_NVRAMSWARB_SET1); for (i = 0; i < 8000; i++) { if (CSR_READ_4(sc, BGE_NVRAM_SWARB) & BGE_NVRAMSWARB_GNT1) break; DELAY(20); } if (i == 8000) return (1); /* Enable access. */ access = CSR_READ_4(sc, BGE_NVRAM_ACCESS); CSR_WRITE_4(sc, BGE_NVRAM_ACCESS, access | BGE_NVRAMACC_ENABLE); CSR_WRITE_4(sc, BGE_NVRAM_ADDR, addr & 0xfffffffc); CSR_WRITE_4(sc, BGE_NVRAM_CMD, BGE_NVRAM_READCMD); for (i = 0; i < BGE_TIMEOUT * 10; i++) { DELAY(10); if (CSR_READ_4(sc, BGE_NVRAM_CMD) & BGE_NVRAMCMD_DONE) { DELAY(10); break; } } if (i == BGE_TIMEOUT * 10) { if_printf(sc->bge_ifp, "nvram read timed out\n"); return (1); } /* Get result. */ byte = CSR_READ_4(sc, BGE_NVRAM_RDDATA); *dest = (bswap32(byte) >> ((addr % 4) * 8)) & 0xFF; /* Disable access. */ CSR_WRITE_4(sc, BGE_NVRAM_ACCESS, access); /* Unlock. */ CSR_WRITE_4(sc, BGE_NVRAM_SWARB, BGE_NVRAMSWARB_CLR1); CSR_READ_4(sc, BGE_NVRAM_SWARB); return (0); } /* * Read a sequence of bytes from NVRAM. */ static int bge_read_nvram(struct bge_softc *sc, caddr_t dest, int off, int cnt) { int err = 0, i; uint8_t byte = 0; if (sc->bge_asicrev != BGE_ASICREV_BCM5906) return (1); for (i = 0; i < cnt; i++) { err = bge_nvram_getbyte(sc, off + i, &byte); if (err) break; *(dest + i) = byte; } return (err ? 1 : 0); } /* * Read a byte of data stored in the EEPROM at address 'addr.' The * BCM570x supports both the traditional bitbang interface and an * auto access interface for reading the EEPROM. We use the auto * access method. */ static uint8_t bge_eeprom_getbyte(struct bge_softc *sc, int addr, uint8_t *dest) { int i; uint32_t byte = 0; /* * Enable use of auto EEPROM access so we can avoid * having to use the bitbang method. */ BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_AUTO_EEPROM); /* Reset the EEPROM, load the clock period. */ CSR_WRITE_4(sc, BGE_EE_ADDR, BGE_EEADDR_RESET | BGE_EEHALFCLK(BGE_HALFCLK_384SCL)); DELAY(20); /* Issue the read EEPROM command. */ CSR_WRITE_4(sc, BGE_EE_ADDR, BGE_EE_READCMD | addr); /* Wait for completion */ for(i = 0; i < BGE_TIMEOUT * 10; i++) { DELAY(10); if (CSR_READ_4(sc, BGE_EE_ADDR) & BGE_EEADDR_DONE) break; } if (i == BGE_TIMEOUT * 10) { device_printf(sc->bge_dev, "EEPROM read timed out\n"); return (1); } /* Get result. */ byte = CSR_READ_4(sc, BGE_EE_DATA); *dest = (byte >> ((addr % 4) * 8)) & 0xFF; return (0); } /* * Read a sequence of bytes from the EEPROM. */ static int bge_read_eeprom(struct bge_softc *sc, caddr_t dest, int off, int cnt) { int i, error = 0; uint8_t byte = 0; for (i = 0; i < cnt; i++) { error = bge_eeprom_getbyte(sc, off + i, &byte); if (error) break; *(dest + i) = byte; } return (error ? 1 : 0); } static int bge_miibus_readreg(device_t dev, int phy, int reg) { struct bge_softc *sc; uint32_t val; int i; sc = device_get_softc(dev); if (bge_ape_lock(sc, sc->bge_phy_ape_lock) != 0) return (0); /* Clear the autopoll bit if set, otherwise may trigger PCI errors. */ if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) { CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode & ~BGE_MIMODE_AUTOPOLL); DELAY(80); } CSR_WRITE_4(sc, BGE_MI_COMM, BGE_MICMD_READ | BGE_MICOMM_BUSY | BGE_MIPHY(phy) | BGE_MIREG(reg)); /* Poll for the PHY register access to complete. */ for (i = 0; i < BGE_TIMEOUT; i++) { DELAY(10); val = CSR_READ_4(sc, BGE_MI_COMM); if ((val & BGE_MICOMM_BUSY) == 0) { DELAY(5); val = CSR_READ_4(sc, BGE_MI_COMM); break; } } if (i == BGE_TIMEOUT) { device_printf(sc->bge_dev, "PHY read timed out (phy %d, reg %d, val 0x%08x)\n", phy, reg, val); val = 0; } /* Restore the autopoll bit if necessary. */ if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) { CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode); DELAY(80); } bge_ape_unlock(sc, sc->bge_phy_ape_lock); if (val & BGE_MICOMM_READFAIL) return (0); return (val & 0xFFFF); } static int bge_miibus_writereg(device_t dev, int phy, int reg, int val) { struct bge_softc *sc; int i; sc = device_get_softc(dev); if (sc->bge_asicrev == BGE_ASICREV_BCM5906 && (reg == BRGPHY_MII_1000CTL || reg == BRGPHY_MII_AUXCTL)) return (0); if (bge_ape_lock(sc, sc->bge_phy_ape_lock) != 0) return (0); /* Clear the autopoll bit if set, otherwise may trigger PCI errors. */ if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) { CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode & ~BGE_MIMODE_AUTOPOLL); DELAY(80); } CSR_WRITE_4(sc, BGE_MI_COMM, BGE_MICMD_WRITE | BGE_MICOMM_BUSY | BGE_MIPHY(phy) | BGE_MIREG(reg) | val); for (i = 0; i < BGE_TIMEOUT; i++) { DELAY(10); if (!(CSR_READ_4(sc, BGE_MI_COMM) & BGE_MICOMM_BUSY)) { DELAY(5); CSR_READ_4(sc, BGE_MI_COMM); /* dummy read */ break; } } /* Restore the autopoll bit if necessary. */ if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) { CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode); DELAY(80); } bge_ape_unlock(sc, sc->bge_phy_ape_lock); if (i == BGE_TIMEOUT) device_printf(sc->bge_dev, "PHY write timed out (phy %d, reg %d, val 0x%04x)\n", phy, reg, val); return (0); } static void bge_miibus_statchg(device_t dev) { struct bge_softc *sc; struct mii_data *mii; uint32_t mac_mode, rx_mode, tx_mode; sc = device_get_softc(dev); if ((if_getdrvflags(sc->bge_ifp) & IFF_DRV_RUNNING) == 0) return; mii = device_get_softc(sc->bge_miibus); if ((mii->mii_media_status & (IFM_ACTIVE | IFM_AVALID)) == (IFM_ACTIVE | IFM_AVALID)) { switch (IFM_SUBTYPE(mii->mii_media_active)) { case IFM_10_T: case IFM_100_TX: sc->bge_link = 1; break; case IFM_1000_T: case IFM_1000_SX: case IFM_2500_SX: if (sc->bge_asicrev != BGE_ASICREV_BCM5906) sc->bge_link = 1; else sc->bge_link = 0; break; default: sc->bge_link = 0; break; } } else sc->bge_link = 0; if (sc->bge_link == 0) return; /* * APE firmware touches these registers to keep the MAC * connected to the outside world. Try to keep the * accesses atomic. */ /* Set the port mode (MII/GMII) to match the link speed. */ mac_mode = CSR_READ_4(sc, BGE_MAC_MODE) & ~(BGE_MACMODE_PORTMODE | BGE_MACMODE_HALF_DUPLEX); tx_mode = CSR_READ_4(sc, BGE_TX_MODE); rx_mode = CSR_READ_4(sc, BGE_RX_MODE); if (IFM_SUBTYPE(mii->mii_media_active) == IFM_1000_T || IFM_SUBTYPE(mii->mii_media_active) == IFM_1000_SX) mac_mode |= BGE_PORTMODE_GMII; else mac_mode |= BGE_PORTMODE_MII; /* Set MAC flow control behavior to match link flow control settings. */ tx_mode &= ~BGE_TXMODE_FLOWCTL_ENABLE; rx_mode &= ~BGE_RXMODE_FLOWCTL_ENABLE; if ((IFM_OPTIONS(mii->mii_media_active) & IFM_FDX) != 0) { if ((IFM_OPTIONS(mii->mii_media_active) & IFM_ETH_TXPAUSE) != 0) tx_mode |= BGE_TXMODE_FLOWCTL_ENABLE; if ((IFM_OPTIONS(mii->mii_media_active) & IFM_ETH_RXPAUSE) != 0) rx_mode |= BGE_RXMODE_FLOWCTL_ENABLE; } else mac_mode |= BGE_MACMODE_HALF_DUPLEX; CSR_WRITE_4(sc, BGE_MAC_MODE, mac_mode); DELAY(40); CSR_WRITE_4(sc, BGE_TX_MODE, tx_mode); CSR_WRITE_4(sc, BGE_RX_MODE, rx_mode); } /* * Intialize a standard receive ring descriptor. */ static int bge_newbuf_std(struct bge_softc *sc, int i) { struct mbuf *m; struct bge_rx_bd *r; bus_dma_segment_t segs[1]; bus_dmamap_t map; int error, nsegs; if (sc->bge_flags & BGE_FLAG_JUMBO_STD && (if_getmtu(sc->bge_ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN + ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN))) { m = m_getjcl(M_NOWAIT, MT_DATA, M_PKTHDR, MJUM9BYTES); if (m == NULL) return (ENOBUFS); m->m_len = m->m_pkthdr.len = MJUM9BYTES; } else { m = m_getcl(M_NOWAIT, MT_DATA, M_PKTHDR); if (m == NULL) return (ENOBUFS); m->m_len = m->m_pkthdr.len = MCLBYTES; } if ((sc->bge_flags & BGE_FLAG_RX_ALIGNBUG) == 0) m_adj(m, ETHER_ALIGN); error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_sparemap, m, segs, &nsegs, 0); if (error != 0) { m_freem(m); return (error); } if (sc->bge_cdata.bge_rx_std_chain[i] != NULL) { bus_dmamap_sync(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_dmamap[i], BUS_DMASYNC_POSTREAD); bus_dmamap_unload(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_dmamap[i]); } map = sc->bge_cdata.bge_rx_std_dmamap[i]; sc->bge_cdata.bge_rx_std_dmamap[i] = sc->bge_cdata.bge_rx_std_sparemap; sc->bge_cdata.bge_rx_std_sparemap = map; sc->bge_cdata.bge_rx_std_chain[i] = m; sc->bge_cdata.bge_rx_std_seglen[i] = segs[0].ds_len; r = &sc->bge_ldata.bge_rx_std_ring[sc->bge_std]; r->bge_addr.bge_addr_lo = BGE_ADDR_LO(segs[0].ds_addr); r->bge_addr.bge_addr_hi = BGE_ADDR_HI(segs[0].ds_addr); r->bge_flags = BGE_RXBDFLAG_END; r->bge_len = segs[0].ds_len; r->bge_idx = i; bus_dmamap_sync(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_dmamap[i], BUS_DMASYNC_PREREAD); return (0); } /* * Initialize a jumbo receive ring descriptor. This allocates * a jumbo buffer from the pool managed internally by the driver. */ static int bge_newbuf_jumbo(struct bge_softc *sc, int i) { bus_dma_segment_t segs[BGE_NSEG_JUMBO]; bus_dmamap_t map; struct bge_extrx_bd *r; struct mbuf *m; int error, nsegs; MGETHDR(m, M_NOWAIT, MT_DATA); if (m == NULL) return (ENOBUFS); if (m_cljget(m, M_NOWAIT, MJUM9BYTES) == NULL) { m_freem(m); return (ENOBUFS); } m->m_len = m->m_pkthdr.len = MJUM9BYTES; if ((sc->bge_flags & BGE_FLAG_RX_ALIGNBUG) == 0) m_adj(m, ETHER_ALIGN); error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_sparemap, m, segs, &nsegs, 0); if (error != 0) { m_freem(m); return (error); } if (sc->bge_cdata.bge_rx_jumbo_chain[i] != NULL) { bus_dmamap_sync(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_dmamap[i], BUS_DMASYNC_POSTREAD); bus_dmamap_unload(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_dmamap[i]); } map = sc->bge_cdata.bge_rx_jumbo_dmamap[i]; sc->bge_cdata.bge_rx_jumbo_dmamap[i] = sc->bge_cdata.bge_rx_jumbo_sparemap; sc->bge_cdata.bge_rx_jumbo_sparemap = map; sc->bge_cdata.bge_rx_jumbo_chain[i] = m; sc->bge_cdata.bge_rx_jumbo_seglen[i][0] = 0; sc->bge_cdata.bge_rx_jumbo_seglen[i][1] = 0; sc->bge_cdata.bge_rx_jumbo_seglen[i][2] = 0; sc->bge_cdata.bge_rx_jumbo_seglen[i][3] = 0; /* * Fill in the extended RX buffer descriptor. */ r = &sc->bge_ldata.bge_rx_jumbo_ring[sc->bge_jumbo]; r->bge_flags = BGE_RXBDFLAG_JUMBO_RING | BGE_RXBDFLAG_END; r->bge_idx = i; r->bge_len3 = r->bge_len2 = r->bge_len1 = 0; switch (nsegs) { case 4: r->bge_addr3.bge_addr_lo = BGE_ADDR_LO(segs[3].ds_addr); r->bge_addr3.bge_addr_hi = BGE_ADDR_HI(segs[3].ds_addr); r->bge_len3 = segs[3].ds_len; sc->bge_cdata.bge_rx_jumbo_seglen[i][3] = segs[3].ds_len; case 3: r->bge_addr2.bge_addr_lo = BGE_ADDR_LO(segs[2].ds_addr); r->bge_addr2.bge_addr_hi = BGE_ADDR_HI(segs[2].ds_addr); r->bge_len2 = segs[2].ds_len; sc->bge_cdata.bge_rx_jumbo_seglen[i][2] = segs[2].ds_len; case 2: r->bge_addr1.bge_addr_lo = BGE_ADDR_LO(segs[1].ds_addr); r->bge_addr1.bge_addr_hi = BGE_ADDR_HI(segs[1].ds_addr); r->bge_len1 = segs[1].ds_len; sc->bge_cdata.bge_rx_jumbo_seglen[i][1] = segs[1].ds_len; case 1: r->bge_addr0.bge_addr_lo = BGE_ADDR_LO(segs[0].ds_addr); r->bge_addr0.bge_addr_hi = BGE_ADDR_HI(segs[0].ds_addr); r->bge_len0 = segs[0].ds_len; sc->bge_cdata.bge_rx_jumbo_seglen[i][0] = segs[0].ds_len; break; default: panic("%s: %d segments\n", __func__, nsegs); } bus_dmamap_sync(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_dmamap[i], BUS_DMASYNC_PREREAD); return (0); } static int bge_init_rx_ring_std(struct bge_softc *sc) { int error, i; bzero(sc->bge_ldata.bge_rx_std_ring, BGE_STD_RX_RING_SZ); sc->bge_std = 0; for (i = 0; i < BGE_STD_RX_RING_CNT; i++) { if ((error = bge_newbuf_std(sc, i)) != 0) return (error); BGE_INC(sc->bge_std, BGE_STD_RX_RING_CNT); } bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag, sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_PREWRITE); sc->bge_std = 0; bge_writembx(sc, BGE_MBX_RX_STD_PROD_LO, BGE_STD_RX_RING_CNT - 1); return (0); } static void bge_free_rx_ring_std(struct bge_softc *sc) { int i; for (i = 0; i < BGE_STD_RX_RING_CNT; i++) { if (sc->bge_cdata.bge_rx_std_chain[i] != NULL) { bus_dmamap_sync(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_dmamap[i], BUS_DMASYNC_POSTREAD); bus_dmamap_unload(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_dmamap[i]); m_freem(sc->bge_cdata.bge_rx_std_chain[i]); sc->bge_cdata.bge_rx_std_chain[i] = NULL; } bzero((char *)&sc->bge_ldata.bge_rx_std_ring[i], sizeof(struct bge_rx_bd)); } } static int bge_init_rx_ring_jumbo(struct bge_softc *sc) { struct bge_rcb *rcb; int error, i; bzero(sc->bge_ldata.bge_rx_jumbo_ring, BGE_JUMBO_RX_RING_SZ); sc->bge_jumbo = 0; for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) { if ((error = bge_newbuf_jumbo(sc, i)) != 0) return (error); BGE_INC(sc->bge_jumbo, BGE_JUMBO_RX_RING_CNT); } bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag, sc->bge_cdata.bge_rx_jumbo_ring_map, BUS_DMASYNC_PREWRITE); sc->bge_jumbo = 0; /* Enable the jumbo receive producer ring. */ rcb = &sc->bge_ldata.bge_info.bge_jumbo_rx_rcb; rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(0, BGE_RCB_FLAG_USE_EXT_RX_BD); CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_MAXLEN_FLAGS, rcb->bge_maxlen_flags); bge_writembx(sc, BGE_MBX_RX_JUMBO_PROD_LO, BGE_JUMBO_RX_RING_CNT - 1); return (0); } static void bge_free_rx_ring_jumbo(struct bge_softc *sc) { int i; for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) { if (sc->bge_cdata.bge_rx_jumbo_chain[i] != NULL) { bus_dmamap_sync(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_dmamap[i], BUS_DMASYNC_POSTREAD); bus_dmamap_unload(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_dmamap[i]); m_freem(sc->bge_cdata.bge_rx_jumbo_chain[i]); sc->bge_cdata.bge_rx_jumbo_chain[i] = NULL; } bzero((char *)&sc->bge_ldata.bge_rx_jumbo_ring[i], sizeof(struct bge_extrx_bd)); } } static void bge_free_tx_ring(struct bge_softc *sc) { int i; if (sc->bge_ldata.bge_tx_ring == NULL) return; for (i = 0; i < BGE_TX_RING_CNT; i++) { if (sc->bge_cdata.bge_tx_chain[i] != NULL) { bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag, sc->bge_cdata.bge_tx_dmamap[i], BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag, sc->bge_cdata.bge_tx_dmamap[i]); m_freem(sc->bge_cdata.bge_tx_chain[i]); sc->bge_cdata.bge_tx_chain[i] = NULL; } bzero((char *)&sc->bge_ldata.bge_tx_ring[i], sizeof(struct bge_tx_bd)); } } static int bge_init_tx_ring(struct bge_softc *sc) { sc->bge_txcnt = 0; sc->bge_tx_saved_considx = 0; bzero(sc->bge_ldata.bge_tx_ring, BGE_TX_RING_SZ); bus_dmamap_sync(sc->bge_cdata.bge_tx_ring_tag, sc->bge_cdata.bge_tx_ring_map, BUS_DMASYNC_PREWRITE); /* Initialize transmit producer index for host-memory send ring. */ sc->bge_tx_prodidx = 0; bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, sc->bge_tx_prodidx); /* 5700 b2 errata */ if (sc->bge_chiprev == BGE_CHIPREV_5700_BX) bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, sc->bge_tx_prodidx); /* NIC-memory send ring not used; initialize to zero. */ bge_writembx(sc, BGE_MBX_TX_NIC_PROD0_LO, 0); /* 5700 b2 errata */ if (sc->bge_chiprev == BGE_CHIPREV_5700_BX) bge_writembx(sc, BGE_MBX_TX_NIC_PROD0_LO, 0); return (0); } static void bge_setpromisc(struct bge_softc *sc) { if_t ifp; BGE_LOCK_ASSERT(sc); ifp = sc->bge_ifp; /* Enable or disable promiscuous mode as needed. */ if (if_getflags(ifp) & IFF_PROMISC) BGE_SETBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_PROMISC); else BGE_CLRBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_PROMISC); } static void bge_setmulti(struct bge_softc *sc) { if_t ifp; int mc_count = 0; uint32_t hashes[4] = { 0, 0, 0, 0 }; int h, i, mcnt; unsigned char *mta; BGE_LOCK_ASSERT(sc); ifp = sc->bge_ifp; mc_count = if_multiaddr_count(ifp, -1); mta = malloc(sizeof(unsigned char) * ETHER_ADDR_LEN * mc_count, M_DEVBUF, M_NOWAIT); if(mta == NULL) { device_printf(sc->bge_dev, "Failed to allocated temp mcast list\n"); return; } if (if_getflags(ifp) & IFF_ALLMULTI || if_getflags(ifp) & IFF_PROMISC) { for (i = 0; i < 4; i++) CSR_WRITE_4(sc, BGE_MAR0 + (i * 4), 0xFFFFFFFF); free(mta, M_DEVBUF); return; } /* First, zot all the existing filters. */ for (i = 0; i < 4; i++) CSR_WRITE_4(sc, BGE_MAR0 + (i * 4), 0); if_multiaddr_array(ifp, mta, &mcnt, mc_count); for(i = 0; i < mcnt; i++) { h = ether_crc32_le(mta + (i * ETHER_ADDR_LEN), ETHER_ADDR_LEN) & 0x7F; hashes[(h & 0x60) >> 5] |= 1 << (h & 0x1F); } for (i = 0; i < 4; i++) CSR_WRITE_4(sc, BGE_MAR0 + (i * 4), hashes[i]); free(mta, M_DEVBUF); } static void bge_setvlan(struct bge_softc *sc) { if_t ifp; BGE_LOCK_ASSERT(sc); ifp = sc->bge_ifp; /* Enable or disable VLAN tag stripping as needed. */ if (if_getcapenable(ifp) & IFCAP_VLAN_HWTAGGING) BGE_CLRBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_KEEP_VLAN_DIAG); else BGE_SETBIT(sc, BGE_RX_MODE, BGE_RXMODE_RX_KEEP_VLAN_DIAG); } static void bge_sig_pre_reset(struct bge_softc *sc, int type) { /* * Some chips don't like this so only do this if ASF is enabled */ if (sc->bge_asf_mode) bge_writemem_ind(sc, BGE_SRAM_FW_MB, BGE_SRAM_FW_MB_MAGIC); if (sc->bge_asf_mode & ASF_NEW_HANDSHAKE) { switch (type) { case BGE_RESET_START: bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB, BGE_FW_DRV_STATE_START); break; case BGE_RESET_SHUTDOWN: bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB, BGE_FW_DRV_STATE_UNLOAD); break; case BGE_RESET_SUSPEND: bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB, BGE_FW_DRV_STATE_SUSPEND); break; } } if (type == BGE_RESET_START || type == BGE_RESET_SUSPEND) bge_ape_driver_state_change(sc, type); } static void bge_sig_post_reset(struct bge_softc *sc, int type) { if (sc->bge_asf_mode & ASF_NEW_HANDSHAKE) { switch (type) { case BGE_RESET_START: bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB, BGE_FW_DRV_STATE_START_DONE); /* START DONE */ break; case BGE_RESET_SHUTDOWN: bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB, BGE_FW_DRV_STATE_UNLOAD_DONE); break; } } if (type == BGE_RESET_SHUTDOWN) bge_ape_driver_state_change(sc, type); } static void bge_sig_legacy(struct bge_softc *sc, int type) { if (sc->bge_asf_mode) { switch (type) { case BGE_RESET_START: bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB, BGE_FW_DRV_STATE_START); break; case BGE_RESET_SHUTDOWN: bge_writemem_ind(sc, BGE_SRAM_FW_DRV_STATE_MB, BGE_FW_DRV_STATE_UNLOAD); break; } } } static void bge_stop_fw(struct bge_softc *sc) { int i; if (sc->bge_asf_mode) { bge_writemem_ind(sc, BGE_SRAM_FW_CMD_MB, BGE_FW_CMD_PAUSE); CSR_WRITE_4(sc, BGE_RX_CPU_EVENT, CSR_READ_4(sc, BGE_RX_CPU_EVENT) | BGE_RX_CPU_DRV_EVENT); for (i = 0; i < 100; i++ ) { if (!(CSR_READ_4(sc, BGE_RX_CPU_EVENT) & BGE_RX_CPU_DRV_EVENT)) break; DELAY(10); } } } static uint32_t bge_dma_swap_options(struct bge_softc *sc) { uint32_t dma_options; dma_options = BGE_MODECTL_WORDSWAP_NONFRAME | BGE_MODECTL_BYTESWAP_DATA | BGE_MODECTL_WORDSWAP_DATA; #if BYTE_ORDER == BIG_ENDIAN dma_options |= BGE_MODECTL_BYTESWAP_NONFRAME; #endif return (dma_options); } /* * Do endian, PCI and DMA initialization. */ static int bge_chipinit(struct bge_softc *sc) { uint32_t dma_rw_ctl, misc_ctl, mode_ctl; uint16_t val; int i; /* Set endianness before we access any non-PCI registers. */ misc_ctl = BGE_INIT; if (sc->bge_flags & BGE_FLAG_TAGGED_STATUS) misc_ctl |= BGE_PCIMISCCTL_TAGGED_STATUS; pci_write_config(sc->bge_dev, BGE_PCI_MISC_CTL, misc_ctl, 4); /* * Clear the MAC statistics block in the NIC's * internal memory. */ for (i = BGE_STATS_BLOCK; i < BGE_STATS_BLOCK_END + 1; i += sizeof(uint32_t)) BGE_MEMWIN_WRITE(sc, i, 0); for (i = BGE_STATUS_BLOCK; i < BGE_STATUS_BLOCK_END + 1; i += sizeof(uint32_t)) BGE_MEMWIN_WRITE(sc, i, 0); if (sc->bge_chiprev == BGE_CHIPREV_5704_BX) { /* * Fix data corruption caused by non-qword write with WB. * Fix master abort in PCI mode. * Fix PCI latency timer. */ val = pci_read_config(sc->bge_dev, BGE_PCI_MSI_DATA + 2, 2); val |= (1 << 10) | (1 << 12) | (1 << 13); pci_write_config(sc->bge_dev, BGE_PCI_MSI_DATA + 2, val, 2); } if (sc->bge_asicrev == BGE_ASICREV_BCM57765 || sc->bge_asicrev == BGE_ASICREV_BCM57766) { /* * For the 57766 and non Ax versions of 57765, bootcode * needs to setup the PCIE Fast Training Sequence (FTS) * value to prevent transmit hangs. */ if (sc->bge_chiprev != BGE_CHIPREV_57765_AX) { CSR_WRITE_4(sc, BGE_CPMU_PADRNG_CTL, CSR_READ_4(sc, BGE_CPMU_PADRNG_CTL) | BGE_CPMU_PADRNG_CTL_RDIV2); } } /* * Set up the PCI DMA control register. */ dma_rw_ctl = BGE_PCIDMARWCTL_RD_CMD_SHIFT(6) | BGE_PCIDMARWCTL_WR_CMD_SHIFT(7); if (sc->bge_flags & BGE_FLAG_PCIE) { if (sc->bge_mps >= 256) dma_rw_ctl |= BGE_PCIDMARWCTL_WR_WAT_SHIFT(7); else dma_rw_ctl |= BGE_PCIDMARWCTL_WR_WAT_SHIFT(3); } else if (sc->bge_flags & BGE_FLAG_PCIX) { if (BGE_IS_5714_FAMILY(sc)) { /* 256 bytes for read and write. */ dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(2) | BGE_PCIDMARWCTL_WR_WAT_SHIFT(2); dma_rw_ctl |= (sc->bge_asicrev == BGE_ASICREV_BCM5780) ? BGE_PCIDMARWCTL_ONEDMA_ATONCE_GLOBAL : BGE_PCIDMARWCTL_ONEDMA_ATONCE_LOCAL; } else if (sc->bge_asicrev == BGE_ASICREV_BCM5703) { /* * In the BCM5703, the DMA read watermark should * be set to less than or equal to the maximum * memory read byte count of the PCI-X command * register. */ dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(4) | BGE_PCIDMARWCTL_WR_WAT_SHIFT(3); } else if (sc->bge_asicrev == BGE_ASICREV_BCM5704) { /* 1536 bytes for read, 384 bytes for write. */ dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(7) | BGE_PCIDMARWCTL_WR_WAT_SHIFT(3); } else { /* 384 bytes for read and write. */ dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(3) | BGE_PCIDMARWCTL_WR_WAT_SHIFT(3) | 0x0F; } if (sc->bge_asicrev == BGE_ASICREV_BCM5703 || sc->bge_asicrev == BGE_ASICREV_BCM5704) { uint32_t tmp; /* Set ONE_DMA_AT_ONCE for hardware workaround. */ tmp = CSR_READ_4(sc, BGE_PCI_CLKCTL) & 0x1F; if (tmp == 6 || tmp == 7) dma_rw_ctl |= BGE_PCIDMARWCTL_ONEDMA_ATONCE_GLOBAL; /* Set PCI-X DMA write workaround. */ dma_rw_ctl |= BGE_PCIDMARWCTL_ASRT_ALL_BE; } } else { /* Conventional PCI bus: 256 bytes for read and write. */ dma_rw_ctl |= BGE_PCIDMARWCTL_RD_WAT_SHIFT(7) | BGE_PCIDMARWCTL_WR_WAT_SHIFT(7); if (sc->bge_asicrev != BGE_ASICREV_BCM5705 && sc->bge_asicrev != BGE_ASICREV_BCM5750) dma_rw_ctl |= 0x0F; } if (sc->bge_asicrev == BGE_ASICREV_BCM5700 || sc->bge_asicrev == BGE_ASICREV_BCM5701) dma_rw_ctl |= BGE_PCIDMARWCTL_USE_MRM | BGE_PCIDMARWCTL_ASRT_ALL_BE; if (sc->bge_asicrev == BGE_ASICREV_BCM5703 || sc->bge_asicrev == BGE_ASICREV_BCM5704) dma_rw_ctl &= ~BGE_PCIDMARWCTL_MINDMA; if (BGE_IS_5717_PLUS(sc)) { dma_rw_ctl &= ~BGE_PCIDMARWCTL_DIS_CACHE_ALIGNMENT; if (sc->bge_chipid == BGE_CHIPID_BCM57765_A0) dma_rw_ctl &= ~BGE_PCIDMARWCTL_CRDRDR_RDMA_MRRS_MSK; /* * Enable HW workaround for controllers that misinterpret * a status tag update and leave interrupts permanently * disabled. */ if (!BGE_IS_57765_PLUS(sc) && sc->bge_asicrev != BGE_ASICREV_BCM5717 && sc->bge_asicrev != BGE_ASICREV_BCM5762) dma_rw_ctl |= BGE_PCIDMARWCTL_TAGGED_STATUS_WA; } pci_write_config(sc->bge_dev, BGE_PCI_DMA_RW_CTL, dma_rw_ctl, 4); /* * Set up general mode register. */ mode_ctl = bge_dma_swap_options(sc); if (sc->bge_asicrev == BGE_ASICREV_BCM5720 || sc->bge_asicrev == BGE_ASICREV_BCM5762) { /* Retain Host-2-BMC settings written by APE firmware. */ mode_ctl |= CSR_READ_4(sc, BGE_MODE_CTL) & (BGE_MODECTL_BYTESWAP_B2HRX_DATA | BGE_MODECTL_WORDSWAP_B2HRX_DATA | BGE_MODECTL_B2HRX_ENABLE | BGE_MODECTL_HTX2B_ENABLE); } mode_ctl |= BGE_MODECTL_MAC_ATTN_INTR | BGE_MODECTL_HOST_SEND_BDS | BGE_MODECTL_TX_NO_PHDR_CSUM; /* * BCM5701 B5 have a bug causing data corruption when using * 64-bit DMA reads, which can be terminated early and then * completed later as 32-bit accesses, in combination with * certain bridges. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5701 && sc->bge_chipid == BGE_CHIPID_BCM5701_B5) mode_ctl |= BGE_MODECTL_FORCE_PCI32; /* * Tell the firmware the driver is running */ if (sc->bge_asf_mode & ASF_STACKUP) mode_ctl |= BGE_MODECTL_STACKUP; CSR_WRITE_4(sc, BGE_MODE_CTL, mode_ctl); /* * Disable memory write invalidate. Apparently it is not supported * properly by these devices. */ PCI_CLRBIT(sc->bge_dev, BGE_PCI_CMD, PCIM_CMD_MWIEN, 4); /* Set the timer prescaler (always 66 MHz). */ CSR_WRITE_4(sc, BGE_MISC_CFG, BGE_32BITTIME_66MHZ); /* XXX: The Linux tg3 driver does this at the start of brgphy_reset. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5906) { DELAY(40); /* XXX */ /* Put PHY into ready state */ BGE_CLRBIT(sc, BGE_MISC_CFG, BGE_MISCCFG_EPHY_IDDQ); CSR_READ_4(sc, BGE_MISC_CFG); /* Flush */ DELAY(40); } return (0); } static int bge_blockinit(struct bge_softc *sc) { struct bge_rcb *rcb; bus_size_t vrcb; bge_hostaddr taddr; uint32_t dmactl, rdmareg, val; int i, limit; /* * Initialize the memory window pointer register so that * we can access the first 32K of internal NIC RAM. This will * allow us to set up the TX send ring RCBs and the RX return * ring RCBs, plus other things which live in NIC memory. */ CSR_WRITE_4(sc, BGE_PCI_MEMWIN_BASEADDR, 0); /* Note: the BCM5704 has a smaller mbuf space than other chips. */ if (!(BGE_IS_5705_PLUS(sc))) { /* Configure mbuf memory pool */ CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_BASEADDR, BGE_BUFFPOOL_1); if (sc->bge_asicrev == BGE_ASICREV_BCM5704) CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_LEN, 0x10000); else CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_LEN, 0x18000); /* Configure DMA resource pool */ CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_BASEADDR, BGE_DMA_DESCRIPTORS); CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_LEN, 0x2000); } /* Configure mbuf pool watermarks */ if (BGE_IS_5717_PLUS(sc)) { CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x0); if (if_getmtu(sc->bge_ifp) > ETHERMTU) { CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x7e); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0xea); } else { CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x2a); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0xa0); } } else if (!BGE_IS_5705_PLUS(sc)) { CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x50); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x20); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0x60); } else if (sc->bge_asicrev == BGE_ASICREV_BCM5906) { CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x0); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x04); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0x10); } else { CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_READDMA_LOWAT, 0x0); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_MACRX_LOWAT, 0x10); CSR_WRITE_4(sc, BGE_BMAN_MBUFPOOL_HIWAT, 0x60); } /* Configure DMA resource watermarks */ CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_LOWAT, 5); CSR_WRITE_4(sc, BGE_BMAN_DMA_DESCPOOL_HIWAT, 10); /* Enable buffer manager */ val = BGE_BMANMODE_ENABLE | BGE_BMANMODE_LOMBUF_ATTN; /* * Change the arbitration algorithm of TXMBUF read request to * round-robin instead of priority based for BCM5719. When * TXFIFO is almost empty, RDMA will hold its request until * TXFIFO is not almost empty. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5719) val |= BGE_BMANMODE_NO_TX_UNDERRUN; CSR_WRITE_4(sc, BGE_BMAN_MODE, val); /* Poll for buffer manager start indication */ for (i = 0; i < BGE_TIMEOUT; i++) { DELAY(10); if (CSR_READ_4(sc, BGE_BMAN_MODE) & BGE_BMANMODE_ENABLE) break; } if (i == BGE_TIMEOUT) { device_printf(sc->bge_dev, "buffer manager failed to start\n"); return (ENXIO); } /* Enable flow-through queues */ CSR_WRITE_4(sc, BGE_FTQ_RESET, 0xFFFFFFFF); CSR_WRITE_4(sc, BGE_FTQ_RESET, 0); /* Wait until queue initialization is complete */ for (i = 0; i < BGE_TIMEOUT; i++) { DELAY(10); if (CSR_READ_4(sc, BGE_FTQ_RESET) == 0) break; } if (i == BGE_TIMEOUT) { device_printf(sc->bge_dev, "flow-through queue init failed\n"); return (ENXIO); } /* * Summary of rings supported by the controller: * * Standard Receive Producer Ring * - This ring is used to feed receive buffers for "standard" * sized frames (typically 1536 bytes) to the controller. * * Jumbo Receive Producer Ring * - This ring is used to feed receive buffers for jumbo sized * frames (i.e. anything bigger than the "standard" frames) * to the controller. * * Mini Receive Producer Ring * - This ring is used to feed receive buffers for "mini" * sized frames to the controller. * - This feature required external memory for the controller * but was never used in a production system. Should always * be disabled. * * Receive Return Ring * - After the controller has placed an incoming frame into a * receive buffer that buffer is moved into a receive return * ring. The driver is then responsible to passing the * buffer up to the stack. Many versions of the controller * support multiple RR rings. * * Send Ring * - This ring is used for outgoing frames. Many versions of * the controller support multiple send rings. */ /* Initialize the standard receive producer ring control block. */ rcb = &sc->bge_ldata.bge_info.bge_std_rx_rcb; rcb->bge_hostaddr.bge_addr_lo = BGE_ADDR_LO(sc->bge_ldata.bge_rx_std_ring_paddr); rcb->bge_hostaddr.bge_addr_hi = BGE_ADDR_HI(sc->bge_ldata.bge_rx_std_ring_paddr); bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag, sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_PREREAD); if (BGE_IS_5717_PLUS(sc)) { /* * Bits 31-16: Programmable ring size (2048, 1024, 512, .., 32) * Bits 15-2 : Maximum RX frame size * Bit 1 : 1 = Ring Disabled, 0 = Ring ENabled * Bit 0 : Reserved */ rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(512, BGE_MAX_FRAMELEN << 2); } else if (BGE_IS_5705_PLUS(sc)) { /* * Bits 31-16: Programmable ring size (512, 256, 128, 64, 32) * Bits 15-2 : Reserved (should be 0) * Bit 1 : 1 = Ring Disabled, 0 = Ring Enabled * Bit 0 : Reserved */ rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(512, 0); } else { /* * Ring size is always XXX entries * Bits 31-16: Maximum RX frame size * Bits 15-2 : Reserved (should be 0) * Bit 1 : 1 = Ring Disabled, 0 = Ring Enabled * Bit 0 : Reserved */ rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(BGE_MAX_FRAMELEN, 0); } if (sc->bge_asicrev == BGE_ASICREV_BCM5717 || sc->bge_asicrev == BGE_ASICREV_BCM5719 || sc->bge_asicrev == BGE_ASICREV_BCM5720) rcb->bge_nicaddr = BGE_STD_RX_RINGS_5717; else rcb->bge_nicaddr = BGE_STD_RX_RINGS; /* Write the standard receive producer ring control block. */ CSR_WRITE_4(sc, BGE_RX_STD_RCB_HADDR_HI, rcb->bge_hostaddr.bge_addr_hi); CSR_WRITE_4(sc, BGE_RX_STD_RCB_HADDR_LO, rcb->bge_hostaddr.bge_addr_lo); CSR_WRITE_4(sc, BGE_RX_STD_RCB_MAXLEN_FLAGS, rcb->bge_maxlen_flags); CSR_WRITE_4(sc, BGE_RX_STD_RCB_NICADDR, rcb->bge_nicaddr); /* Reset the standard receive producer ring producer index. */ bge_writembx(sc, BGE_MBX_RX_STD_PROD_LO, 0); /* * Initialize the jumbo RX producer ring control * block. We set the 'ring disabled' bit in the * flags field until we're actually ready to start * using this ring (i.e. once we set the MTU * high enough to require it). */ if (BGE_IS_JUMBO_CAPABLE(sc)) { rcb = &sc->bge_ldata.bge_info.bge_jumbo_rx_rcb; /* Get the jumbo receive producer ring RCB parameters. */ rcb->bge_hostaddr.bge_addr_lo = BGE_ADDR_LO(sc->bge_ldata.bge_rx_jumbo_ring_paddr); rcb->bge_hostaddr.bge_addr_hi = BGE_ADDR_HI(sc->bge_ldata.bge_rx_jumbo_ring_paddr); bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag, sc->bge_cdata.bge_rx_jumbo_ring_map, BUS_DMASYNC_PREREAD); rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(0, BGE_RCB_FLAG_USE_EXT_RX_BD | BGE_RCB_FLAG_RING_DISABLED); if (sc->bge_asicrev == BGE_ASICREV_BCM5717 || sc->bge_asicrev == BGE_ASICREV_BCM5719 || sc->bge_asicrev == BGE_ASICREV_BCM5720) rcb->bge_nicaddr = BGE_JUMBO_RX_RINGS_5717; else rcb->bge_nicaddr = BGE_JUMBO_RX_RINGS; CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_HADDR_HI, rcb->bge_hostaddr.bge_addr_hi); CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_HADDR_LO, rcb->bge_hostaddr.bge_addr_lo); /* Program the jumbo receive producer ring RCB parameters. */ CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_MAXLEN_FLAGS, rcb->bge_maxlen_flags); CSR_WRITE_4(sc, BGE_RX_JUMBO_RCB_NICADDR, rcb->bge_nicaddr); /* Reset the jumbo receive producer ring producer index. */ bge_writembx(sc, BGE_MBX_RX_JUMBO_PROD_LO, 0); } /* Disable the mini receive producer ring RCB. */ if (BGE_IS_5700_FAMILY(sc)) { rcb = &sc->bge_ldata.bge_info.bge_mini_rx_rcb; rcb->bge_maxlen_flags = BGE_RCB_MAXLEN_FLAGS(0, BGE_RCB_FLAG_RING_DISABLED); CSR_WRITE_4(sc, BGE_RX_MINI_RCB_MAXLEN_FLAGS, rcb->bge_maxlen_flags); /* Reset the mini receive producer ring producer index. */ bge_writembx(sc, BGE_MBX_RX_MINI_PROD_LO, 0); } /* Choose de-pipeline mode for BCM5906 A0, A1 and A2. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5906) { if (sc->bge_chipid == BGE_CHIPID_BCM5906_A0 || sc->bge_chipid == BGE_CHIPID_BCM5906_A1 || sc->bge_chipid == BGE_CHIPID_BCM5906_A2) CSR_WRITE_4(sc, BGE_ISO_PKT_TX, (CSR_READ_4(sc, BGE_ISO_PKT_TX) & ~3) | 2); } /* * The BD ring replenish thresholds control how often the * hardware fetches new BD's from the producer rings in host * memory. Setting the value too low on a busy system can * starve the hardware and recue the throughpout. * * Set the BD ring replentish thresholds. The recommended * values are 1/8th the number of descriptors allocated to * each ring. * XXX The 5754 requires a lower threshold, so it might be a * requirement of all 575x family chips. The Linux driver sets * the lower threshold for all 5705 family chips as well, but there * are reports that it might not need to be so strict. * * XXX Linux does some extra fiddling here for the 5906 parts as * well. */ if (BGE_IS_5705_PLUS(sc)) val = 8; else val = BGE_STD_RX_RING_CNT / 8; CSR_WRITE_4(sc, BGE_RBDI_STD_REPL_THRESH, val); if (BGE_IS_JUMBO_CAPABLE(sc)) CSR_WRITE_4(sc, BGE_RBDI_JUMBO_REPL_THRESH, BGE_JUMBO_RX_RING_CNT/8); if (BGE_IS_5717_PLUS(sc)) { CSR_WRITE_4(sc, BGE_STD_REPLENISH_LWM, 32); CSR_WRITE_4(sc, BGE_JMB_REPLENISH_LWM, 16); } /* * Disable all send rings by setting the 'ring disabled' bit * in the flags field of all the TX send ring control blocks, * located in NIC memory. */ if (!BGE_IS_5705_PLUS(sc)) /* 5700 to 5704 had 16 send rings. */ limit = BGE_TX_RINGS_EXTSSRAM_MAX; else if (BGE_IS_57765_PLUS(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5762) limit = 2; else if (BGE_IS_5717_PLUS(sc)) limit = 4; else limit = 1; vrcb = BGE_MEMWIN_START + BGE_SEND_RING_RCB; for (i = 0; i < limit; i++) { RCB_WRITE_4(sc, vrcb, bge_maxlen_flags, BGE_RCB_MAXLEN_FLAGS(0, BGE_RCB_FLAG_RING_DISABLED)); RCB_WRITE_4(sc, vrcb, bge_nicaddr, 0); vrcb += sizeof(struct bge_rcb); } /* Configure send ring RCB 0 (we use only the first ring) */ vrcb = BGE_MEMWIN_START + BGE_SEND_RING_RCB; BGE_HOSTADDR(taddr, sc->bge_ldata.bge_tx_ring_paddr); RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_hi, taddr.bge_addr_hi); RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_lo, taddr.bge_addr_lo); if (sc->bge_asicrev == BGE_ASICREV_BCM5717 || sc->bge_asicrev == BGE_ASICREV_BCM5719 || sc->bge_asicrev == BGE_ASICREV_BCM5720) RCB_WRITE_4(sc, vrcb, bge_nicaddr, BGE_SEND_RING_5717); else RCB_WRITE_4(sc, vrcb, bge_nicaddr, BGE_NIC_TXRING_ADDR(0, BGE_TX_RING_CNT)); RCB_WRITE_4(sc, vrcb, bge_maxlen_flags, BGE_RCB_MAXLEN_FLAGS(BGE_TX_RING_CNT, 0)); /* * Disable all receive return rings by setting the * 'ring diabled' bit in the flags field of all the receive * return ring control blocks, located in NIC memory. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5717 || sc->bge_asicrev == BGE_ASICREV_BCM5719 || sc->bge_asicrev == BGE_ASICREV_BCM5720) { /* Should be 17, use 16 until we get an SRAM map. */ limit = 16; } else if (!BGE_IS_5705_PLUS(sc)) limit = BGE_RX_RINGS_MAX; else if (sc->bge_asicrev == BGE_ASICREV_BCM5755 || sc->bge_asicrev == BGE_ASICREV_BCM5762 || BGE_IS_57765_PLUS(sc)) limit = 4; else limit = 1; /* Disable all receive return rings. */ vrcb = BGE_MEMWIN_START + BGE_RX_RETURN_RING_RCB; for (i = 0; i < limit; i++) { RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_hi, 0); RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_lo, 0); RCB_WRITE_4(sc, vrcb, bge_maxlen_flags, BGE_RCB_FLAG_RING_DISABLED); RCB_WRITE_4(sc, vrcb, bge_nicaddr, 0); bge_writembx(sc, BGE_MBX_RX_CONS0_LO + (i * (sizeof(uint64_t))), 0); vrcb += sizeof(struct bge_rcb); } /* * Set up receive return ring 0. Note that the NIC address * for RX return rings is 0x0. The return rings live entirely * within the host, so the nicaddr field in the RCB isn't used. */ vrcb = BGE_MEMWIN_START + BGE_RX_RETURN_RING_RCB; BGE_HOSTADDR(taddr, sc->bge_ldata.bge_rx_return_ring_paddr); RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_hi, taddr.bge_addr_hi); RCB_WRITE_4(sc, vrcb, bge_hostaddr.bge_addr_lo, taddr.bge_addr_lo); RCB_WRITE_4(sc, vrcb, bge_nicaddr, 0); RCB_WRITE_4(sc, vrcb, bge_maxlen_flags, BGE_RCB_MAXLEN_FLAGS(sc->bge_return_ring_cnt, 0)); /* Set random backoff seed for TX */ CSR_WRITE_4(sc, BGE_TX_RANDOM_BACKOFF, (IF_LLADDR(sc->bge_ifp)[0] + IF_LLADDR(sc->bge_ifp)[1] + IF_LLADDR(sc->bge_ifp)[2] + IF_LLADDR(sc->bge_ifp)[3] + IF_LLADDR(sc->bge_ifp)[4] + IF_LLADDR(sc->bge_ifp)[5]) & BGE_TX_BACKOFF_SEED_MASK); /* Set inter-packet gap */ val = 0x2620; if (sc->bge_asicrev == BGE_ASICREV_BCM5720 || sc->bge_asicrev == BGE_ASICREV_BCM5762) val |= CSR_READ_4(sc, BGE_TX_LENGTHS) & (BGE_TXLEN_JMB_FRM_LEN_MSK | BGE_TXLEN_CNT_DN_VAL_MSK); CSR_WRITE_4(sc, BGE_TX_LENGTHS, val); /* * Specify which ring to use for packets that don't match * any RX rules. */ CSR_WRITE_4(sc, BGE_RX_RULES_CFG, 0x08); /* * Configure number of RX lists. One interrupt distribution * list, sixteen active lists, one bad frames class. */ CSR_WRITE_4(sc, BGE_RXLP_CFG, 0x181); /* Inialize RX list placement stats mask. */ CSR_WRITE_4(sc, BGE_RXLP_STATS_ENABLE_MASK, 0x007FFFFF); CSR_WRITE_4(sc, BGE_RXLP_STATS_CTL, 0x1); /* Disable host coalescing until we get it set up */ CSR_WRITE_4(sc, BGE_HCC_MODE, 0x00000000); /* Poll to make sure it's shut down. */ for (i = 0; i < BGE_TIMEOUT; i++) { DELAY(10); if (!(CSR_READ_4(sc, BGE_HCC_MODE) & BGE_HCCMODE_ENABLE)) break; } if (i == BGE_TIMEOUT) { device_printf(sc->bge_dev, "host coalescing engine failed to idle\n"); return (ENXIO); } /* Set up host coalescing defaults */ CSR_WRITE_4(sc, BGE_HCC_RX_COAL_TICKS, sc->bge_rx_coal_ticks); CSR_WRITE_4(sc, BGE_HCC_TX_COAL_TICKS, sc->bge_tx_coal_ticks); CSR_WRITE_4(sc, BGE_HCC_RX_MAX_COAL_BDS, sc->bge_rx_max_coal_bds); CSR_WRITE_4(sc, BGE_HCC_TX_MAX_COAL_BDS, sc->bge_tx_max_coal_bds); if (!(BGE_IS_5705_PLUS(sc))) { CSR_WRITE_4(sc, BGE_HCC_RX_COAL_TICKS_INT, 0); CSR_WRITE_4(sc, BGE_HCC_TX_COAL_TICKS_INT, 0); } CSR_WRITE_4(sc, BGE_HCC_RX_MAX_COAL_BDS_INT, 1); CSR_WRITE_4(sc, BGE_HCC_TX_MAX_COAL_BDS_INT, 1); /* Set up address of statistics block */ if (!(BGE_IS_5705_PLUS(sc))) { CSR_WRITE_4(sc, BGE_HCC_STATS_ADDR_HI, BGE_ADDR_HI(sc->bge_ldata.bge_stats_paddr)); CSR_WRITE_4(sc, BGE_HCC_STATS_ADDR_LO, BGE_ADDR_LO(sc->bge_ldata.bge_stats_paddr)); CSR_WRITE_4(sc, BGE_HCC_STATS_BASEADDR, BGE_STATS_BLOCK); CSR_WRITE_4(sc, BGE_HCC_STATUSBLK_BASEADDR, BGE_STATUS_BLOCK); CSR_WRITE_4(sc, BGE_HCC_STATS_TICKS, sc->bge_stat_ticks); } /* Set up address of status block */ CSR_WRITE_4(sc, BGE_HCC_STATUSBLK_ADDR_HI, BGE_ADDR_HI(sc->bge_ldata.bge_status_block_paddr)); CSR_WRITE_4(sc, BGE_HCC_STATUSBLK_ADDR_LO, BGE_ADDR_LO(sc->bge_ldata.bge_status_block_paddr)); /* Set up status block size. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5700 && sc->bge_chipid != BGE_CHIPID_BCM5700_C0) { val = BGE_STATBLKSZ_FULL; bzero(sc->bge_ldata.bge_status_block, BGE_STATUS_BLK_SZ); } else { val = BGE_STATBLKSZ_32BYTE; bzero(sc->bge_ldata.bge_status_block, 32); } bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); /* Turn on host coalescing state machine */ CSR_WRITE_4(sc, BGE_HCC_MODE, val | BGE_HCCMODE_ENABLE); /* Turn on RX BD completion state machine and enable attentions */ CSR_WRITE_4(sc, BGE_RBDC_MODE, BGE_RBDCMODE_ENABLE | BGE_RBDCMODE_ATTN); /* Turn on RX list placement state machine */ CSR_WRITE_4(sc, BGE_RXLP_MODE, BGE_RXLPMODE_ENABLE); /* Turn on RX list selector state machine. */ if (!(BGE_IS_5705_PLUS(sc))) CSR_WRITE_4(sc, BGE_RXLS_MODE, BGE_RXLSMODE_ENABLE); /* Turn on DMA, clear stats. */ val = BGE_MACMODE_TXDMA_ENB | BGE_MACMODE_RXDMA_ENB | BGE_MACMODE_RX_STATS_CLEAR | BGE_MACMODE_TX_STATS_CLEAR | BGE_MACMODE_RX_STATS_ENB | BGE_MACMODE_TX_STATS_ENB | BGE_MACMODE_FRMHDR_DMA_ENB; if (sc->bge_flags & BGE_FLAG_TBI) val |= BGE_PORTMODE_TBI; else if (sc->bge_flags & BGE_FLAG_MII_SERDES) val |= BGE_PORTMODE_GMII; else val |= BGE_PORTMODE_MII; /* Allow APE to send/receive frames. */ if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) != 0) val |= BGE_MACMODE_APE_RX_EN | BGE_MACMODE_APE_TX_EN; CSR_WRITE_4(sc, BGE_MAC_MODE, val); DELAY(40); /* Set misc. local control, enable interrupts on attentions */ BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_INTR_ONATTN); #ifdef notdef /* Assert GPIO pins for PHY reset */ BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_MISCIO_OUT0 | BGE_MLC_MISCIO_OUT1 | BGE_MLC_MISCIO_OUT2); BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_MISCIO_OUTEN0 | BGE_MLC_MISCIO_OUTEN1 | BGE_MLC_MISCIO_OUTEN2); #endif /* Turn on DMA completion state machine */ if (!(BGE_IS_5705_PLUS(sc))) CSR_WRITE_4(sc, BGE_DMAC_MODE, BGE_DMACMODE_ENABLE); val = BGE_WDMAMODE_ENABLE | BGE_WDMAMODE_ALL_ATTNS; /* Enable host coalescing bug fix. */ if (BGE_IS_5755_PLUS(sc)) val |= BGE_WDMAMODE_STATUS_TAG_FIX; /* Request larger DMA burst size to get better performance. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5785) val |= BGE_WDMAMODE_BURST_ALL_DATA; /* Turn on write DMA state machine */ CSR_WRITE_4(sc, BGE_WDMA_MODE, val); DELAY(40); /* Turn on read DMA state machine */ val = BGE_RDMAMODE_ENABLE | BGE_RDMAMODE_ALL_ATTNS; if (sc->bge_asicrev == BGE_ASICREV_BCM5717) val |= BGE_RDMAMODE_MULT_DMA_RD_DIS; if (sc->bge_asicrev == BGE_ASICREV_BCM5784 || sc->bge_asicrev == BGE_ASICREV_BCM5785 || sc->bge_asicrev == BGE_ASICREV_BCM57780) val |= BGE_RDMAMODE_BD_SBD_CRPT_ATTN | BGE_RDMAMODE_MBUF_RBD_CRPT_ATTN | BGE_RDMAMODE_MBUF_SBD_CRPT_ATTN; if (sc->bge_flags & BGE_FLAG_PCIE) val |= BGE_RDMAMODE_FIFO_LONG_BURST; if (sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3)) { val |= BGE_RDMAMODE_TSO4_ENABLE; if (sc->bge_flags & BGE_FLAG_TSO3 || sc->bge_asicrev == BGE_ASICREV_BCM5785 || sc->bge_asicrev == BGE_ASICREV_BCM57780) val |= BGE_RDMAMODE_TSO6_ENABLE; } if (sc->bge_asicrev == BGE_ASICREV_BCM5720 || sc->bge_asicrev == BGE_ASICREV_BCM5762) { val |= CSR_READ_4(sc, BGE_RDMA_MODE) & BGE_RDMAMODE_H2BNC_VLAN_DET; /* * Allow multiple outstanding read requests from * non-LSO read DMA engine. */ val &= ~BGE_RDMAMODE_MULT_DMA_RD_DIS; } if (sc->bge_asicrev == BGE_ASICREV_BCM5761 || sc->bge_asicrev == BGE_ASICREV_BCM5784 || sc->bge_asicrev == BGE_ASICREV_BCM5785 || sc->bge_asicrev == BGE_ASICREV_BCM57780 || BGE_IS_5717_PLUS(sc) || BGE_IS_57765_PLUS(sc)) { if (sc->bge_asicrev == BGE_ASICREV_BCM5762) rdmareg = BGE_RDMA_RSRVCTRL_REG2; else rdmareg = BGE_RDMA_RSRVCTRL; dmactl = CSR_READ_4(sc, rdmareg); /* * Adjust tx margin to prevent TX data corruption and * fix internal FIFO overflow. */ if (sc->bge_chipid == BGE_CHIPID_BCM5719_A0 || sc->bge_asicrev == BGE_ASICREV_BCM5762) { dmactl &= ~(BGE_RDMA_RSRVCTRL_FIFO_LWM_MASK | BGE_RDMA_RSRVCTRL_FIFO_HWM_MASK | BGE_RDMA_RSRVCTRL_TXMRGN_MASK); dmactl |= BGE_RDMA_RSRVCTRL_FIFO_LWM_1_5K | BGE_RDMA_RSRVCTRL_FIFO_HWM_1_5K | BGE_RDMA_RSRVCTRL_TXMRGN_320B; } /* * Enable fix for read DMA FIFO overruns. * The fix is to limit the number of RX BDs * the hardware would fetch at a fime. */ CSR_WRITE_4(sc, rdmareg, dmactl | BGE_RDMA_RSRVCTRL_FIFO_OFLW_FIX); } if (sc->bge_asicrev == BGE_ASICREV_BCM5719) { CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL, CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL) | BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_BD_4K | BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_LSO_4K); } else if (sc->bge_asicrev == BGE_ASICREV_BCM5720) { /* * Allow 4KB burst length reads for non-LSO frames. * Enable 512B burst length reads for buffer descriptors. */ CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL, CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL) | BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_BD_512 | BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_LSO_4K); } else if (sc->bge_asicrev == BGE_ASICREV_BCM5762) { CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL_REG2, CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL_REG2) | BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_BD_4K | BGE_RDMA_LSO_CRPTEN_CTRL_BLEN_LSO_4K); } CSR_WRITE_4(sc, BGE_RDMA_MODE, val); DELAY(40); if (sc->bge_flags & BGE_FLAG_RDMA_BUG) { for (i = 0; i < BGE_NUM_RDMA_CHANNELS / 2; i++) { val = CSR_READ_4(sc, BGE_RDMA_LENGTH + i * 4); if ((val & 0xFFFF) > BGE_FRAMELEN) break; if (((val >> 16) & 0xFFFF) > BGE_FRAMELEN) break; } if (i != BGE_NUM_RDMA_CHANNELS / 2) { val = CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL); if (sc->bge_asicrev == BGE_ASICREV_BCM5719) val |= BGE_RDMA_TX_LENGTH_WA_5719; else val |= BGE_RDMA_TX_LENGTH_WA_5720; CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL, val); } } /* Turn on RX data completion state machine */ CSR_WRITE_4(sc, BGE_RDC_MODE, BGE_RDCMODE_ENABLE); /* Turn on RX BD initiator state machine */ CSR_WRITE_4(sc, BGE_RBDI_MODE, BGE_RBDIMODE_ENABLE); /* Turn on RX data and RX BD initiator state machine */ CSR_WRITE_4(sc, BGE_RDBDI_MODE, BGE_RDBDIMODE_ENABLE); /* Turn on Mbuf cluster free state machine */ if (!(BGE_IS_5705_PLUS(sc))) CSR_WRITE_4(sc, BGE_MBCF_MODE, BGE_MBCFMODE_ENABLE); /* Turn on send BD completion state machine */ CSR_WRITE_4(sc, BGE_SBDC_MODE, BGE_SBDCMODE_ENABLE); /* Turn on send data completion state machine */ val = BGE_SDCMODE_ENABLE; if (sc->bge_asicrev == BGE_ASICREV_BCM5761) val |= BGE_SDCMODE_CDELAY; CSR_WRITE_4(sc, BGE_SDC_MODE, val); /* Turn on send data initiator state machine */ if (sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3)) CSR_WRITE_4(sc, BGE_SDI_MODE, BGE_SDIMODE_ENABLE | BGE_SDIMODE_HW_LSO_PRE_DMA); else CSR_WRITE_4(sc, BGE_SDI_MODE, BGE_SDIMODE_ENABLE); /* Turn on send BD initiator state machine */ CSR_WRITE_4(sc, BGE_SBDI_MODE, BGE_SBDIMODE_ENABLE); /* Turn on send BD selector state machine */ CSR_WRITE_4(sc, BGE_SRS_MODE, BGE_SRSMODE_ENABLE); CSR_WRITE_4(sc, BGE_SDI_STATS_ENABLE_MASK, 0x007FFFFF); CSR_WRITE_4(sc, BGE_SDI_STATS_CTL, BGE_SDISTATSCTL_ENABLE | BGE_SDISTATSCTL_FASTER); /* ack/clear link change events */ CSR_WRITE_4(sc, BGE_MAC_STS, BGE_MACSTAT_SYNC_CHANGED | BGE_MACSTAT_CFG_CHANGED | BGE_MACSTAT_MI_COMPLETE | BGE_MACSTAT_LINK_CHANGED); CSR_WRITE_4(sc, BGE_MI_STS, 0); /* * Enable attention when the link has changed state for * devices that use auto polling. */ if (sc->bge_flags & BGE_FLAG_TBI) { CSR_WRITE_4(sc, BGE_MI_STS, BGE_MISTS_LINK); } else { if (sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) { CSR_WRITE_4(sc, BGE_MI_MODE, sc->bge_mi_mode); DELAY(80); } if (sc->bge_asicrev == BGE_ASICREV_BCM5700 && sc->bge_chipid != BGE_CHIPID_BCM5700_B2) CSR_WRITE_4(sc, BGE_MAC_EVT_ENB, BGE_EVTENB_MI_INTERRUPT); } /* * Clear any pending link state attention. * Otherwise some link state change events may be lost until attention * is cleared by bge_intr() -> bge_link_upd() sequence. * It's not necessary on newer BCM chips - perhaps enabling link * state change attentions implies clearing pending attention. */ CSR_WRITE_4(sc, BGE_MAC_STS, BGE_MACSTAT_SYNC_CHANGED | BGE_MACSTAT_CFG_CHANGED | BGE_MACSTAT_MI_COMPLETE | BGE_MACSTAT_LINK_CHANGED); /* Enable link state change attentions. */ BGE_SETBIT(sc, BGE_MAC_EVT_ENB, BGE_EVTENB_LINK_CHANGED); return (0); } static const struct bge_revision * bge_lookup_rev(uint32_t chipid) { const struct bge_revision *br; for (br = bge_revisions; br->br_name != NULL; br++) { if (br->br_chipid == chipid) return (br); } for (br = bge_majorrevs; br->br_name != NULL; br++) { if (br->br_chipid == BGE_ASICREV(chipid)) return (br); } return (NULL); } static const struct bge_vendor * bge_lookup_vendor(uint16_t vid) { const struct bge_vendor *v; for (v = bge_vendors; v->v_name != NULL; v++) if (v->v_id == vid) return (v); return (NULL); } static uint32_t bge_chipid(device_t dev) { uint32_t id; id = pci_read_config(dev, BGE_PCI_MISC_CTL, 4) >> BGE_PCIMISCCTL_ASICREV_SHIFT; if (BGE_ASICREV(id) == BGE_ASICREV_USE_PRODID_REG) { /* * Find the ASCI revision. Different chips use different * registers. */ switch (pci_get_device(dev)) { case BCOM_DEVICEID_BCM5717C: /* 5717 C0 seems to belong to 5720 line. */ id = BGE_CHIPID_BCM5720_A0; break; case BCOM_DEVICEID_BCM5717: case BCOM_DEVICEID_BCM5718: case BCOM_DEVICEID_BCM5719: case BCOM_DEVICEID_BCM5720: case BCOM_DEVICEID_BCM5725: case BCOM_DEVICEID_BCM5727: case BCOM_DEVICEID_BCM5762: case BCOM_DEVICEID_BCM57764: case BCOM_DEVICEID_BCM57767: case BCOM_DEVICEID_BCM57787: id = pci_read_config(dev, BGE_PCI_GEN2_PRODID_ASICREV, 4); break; case BCOM_DEVICEID_BCM57761: case BCOM_DEVICEID_BCM57762: case BCOM_DEVICEID_BCM57765: case BCOM_DEVICEID_BCM57766: case BCOM_DEVICEID_BCM57781: case BCOM_DEVICEID_BCM57782: case BCOM_DEVICEID_BCM57785: case BCOM_DEVICEID_BCM57786: case BCOM_DEVICEID_BCM57791: case BCOM_DEVICEID_BCM57795: id = pci_read_config(dev, BGE_PCI_GEN15_PRODID_ASICREV, 4); break; default: id = pci_read_config(dev, BGE_PCI_PRODID_ASICREV, 4); } } return (id); } /* * Probe for a Broadcom chip. Check the PCI vendor and device IDs * against our list and return its name if we find a match. * * Note that since the Broadcom controller contains VPD support, we * try to get the device name string from the controller itself instead * of the compiled-in string. It guarantees we'll always announce the * right product name. We fall back to the compiled-in string when * VPD is unavailable or corrupt. */ static int bge_probe(device_t dev) { char buf[96]; char model[64]; const struct bge_revision *br; const char *pname; struct bge_softc *sc; const struct bge_type *t = bge_devs; const struct bge_vendor *v; uint32_t id; uint16_t did, vid; sc = device_get_softc(dev); sc->bge_dev = dev; vid = pci_get_vendor(dev); did = pci_get_device(dev); while(t->bge_vid != 0) { if ((vid == t->bge_vid) && (did == t->bge_did)) { id = bge_chipid(dev); br = bge_lookup_rev(id); if (bge_has_eaddr(sc) && pci_get_vpd_ident(dev, &pname) == 0) snprintf(model, sizeof(model), "%s", pname); else { v = bge_lookup_vendor(vid); snprintf(model, sizeof(model), "%s %s", v != NULL ? v->v_name : "Unknown", br != NULL ? br->br_name : "NetXtreme/NetLink Ethernet Controller"); } snprintf(buf, sizeof(buf), "%s, %sASIC rev. %#08x", model, br != NULL ? "" : "unknown ", id); device_set_desc_copy(dev, buf); return (BUS_PROBE_DEFAULT); } t++; } return (ENXIO); } static void bge_dma_free(struct bge_softc *sc) { int i; /* Destroy DMA maps for RX buffers. */ for (i = 0; i < BGE_STD_RX_RING_CNT; i++) { if (sc->bge_cdata.bge_rx_std_dmamap[i]) bus_dmamap_destroy(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_dmamap[i]); } if (sc->bge_cdata.bge_rx_std_sparemap) bus_dmamap_destroy(sc->bge_cdata.bge_rx_mtag, sc->bge_cdata.bge_rx_std_sparemap); /* Destroy DMA maps for jumbo RX buffers. */ for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) { if (sc->bge_cdata.bge_rx_jumbo_dmamap[i]) bus_dmamap_destroy(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_dmamap[i]); } if (sc->bge_cdata.bge_rx_jumbo_sparemap) bus_dmamap_destroy(sc->bge_cdata.bge_mtag_jumbo, sc->bge_cdata.bge_rx_jumbo_sparemap); /* Destroy DMA maps for TX buffers. */ for (i = 0; i < BGE_TX_RING_CNT; i++) { if (sc->bge_cdata.bge_tx_dmamap[i]) bus_dmamap_destroy(sc->bge_cdata.bge_tx_mtag, sc->bge_cdata.bge_tx_dmamap[i]); } if (sc->bge_cdata.bge_rx_mtag) bus_dma_tag_destroy(sc->bge_cdata.bge_rx_mtag); if (sc->bge_cdata.bge_mtag_jumbo) bus_dma_tag_destroy(sc->bge_cdata.bge_mtag_jumbo); if (sc->bge_cdata.bge_tx_mtag) bus_dma_tag_destroy(sc->bge_cdata.bge_tx_mtag); /* Destroy standard RX ring. */ if (sc->bge_ldata.bge_rx_std_ring_paddr) bus_dmamap_unload(sc->bge_cdata.bge_rx_std_ring_tag, sc->bge_cdata.bge_rx_std_ring_map); if (sc->bge_ldata.bge_rx_std_ring) bus_dmamem_free(sc->bge_cdata.bge_rx_std_ring_tag, sc->bge_ldata.bge_rx_std_ring, sc->bge_cdata.bge_rx_std_ring_map); if (sc->bge_cdata.bge_rx_std_ring_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_rx_std_ring_tag); /* Destroy jumbo RX ring. */ if (sc->bge_ldata.bge_rx_jumbo_ring_paddr) bus_dmamap_unload(sc->bge_cdata.bge_rx_jumbo_ring_tag, sc->bge_cdata.bge_rx_jumbo_ring_map); if (sc->bge_ldata.bge_rx_jumbo_ring) bus_dmamem_free(sc->bge_cdata.bge_rx_jumbo_ring_tag, sc->bge_ldata.bge_rx_jumbo_ring, sc->bge_cdata.bge_rx_jumbo_ring_map); if (sc->bge_cdata.bge_rx_jumbo_ring_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_rx_jumbo_ring_tag); /* Destroy RX return ring. */ if (sc->bge_ldata.bge_rx_return_ring_paddr) bus_dmamap_unload(sc->bge_cdata.bge_rx_return_ring_tag, sc->bge_cdata.bge_rx_return_ring_map); if (sc->bge_ldata.bge_rx_return_ring) bus_dmamem_free(sc->bge_cdata.bge_rx_return_ring_tag, sc->bge_ldata.bge_rx_return_ring, sc->bge_cdata.bge_rx_return_ring_map); if (sc->bge_cdata.bge_rx_return_ring_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_rx_return_ring_tag); /* Destroy TX ring. */ if (sc->bge_ldata.bge_tx_ring_paddr) bus_dmamap_unload(sc->bge_cdata.bge_tx_ring_tag, sc->bge_cdata.bge_tx_ring_map); if (sc->bge_ldata.bge_tx_ring) bus_dmamem_free(sc->bge_cdata.bge_tx_ring_tag, sc->bge_ldata.bge_tx_ring, sc->bge_cdata.bge_tx_ring_map); if (sc->bge_cdata.bge_tx_ring_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_tx_ring_tag); /* Destroy status block. */ if (sc->bge_ldata.bge_status_block_paddr) bus_dmamap_unload(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map); if (sc->bge_ldata.bge_status_block) bus_dmamem_free(sc->bge_cdata.bge_status_tag, sc->bge_ldata.bge_status_block, sc->bge_cdata.bge_status_map); if (sc->bge_cdata.bge_status_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_status_tag); /* Destroy statistics block. */ if (sc->bge_ldata.bge_stats_paddr) bus_dmamap_unload(sc->bge_cdata.bge_stats_tag, sc->bge_cdata.bge_stats_map); if (sc->bge_ldata.bge_stats) bus_dmamem_free(sc->bge_cdata.bge_stats_tag, sc->bge_ldata.bge_stats, sc->bge_cdata.bge_stats_map); if (sc->bge_cdata.bge_stats_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_stats_tag); if (sc->bge_cdata.bge_buffer_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_buffer_tag); /* Destroy the parent tag. */ if (sc->bge_cdata.bge_parent_tag) bus_dma_tag_destroy(sc->bge_cdata.bge_parent_tag); } static int bge_dma_ring_alloc(struct bge_softc *sc, bus_size_t alignment, bus_size_t maxsize, bus_dma_tag_t *tag, uint8_t **ring, bus_dmamap_t *map, bus_addr_t *paddr, const char *msg) { struct bge_dmamap_arg ctx; int error; error = bus_dma_tag_create(sc->bge_cdata.bge_parent_tag, alignment, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, maxsize, 1, maxsize, 0, NULL, NULL, tag); if (error != 0) { device_printf(sc->bge_dev, "could not create %s dma tag\n", msg); return (ENOMEM); } /* Allocate DMA'able memory for ring. */ error = bus_dmamem_alloc(*tag, (void **)ring, BUS_DMA_NOWAIT | BUS_DMA_ZERO | BUS_DMA_COHERENT, map); if (error != 0) { device_printf(sc->bge_dev, "could not allocate DMA'able memory for %s\n", msg); return (ENOMEM); } /* Load the address of the ring. */ ctx.bge_busaddr = 0; error = bus_dmamap_load(*tag, *map, *ring, maxsize, bge_dma_map_addr, &ctx, BUS_DMA_NOWAIT); if (error != 0) { device_printf(sc->bge_dev, "could not load DMA'able memory for %s\n", msg); return (ENOMEM); } *paddr = ctx.bge_busaddr; return (0); } static int bge_dma_alloc(struct bge_softc *sc) { bus_addr_t lowaddr; bus_size_t rxmaxsegsz, sbsz, txsegsz, txmaxsegsz; int i, error; lowaddr = BUS_SPACE_MAXADDR; if ((sc->bge_flags & BGE_FLAG_40BIT_BUG) != 0) lowaddr = BGE_DMA_MAXADDR; /* * Allocate the parent bus DMA tag appropriate for PCI. */ error = bus_dma_tag_create(bus_get_dma_tag(sc->bge_dev), 1, 0, lowaddr, BUS_SPACE_MAXADDR, NULL, NULL, BUS_SPACE_MAXSIZE_32BIT, 0, BUS_SPACE_MAXSIZE_32BIT, 0, NULL, NULL, &sc->bge_cdata.bge_parent_tag); if (error != 0) { device_printf(sc->bge_dev, "could not allocate parent dma tag\n"); return (ENOMEM); } /* Create tag for standard RX ring. */ error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_STD_RX_RING_SZ, &sc->bge_cdata.bge_rx_std_ring_tag, (uint8_t **)&sc->bge_ldata.bge_rx_std_ring, &sc->bge_cdata.bge_rx_std_ring_map, &sc->bge_ldata.bge_rx_std_ring_paddr, "RX ring"); if (error) return (error); /* Create tag for RX return ring. */ error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_RX_RTN_RING_SZ(sc), &sc->bge_cdata.bge_rx_return_ring_tag, (uint8_t **)&sc->bge_ldata.bge_rx_return_ring, &sc->bge_cdata.bge_rx_return_ring_map, &sc->bge_ldata.bge_rx_return_ring_paddr, "RX return ring"); if (error) return (error); /* Create tag for TX ring. */ error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_TX_RING_SZ, &sc->bge_cdata.bge_tx_ring_tag, (uint8_t **)&sc->bge_ldata.bge_tx_ring, &sc->bge_cdata.bge_tx_ring_map, &sc->bge_ldata.bge_tx_ring_paddr, "TX ring"); if (error) return (error); /* * Create tag for status block. * Because we only use single Tx/Rx/Rx return ring, use * minimum status block size except BCM5700 AX/BX which * seems to want to see full status block size regardless * of configured number of ring. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5700 && sc->bge_chipid != BGE_CHIPID_BCM5700_C0) sbsz = BGE_STATUS_BLK_SZ; else sbsz = 32; error = bge_dma_ring_alloc(sc, PAGE_SIZE, sbsz, &sc->bge_cdata.bge_status_tag, (uint8_t **)&sc->bge_ldata.bge_status_block, &sc->bge_cdata.bge_status_map, &sc->bge_ldata.bge_status_block_paddr, "status block"); if (error) return (error); /* Create tag for statistics block. */ error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_STATS_SZ, &sc->bge_cdata.bge_stats_tag, (uint8_t **)&sc->bge_ldata.bge_stats, &sc->bge_cdata.bge_stats_map, &sc->bge_ldata.bge_stats_paddr, "statistics block"); if (error) return (error); /* Create tag for jumbo RX ring. */ if (BGE_IS_JUMBO_CAPABLE(sc)) { error = bge_dma_ring_alloc(sc, PAGE_SIZE, BGE_JUMBO_RX_RING_SZ, &sc->bge_cdata.bge_rx_jumbo_ring_tag, (uint8_t **)&sc->bge_ldata.bge_rx_jumbo_ring, &sc->bge_cdata.bge_rx_jumbo_ring_map, &sc->bge_ldata.bge_rx_jumbo_ring_paddr, "jumbo RX ring"); if (error) return (error); } /* Create parent tag for buffers. */ if ((sc->bge_flags & BGE_FLAG_4G_BNDRY_BUG) != 0) { - lowaddr = BGE_BUS_SPACE_MAXADDR_32BIT; /* * XXX * watchdog timeout issue was observed on BCM5704 which * lives behind PCI-X bridge(e.g AMD 8131 PCI-X bridge). * Both limiting DMA address space to 32bits and flushing * mailbox write seem to address the issue. + */ if (sc->bge_pcixcap != 0) lowaddr = BUS_SPACE_MAXADDR_32BIT; - */ } error = bus_dma_tag_create(bus_get_dma_tag(sc->bge_dev), 1, 0, lowaddr, BUS_SPACE_MAXADDR, NULL, NULL, BUS_SPACE_MAXSIZE_32BIT, 0, BUS_SPACE_MAXSIZE_32BIT, 0, NULL, NULL, &sc->bge_cdata.bge_buffer_tag); if (error != 0) { device_printf(sc->bge_dev, "could not allocate buffer dma tag\n"); return (ENOMEM); } /* Create tag for Tx mbufs. */ if (sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3)) { txsegsz = BGE_TSOSEG_SZ; txmaxsegsz = 65535 + sizeof(struct ether_vlan_header); } else { txsegsz = MCLBYTES; txmaxsegsz = MCLBYTES * BGE_NSEG_NEW; } error = bus_dma_tag_create(sc->bge_cdata.bge_buffer_tag, 1, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, txmaxsegsz, BGE_NSEG_NEW, txsegsz, 0, NULL, NULL, &sc->bge_cdata.bge_tx_mtag); if (error) { device_printf(sc->bge_dev, "could not allocate TX dma tag\n"); return (ENOMEM); } /* Create tag for Rx mbufs. */ if (sc->bge_flags & BGE_FLAG_JUMBO_STD) rxmaxsegsz = MJUM9BYTES; else rxmaxsegsz = MCLBYTES; error = bus_dma_tag_create(sc->bge_cdata.bge_buffer_tag, 1, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, rxmaxsegsz, 1, rxmaxsegsz, 0, NULL, NULL, &sc->bge_cdata.bge_rx_mtag); if (error) { device_printf(sc->bge_dev, "could not allocate RX dma tag\n"); return (ENOMEM); } /* Create DMA maps for RX buffers. */ error = bus_dmamap_create(sc->bge_cdata.bge_rx_mtag, 0, &sc->bge_cdata.bge_rx_std_sparemap); if (error) { device_printf(sc->bge_dev, "can't create spare DMA map for RX\n"); return (ENOMEM); } for (i = 0; i < BGE_STD_RX_RING_CNT; i++) { error = bus_dmamap_create(sc->bge_cdata.bge_rx_mtag, 0, &sc->bge_cdata.bge_rx_std_dmamap[i]); if (error) { device_printf(sc->bge_dev, "can't create DMA map for RX\n"); return (ENOMEM); } } /* Create DMA maps for TX buffers. */ for (i = 0; i < BGE_TX_RING_CNT; i++) { error = bus_dmamap_create(sc->bge_cdata.bge_tx_mtag, 0, &sc->bge_cdata.bge_tx_dmamap[i]); if (error) { device_printf(sc->bge_dev, "can't create DMA map for TX\n"); return (ENOMEM); } } /* Create tags for jumbo RX buffers. */ if (BGE_IS_JUMBO_CAPABLE(sc)) { error = bus_dma_tag_create(sc->bge_cdata.bge_buffer_tag, 1, 0, BUS_SPACE_MAXADDR, BUS_SPACE_MAXADDR, NULL, NULL, MJUM9BYTES, BGE_NSEG_JUMBO, PAGE_SIZE, 0, NULL, NULL, &sc->bge_cdata.bge_mtag_jumbo); if (error) { device_printf(sc->bge_dev, "could not allocate jumbo dma tag\n"); return (ENOMEM); } /* Create DMA maps for jumbo RX buffers. */ error = bus_dmamap_create(sc->bge_cdata.bge_mtag_jumbo, 0, &sc->bge_cdata.bge_rx_jumbo_sparemap); if (error) { device_printf(sc->bge_dev, "can't create spare DMA map for jumbo RX\n"); return (ENOMEM); } for (i = 0; i < BGE_JUMBO_RX_RING_CNT; i++) { error = bus_dmamap_create(sc->bge_cdata.bge_mtag_jumbo, 0, &sc->bge_cdata.bge_rx_jumbo_dmamap[i]); if (error) { device_printf(sc->bge_dev, "can't create DMA map for jumbo RX\n"); return (ENOMEM); } } } return (0); } /* * Return true if this device has more than one port. */ static int bge_has_multiple_ports(struct bge_softc *sc) { device_t dev = sc->bge_dev; u_int b, d, f, fscan, s; d = pci_get_domain(dev); b = pci_get_bus(dev); s = pci_get_slot(dev); f = pci_get_function(dev); for (fscan = 0; fscan <= PCI_FUNCMAX; fscan++) if (fscan != f && pci_find_dbsf(d, b, s, fscan) != NULL) return (1); return (0); } /* * Return true if MSI can be used with this device. */ static int bge_can_use_msi(struct bge_softc *sc) { int can_use_msi = 0; if (sc->bge_msi == 0) return (0); /* Disable MSI for polling(4). */ #ifdef DEVICE_POLLING return (0); #endif switch (sc->bge_asicrev) { case BGE_ASICREV_BCM5714_A0: case BGE_ASICREV_BCM5714: /* * Apparently, MSI doesn't work when these chips are * configured in single-port mode. */ if (bge_has_multiple_ports(sc)) can_use_msi = 1; break; case BGE_ASICREV_BCM5750: if (sc->bge_chiprev != BGE_CHIPREV_5750_AX && sc->bge_chiprev != BGE_CHIPREV_5750_BX) can_use_msi = 1; break; case BGE_ASICREV_BCM5784: /* * Prevent infinite "watchdog timeout" errors * in some MacBook Pro and make it work out-of-the-box. */ if (sc->bge_chiprev == BGE_CHIPREV_5784_AX) break; /* FALLTHROUGH */ default: if (BGE_IS_575X_PLUS(sc)) can_use_msi = 1; } return (can_use_msi); } static int bge_mbox_reorder(struct bge_softc *sc) { /* Lists of PCI bridges that are known to reorder mailbox writes. */ static const struct mbox_reorder { const uint16_t vendor; const uint16_t device; const char *desc; } mbox_reorder_lists[] = { { 0x1022, 0x7450, "AMD-8131 PCI-X Bridge" }, }; devclass_t pci, pcib; device_t bus, dev; int i; pci = devclass_find("pci"); pcib = devclass_find("pcib"); dev = sc->bge_dev; bus = device_get_parent(dev); for (;;) { dev = device_get_parent(bus); bus = device_get_parent(dev); if (device_get_devclass(dev) != pcib) break; for (i = 0; i < nitems(mbox_reorder_lists); i++) { if (pci_get_vendor(dev) == mbox_reorder_lists[i].vendor && pci_get_device(dev) == mbox_reorder_lists[i].device) { device_printf(sc->bge_dev, "enabling MBOX workaround for %s\n", mbox_reorder_lists[i].desc); return (1); } } if (device_get_devclass(bus) != pci) break; } return (0); } static void bge_devinfo(struct bge_softc *sc) { uint32_t cfg, clk; device_printf(sc->bge_dev, "CHIP ID 0x%08x; ASIC REV 0x%02x; CHIP REV 0x%02x; ", sc->bge_chipid, sc->bge_asicrev, sc->bge_chiprev); if (sc->bge_flags & BGE_FLAG_PCIE) printf("PCI-E\n"); else if (sc->bge_flags & BGE_FLAG_PCIX) { printf("PCI-X "); cfg = CSR_READ_4(sc, BGE_MISC_CFG) & BGE_MISCCFG_BOARD_ID_MASK; if (cfg == BGE_MISCCFG_BOARD_ID_5704CIOBE) clk = 133; else { clk = CSR_READ_4(sc, BGE_PCI_CLKCTL) & 0x1F; switch (clk) { case 0: clk = 33; break; case 2: clk = 50; break; case 4: clk = 66; break; case 6: clk = 100; break; case 7: clk = 133; break; } } printf("%u MHz\n", clk); } else { if (sc->bge_pcixcap != 0) printf("PCI on PCI-X "); else printf("PCI "); cfg = pci_read_config(sc->bge_dev, BGE_PCI_PCISTATE, 4); if (cfg & BGE_PCISTATE_PCI_BUSSPEED) clk = 66; else clk = 33; if (cfg & BGE_PCISTATE_32BIT_BUS) printf("%u MHz; 32bit\n", clk); else printf("%u MHz; 64bit\n", clk); } } static int bge_attach(device_t dev) { if_t ifp; struct bge_softc *sc; uint32_t hwcfg = 0, misccfg, pcistate; u_char eaddr[ETHER_ADDR_LEN]; int capmask, error, reg, rid, trys; sc = device_get_softc(dev); sc->bge_dev = dev; BGE_LOCK_INIT(sc, device_get_nameunit(dev)); TASK_INIT(&sc->bge_intr_task, 0, bge_intr_task, sc); callout_init_mtx(&sc->bge_stat_ch, &sc->bge_mtx, 0); pci_enable_busmaster(dev); /* * Allocate control/status registers. */ rid = PCIR_BAR(0); sc->bge_res = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid, RF_ACTIVE); if (sc->bge_res == NULL) { device_printf (sc->bge_dev, "couldn't map BAR0 memory\n"); error = ENXIO; goto fail; } /* Save various chip information. */ sc->bge_func_addr = pci_get_function(dev); sc->bge_chipid = bge_chipid(dev); sc->bge_asicrev = BGE_ASICREV(sc->bge_chipid); sc->bge_chiprev = BGE_CHIPREV(sc->bge_chipid); /* Set default PHY address. */ sc->bge_phy_addr = 1; /* * PHY address mapping for various devices. * * | F0 Cu | F0 Sr | F1 Cu | F1 Sr | * ---------+-------+-------+-------+-------+ * BCM57XX | 1 | X | X | X | * BCM5704 | 1 | X | 1 | X | * BCM5717 | 1 | 8 | 2 | 9 | * BCM5719 | 1 | 8 | 2 | 9 | * BCM5720 | 1 | 8 | 2 | 9 | * * | F2 Cu | F2 Sr | F3 Cu | F3 Sr | * ---------+-------+-------+-------+-------+ * BCM57XX | X | X | X | X | * BCM5704 | X | X | X | X | * BCM5717 | X | X | X | X | * BCM5719 | 3 | 10 | 4 | 11 | * BCM5720 | X | X | X | X | * * Other addresses may respond but they are not * IEEE compliant PHYs and should be ignored. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5717 || sc->bge_asicrev == BGE_ASICREV_BCM5719 || sc->bge_asicrev == BGE_ASICREV_BCM5720) { if (sc->bge_chipid != BGE_CHIPID_BCM5717_A0) { if (CSR_READ_4(sc, BGE_SGDIG_STS) & BGE_SGDIGSTS_IS_SERDES) sc->bge_phy_addr = sc->bge_func_addr + 8; else sc->bge_phy_addr = sc->bge_func_addr + 1; } else { if (CSR_READ_4(sc, BGE_CPMU_PHY_STRAP) & BGE_CPMU_PHY_STRAP_IS_SERDES) sc->bge_phy_addr = sc->bge_func_addr + 8; else sc->bge_phy_addr = sc->bge_func_addr + 1; } } if (bge_has_eaddr(sc)) sc->bge_flags |= BGE_FLAG_EADDR; /* Save chipset family. */ switch (sc->bge_asicrev) { case BGE_ASICREV_BCM5762: case BGE_ASICREV_BCM57765: case BGE_ASICREV_BCM57766: sc->bge_flags |= BGE_FLAG_57765_PLUS; /* FALLTHROUGH */ case BGE_ASICREV_BCM5717: case BGE_ASICREV_BCM5719: case BGE_ASICREV_BCM5720: sc->bge_flags |= BGE_FLAG_5717_PLUS | BGE_FLAG_5755_PLUS | BGE_FLAG_575X_PLUS | BGE_FLAG_5705_PLUS | BGE_FLAG_JUMBO | BGE_FLAG_JUMBO_FRAME; if (sc->bge_asicrev == BGE_ASICREV_BCM5719 || sc->bge_asicrev == BGE_ASICREV_BCM5720) { /* * Enable work around for DMA engine miscalculation * of TXMBUF available space. */ sc->bge_flags |= BGE_FLAG_RDMA_BUG; if (sc->bge_asicrev == BGE_ASICREV_BCM5719 && sc->bge_chipid == BGE_CHIPID_BCM5719_A0) { /* Jumbo frame on BCM5719 A0 does not work. */ sc->bge_flags &= ~BGE_FLAG_JUMBO; } } break; case BGE_ASICREV_BCM5755: case BGE_ASICREV_BCM5761: case BGE_ASICREV_BCM5784: case BGE_ASICREV_BCM5785: case BGE_ASICREV_BCM5787: case BGE_ASICREV_BCM57780: sc->bge_flags |= BGE_FLAG_5755_PLUS | BGE_FLAG_575X_PLUS | BGE_FLAG_5705_PLUS; break; case BGE_ASICREV_BCM5700: case BGE_ASICREV_BCM5701: case BGE_ASICREV_BCM5703: case BGE_ASICREV_BCM5704: sc->bge_flags |= BGE_FLAG_5700_FAMILY | BGE_FLAG_JUMBO; break; case BGE_ASICREV_BCM5714_A0: case BGE_ASICREV_BCM5780: case BGE_ASICREV_BCM5714: sc->bge_flags |= BGE_FLAG_5714_FAMILY | BGE_FLAG_JUMBO_STD; /* FALLTHROUGH */ case BGE_ASICREV_BCM5750: case BGE_ASICREV_BCM5752: case BGE_ASICREV_BCM5906: sc->bge_flags |= BGE_FLAG_575X_PLUS; /* FALLTHROUGH */ case BGE_ASICREV_BCM5705: sc->bge_flags |= BGE_FLAG_5705_PLUS; break; } /* Identify chips with APE processor. */ switch (sc->bge_asicrev) { case BGE_ASICREV_BCM5717: case BGE_ASICREV_BCM5719: case BGE_ASICREV_BCM5720: case BGE_ASICREV_BCM5761: case BGE_ASICREV_BCM5762: sc->bge_flags |= BGE_FLAG_APE; break; } /* Chips with APE need BAR2 access for APE registers/memory. */ if ((sc->bge_flags & BGE_FLAG_APE) != 0) { rid = PCIR_BAR(2); sc->bge_res2 = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid, RF_ACTIVE); if (sc->bge_res2 == NULL) { device_printf (sc->bge_dev, "couldn't map BAR2 memory\n"); error = ENXIO; goto fail; } /* Enable APE register/memory access by host driver. */ pcistate = pci_read_config(dev, BGE_PCI_PCISTATE, 4); pcistate |= BGE_PCISTATE_ALLOW_APE_CTLSPC_WR | BGE_PCISTATE_ALLOW_APE_SHMEM_WR | BGE_PCISTATE_ALLOW_APE_PSPACE_WR; pci_write_config(dev, BGE_PCI_PCISTATE, pcistate, 4); bge_ape_lock_init(sc); bge_ape_read_fw_ver(sc); } /* Add SYSCTLs, requires the chipset family to be set. */ bge_add_sysctls(sc); /* Identify the chips that use an CPMU. */ if (BGE_IS_5717_PLUS(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5784 || sc->bge_asicrev == BGE_ASICREV_BCM5761 || sc->bge_asicrev == BGE_ASICREV_BCM5785 || sc->bge_asicrev == BGE_ASICREV_BCM57780) sc->bge_flags |= BGE_FLAG_CPMU_PRESENT; if ((sc->bge_flags & BGE_FLAG_CPMU_PRESENT) != 0) sc->bge_mi_mode = BGE_MIMODE_500KHZ_CONST; else sc->bge_mi_mode = BGE_MIMODE_BASE; /* Enable auto polling for BCM570[0-5]. */ if (BGE_IS_5700_FAMILY(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5705) sc->bge_mi_mode |= BGE_MIMODE_AUTOPOLL; /* * All Broadcom controllers have 4GB boundary DMA bug. * Whenever an address crosses a multiple of the 4GB boundary * (including 4GB, 8Gb, 12Gb, etc.) and makes the transition * from 0xX_FFFF_FFFF to 0x(X+1)_0000_0000 an internal DMA * state machine will lockup and cause the device to hang. */ sc->bge_flags |= BGE_FLAG_4G_BNDRY_BUG; /* BCM5755 or higher and BCM5906 have short DMA bug. */ if (BGE_IS_5755_PLUS(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5906) sc->bge_flags |= BGE_FLAG_SHORT_DMA_BUG; /* * BCM5719 cannot handle DMA requests for DMA segments that * have larger than 4KB in size. However the maximum DMA * segment size created in DMA tag is 4KB for TSO, so we * wouldn't encounter the issue here. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5719) sc->bge_flags |= BGE_FLAG_4K_RDMA_BUG; misccfg = CSR_READ_4(sc, BGE_MISC_CFG) & BGE_MISCCFG_BOARD_ID_MASK; if (sc->bge_asicrev == BGE_ASICREV_BCM5705) { if (misccfg == BGE_MISCCFG_BOARD_ID_5788 || misccfg == BGE_MISCCFG_BOARD_ID_5788M) sc->bge_flags |= BGE_FLAG_5788; } capmask = BMSR_DEFCAPMASK; if ((sc->bge_asicrev == BGE_ASICREV_BCM5703 && (misccfg == 0x4000 || misccfg == 0x8000)) || (sc->bge_asicrev == BGE_ASICREV_BCM5705 && pci_get_vendor(dev) == BCOM_VENDORID && (pci_get_device(dev) == BCOM_DEVICEID_BCM5901 || pci_get_device(dev) == BCOM_DEVICEID_BCM5901A2 || pci_get_device(dev) == BCOM_DEVICEID_BCM5705F)) || (pci_get_vendor(dev) == BCOM_VENDORID && (pci_get_device(dev) == BCOM_DEVICEID_BCM5751F || pci_get_device(dev) == BCOM_DEVICEID_BCM5753F || pci_get_device(dev) == BCOM_DEVICEID_BCM5787F)) || pci_get_device(dev) == BCOM_DEVICEID_BCM57790 || pci_get_device(dev) == BCOM_DEVICEID_BCM57791 || pci_get_device(dev) == BCOM_DEVICEID_BCM57795 || sc->bge_asicrev == BGE_ASICREV_BCM5906) { /* These chips are 10/100 only. */ capmask &= ~BMSR_EXTSTAT; sc->bge_phy_flags |= BGE_PHY_NO_WIRESPEED; } /* * Some controllers seem to require a special firmware to use * TSO. But the firmware is not available to FreeBSD and Linux * claims that the TSO performed by the firmware is slower than * hardware based TSO. Moreover the firmware based TSO has one * known bug which can't handle TSO if Ethernet header + IP/TCP * header is greater than 80 bytes. A workaround for the TSO * bug exist but it seems it's too expensive than not using * TSO at all. Some hardwares also have the TSO bug so limit * the TSO to the controllers that are not affected TSO issues * (e.g. 5755 or higher). */ if (BGE_IS_5717_PLUS(sc)) { /* BCM5717 requires different TSO configuration. */ sc->bge_flags |= BGE_FLAG_TSO3; if (sc->bge_asicrev == BGE_ASICREV_BCM5719 && sc->bge_chipid == BGE_CHIPID_BCM5719_A0) { /* TSO on BCM5719 A0 does not work. */ sc->bge_flags &= ~BGE_FLAG_TSO3; } } else if (BGE_IS_5755_PLUS(sc)) { /* * BCM5754 and BCM5787 shares the same ASIC id so * explicit device id check is required. * Due to unknown reason TSO does not work on BCM5755M. */ if (pci_get_device(dev) != BCOM_DEVICEID_BCM5754 && pci_get_device(dev) != BCOM_DEVICEID_BCM5754M && pci_get_device(dev) != BCOM_DEVICEID_BCM5755M) sc->bge_flags |= BGE_FLAG_TSO; } /* * Check if this is a PCI-X or PCI Express device. */ if (pci_find_cap(dev, PCIY_EXPRESS, ®) == 0) { /* * Found a PCI Express capabilities register, this * must be a PCI Express device. */ sc->bge_flags |= BGE_FLAG_PCIE; sc->bge_expcap = reg; /* Extract supported maximum payload size. */ sc->bge_mps = pci_read_config(dev, sc->bge_expcap + PCIER_DEVICE_CAP, 2); sc->bge_mps = 128 << (sc->bge_mps & PCIEM_CAP_MAX_PAYLOAD); if (sc->bge_asicrev == BGE_ASICREV_BCM5719 || sc->bge_asicrev == BGE_ASICREV_BCM5720) sc->bge_expmrq = 2048; else sc->bge_expmrq = 4096; pci_set_max_read_req(dev, sc->bge_expmrq); } else { /* * Check if the device is in PCI-X Mode. * (This bit is not valid on PCI Express controllers.) */ if (pci_find_cap(dev, PCIY_PCIX, ®) == 0) sc->bge_pcixcap = reg; if ((pci_read_config(dev, BGE_PCI_PCISTATE, 4) & BGE_PCISTATE_PCI_BUSMODE) == 0) sc->bge_flags |= BGE_FLAG_PCIX; } /* * The 40bit DMA bug applies to the 5714/5715 controllers and is * not actually a MAC controller bug but an issue with the embedded * PCIe to PCI-X bridge in the device. Use 40bit DMA workaround. */ if (BGE_IS_5714_FAMILY(sc) && (sc->bge_flags & BGE_FLAG_PCIX)) sc->bge_flags |= BGE_FLAG_40BIT_BUG; /* * Some PCI-X bridges are known to trigger write reordering to * the mailbox registers. Typical phenomena is watchdog timeouts * caused by out-of-order TX completions. Enable workaround for * PCI-X devices that live behind these bridges. * Note, PCI-X controllers can run in PCI mode so we can't use * BGE_FLAG_PCIX flag to detect PCI-X controllers. */ if (sc->bge_pcixcap != 0 && bge_mbox_reorder(sc) != 0) sc->bge_flags |= BGE_FLAG_MBOX_REORDER; /* * Allocate the interrupt, using MSI if possible. These devices * support 8 MSI messages, but only the first one is used in * normal operation. */ rid = 0; if (pci_find_cap(sc->bge_dev, PCIY_MSI, ®) == 0) { sc->bge_msicap = reg; reg = 1; if (bge_can_use_msi(sc) && pci_alloc_msi(dev, ®) == 0) { rid = 1; sc->bge_flags |= BGE_FLAG_MSI; } } /* * All controllers except BCM5700 supports tagged status but * we use tagged status only for MSI case on BCM5717. Otherwise * MSI on BCM5717 does not work. */ #ifndef DEVICE_POLLING if (sc->bge_flags & BGE_FLAG_MSI && BGE_IS_5717_PLUS(sc)) sc->bge_flags |= BGE_FLAG_TAGGED_STATUS; #endif sc->bge_irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, &rid, RF_ACTIVE | (rid != 0 ? 0 : RF_SHAREABLE)); if (sc->bge_irq == NULL) { device_printf(sc->bge_dev, "couldn't map interrupt\n"); error = ENXIO; goto fail; } bge_devinfo(sc); sc->bge_asf_mode = 0; /* No ASF if APE present. */ if ((sc->bge_flags & BGE_FLAG_APE) == 0) { if (bge_allow_asf && (bge_readmem_ind(sc, BGE_SRAM_DATA_SIG) == BGE_SRAM_DATA_SIG_MAGIC)) { if (bge_readmem_ind(sc, BGE_SRAM_DATA_CFG) & BGE_HWCFG_ASF) { sc->bge_asf_mode |= ASF_ENABLE; sc->bge_asf_mode |= ASF_STACKUP; if (BGE_IS_575X_PLUS(sc)) sc->bge_asf_mode |= ASF_NEW_HANDSHAKE; } } } bge_stop_fw(sc); bge_sig_pre_reset(sc, BGE_RESET_SHUTDOWN); if (bge_reset(sc)) { device_printf(sc->bge_dev, "chip reset failed\n"); error = ENXIO; goto fail; } bge_sig_legacy(sc, BGE_RESET_SHUTDOWN); bge_sig_post_reset(sc, BGE_RESET_SHUTDOWN); if (bge_chipinit(sc)) { device_printf(sc->bge_dev, "chip initialization failed\n"); error = ENXIO; goto fail; } error = bge_get_eaddr(sc, eaddr); if (error) { device_printf(sc->bge_dev, "failed to read station address\n"); error = ENXIO; goto fail; } /* 5705 limits RX return ring to 512 entries. */ if (BGE_IS_5717_PLUS(sc)) sc->bge_return_ring_cnt = BGE_RETURN_RING_CNT; else if (BGE_IS_5705_PLUS(sc)) sc->bge_return_ring_cnt = BGE_RETURN_RING_CNT_5705; else sc->bge_return_ring_cnt = BGE_RETURN_RING_CNT; if (bge_dma_alloc(sc)) { device_printf(sc->bge_dev, "failed to allocate DMA resources\n"); error = ENXIO; goto fail; } /* Set default tuneable values. */ sc->bge_stat_ticks = BGE_TICKS_PER_SEC; sc->bge_rx_coal_ticks = 150; sc->bge_tx_coal_ticks = 150; sc->bge_rx_max_coal_bds = 10; sc->bge_tx_max_coal_bds = 10; /* Initialize checksum features to use. */ sc->bge_csum_features = BGE_CSUM_FEATURES; if (sc->bge_forced_udpcsum != 0) sc->bge_csum_features |= CSUM_UDP; /* Set up ifnet structure */ ifp = sc->bge_ifp = if_alloc(IFT_ETHER); if (ifp == NULL) { device_printf(sc->bge_dev, "failed to if_alloc()\n"); error = ENXIO; goto fail; } if_setsoftc(ifp, sc); if_initname(ifp, device_get_name(dev), device_get_unit(dev)); if_setflags(ifp, IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST); if_setioctlfn(ifp, bge_ioctl); if_setstartfn(ifp, bge_start); if_setinitfn(ifp, bge_init); if_setgetcounterfn(ifp, bge_get_counter); if_setsendqlen(ifp, BGE_TX_RING_CNT - 1); if_setsendqready(ifp); if_sethwassist(ifp, sc->bge_csum_features); if_setcapabilities(ifp, IFCAP_HWCSUM | IFCAP_VLAN_HWTAGGING | IFCAP_VLAN_MTU); if ((sc->bge_flags & (BGE_FLAG_TSO | BGE_FLAG_TSO3)) != 0) { if_sethwassistbits(ifp, CSUM_TSO, 0); if_setcapabilitiesbit(ifp, IFCAP_TSO4 | IFCAP_VLAN_HWTSO, 0); } #ifdef IFCAP_VLAN_HWCSUM if_setcapabilitiesbit(ifp, IFCAP_VLAN_HWCSUM, 0); #endif if_setcapenable(ifp, if_getcapabilities(ifp)); #ifdef DEVICE_POLLING if_setcapabilitiesbit(ifp, IFCAP_POLLING, 0); #endif /* * 5700 B0 chips do not support checksumming correctly due * to hardware bugs. */ if (sc->bge_chipid == BGE_CHIPID_BCM5700_B0) { if_setcapabilitiesbit(ifp, 0, IFCAP_HWCSUM); if_setcapenablebit(ifp, 0, IFCAP_HWCSUM); if_sethwassist(ifp, 0); } /* * Figure out what sort of media we have by checking the * hardware config word in the first 32k of NIC internal memory, * or fall back to examining the EEPROM if necessary. * Note: on some BCM5700 cards, this value appears to be unset. * If that's the case, we have to rely on identifying the NIC * by its PCI subsystem ID, as we do below for the SysKonnect * SK-9D41. */ if (bge_readmem_ind(sc, BGE_SRAM_DATA_SIG) == BGE_SRAM_DATA_SIG_MAGIC) hwcfg = bge_readmem_ind(sc, BGE_SRAM_DATA_CFG); else if ((sc->bge_flags & BGE_FLAG_EADDR) && (sc->bge_asicrev != BGE_ASICREV_BCM5906)) { if (bge_read_eeprom(sc, (caddr_t)&hwcfg, BGE_EE_HWCFG_OFFSET, sizeof(hwcfg))) { device_printf(sc->bge_dev, "failed to read EEPROM\n"); error = ENXIO; goto fail; } hwcfg = ntohl(hwcfg); } /* The SysKonnect SK-9D41 is a 1000baseSX card. */ if ((pci_read_config(dev, BGE_PCI_SUBSYS, 4) >> 16) == SK_SUBSYSID_9D41 || (hwcfg & BGE_HWCFG_MEDIA) == BGE_MEDIA_FIBER) { if (BGE_IS_5705_PLUS(sc)) { sc->bge_flags |= BGE_FLAG_MII_SERDES; sc->bge_phy_flags |= BGE_PHY_NO_WIRESPEED; } else sc->bge_flags |= BGE_FLAG_TBI; } /* Set various PHY bug flags. */ if (sc->bge_chipid == BGE_CHIPID_BCM5701_A0 || sc->bge_chipid == BGE_CHIPID_BCM5701_B0) sc->bge_phy_flags |= BGE_PHY_CRC_BUG; if (sc->bge_chiprev == BGE_CHIPREV_5703_AX || sc->bge_chiprev == BGE_CHIPREV_5704_AX) sc->bge_phy_flags |= BGE_PHY_ADC_BUG; if (sc->bge_chipid == BGE_CHIPID_BCM5704_A0) sc->bge_phy_flags |= BGE_PHY_5704_A0_BUG; if (pci_get_subvendor(dev) == DELL_VENDORID) sc->bge_phy_flags |= BGE_PHY_NO_3LED; if ((BGE_IS_5705_PLUS(sc)) && sc->bge_asicrev != BGE_ASICREV_BCM5906 && sc->bge_asicrev != BGE_ASICREV_BCM5785 && sc->bge_asicrev != BGE_ASICREV_BCM57780 && !BGE_IS_5717_PLUS(sc)) { if (sc->bge_asicrev == BGE_ASICREV_BCM5755 || sc->bge_asicrev == BGE_ASICREV_BCM5761 || sc->bge_asicrev == BGE_ASICREV_BCM5784 || sc->bge_asicrev == BGE_ASICREV_BCM5787) { if (pci_get_device(dev) != BCOM_DEVICEID_BCM5722 && pci_get_device(dev) != BCOM_DEVICEID_BCM5756) sc->bge_phy_flags |= BGE_PHY_JITTER_BUG; if (pci_get_device(dev) == BCOM_DEVICEID_BCM5755M) sc->bge_phy_flags |= BGE_PHY_ADJUST_TRIM; } else sc->bge_phy_flags |= BGE_PHY_BER_BUG; } /* * Don't enable Ethernet@WireSpeed for the 5700 or the * 5705 A0 and A1 chips. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5700 || (sc->bge_asicrev == BGE_ASICREV_BCM5705 && (sc->bge_chipid != BGE_CHIPID_BCM5705_A0 && sc->bge_chipid != BGE_CHIPID_BCM5705_A1))) sc->bge_phy_flags |= BGE_PHY_NO_WIRESPEED; if (sc->bge_flags & BGE_FLAG_TBI) { ifmedia_init(&sc->bge_ifmedia, IFM_IMASK, bge_ifmedia_upd, bge_ifmedia_sts); ifmedia_add(&sc->bge_ifmedia, IFM_ETHER | IFM_1000_SX, 0, NULL); ifmedia_add(&sc->bge_ifmedia, IFM_ETHER | IFM_1000_SX | IFM_FDX, 0, NULL); ifmedia_add(&sc->bge_ifmedia, IFM_ETHER | IFM_AUTO, 0, NULL); ifmedia_set(&sc->bge_ifmedia, IFM_ETHER | IFM_AUTO); sc->bge_ifmedia.ifm_media = sc->bge_ifmedia.ifm_cur->ifm_media; } else { /* * Do transceiver setup and tell the firmware the * driver is down so we can try to get access the * probe if ASF is running. Retry a couple of times * if we get a conflict with the ASF firmware accessing * the PHY. */ trys = 0; BGE_CLRBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP); again: bge_asf_driver_up(sc); error = mii_attach(dev, &sc->bge_miibus, ifp, (ifm_change_cb_t)bge_ifmedia_upd, (ifm_stat_cb_t)bge_ifmedia_sts, capmask, sc->bge_phy_addr, MII_OFFSET_ANY, MIIF_DOPAUSE); if (error != 0) { if (trys++ < 4) { device_printf(sc->bge_dev, "Try again\n"); bge_miibus_writereg(sc->bge_dev, sc->bge_phy_addr, MII_BMCR, BMCR_RESET); goto again; } device_printf(sc->bge_dev, "attaching PHYs failed\n"); goto fail; } /* * Now tell the firmware we are going up after probing the PHY */ if (sc->bge_asf_mode & ASF_STACKUP) BGE_SETBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP); } /* * When using the BCM5701 in PCI-X mode, data corruption has * been observed in the first few bytes of some received packets. * Aligning the packet buffer in memory eliminates the corruption. * Unfortunately, this misaligns the packet payloads. On platforms * which do not support unaligned accesses, we will realign the * payloads by copying the received packets. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5701 && sc->bge_flags & BGE_FLAG_PCIX) sc->bge_flags |= BGE_FLAG_RX_ALIGNBUG; /* * Call MI attach routine. */ ether_ifattach(ifp, eaddr); /* Tell upper layer we support long frames. */ if_setifheaderlen(ifp, sizeof(struct ether_vlan_header)); /* * Hookup IRQ last. */ if (BGE_IS_5755_PLUS(sc) && sc->bge_flags & BGE_FLAG_MSI) { /* Take advantage of single-shot MSI. */ CSR_WRITE_4(sc, BGE_MSI_MODE, CSR_READ_4(sc, BGE_MSI_MODE) & ~BGE_MSIMODE_ONE_SHOT_DISABLE); sc->bge_tq = taskqueue_create_fast("bge_taskq", M_WAITOK, taskqueue_thread_enqueue, &sc->bge_tq); if (sc->bge_tq == NULL) { device_printf(dev, "could not create taskqueue.\n"); ether_ifdetach(ifp); error = ENOMEM; goto fail; } error = taskqueue_start_threads(&sc->bge_tq, 1, PI_NET, "%s taskq", device_get_nameunit(sc->bge_dev)); if (error != 0) { device_printf(dev, "could not start threads.\n"); ether_ifdetach(ifp); goto fail; } error = bus_setup_intr(dev, sc->bge_irq, INTR_TYPE_NET | INTR_MPSAFE, bge_msi_intr, NULL, sc, &sc->bge_intrhand); } else error = bus_setup_intr(dev, sc->bge_irq, INTR_TYPE_NET | INTR_MPSAFE, NULL, bge_intr, sc, &sc->bge_intrhand); if (error) { ether_ifdetach(ifp); device_printf(sc->bge_dev, "couldn't set up irq\n"); goto fail; } /* Attach driver netdump methods. */ NETDUMP_SET(ifp, bge); fail: if (error) bge_detach(dev); return (error); } static int bge_detach(device_t dev) { struct bge_softc *sc; if_t ifp; sc = device_get_softc(dev); ifp = sc->bge_ifp; #ifdef DEVICE_POLLING if (if_getcapenable(ifp) & IFCAP_POLLING) ether_poll_deregister(ifp); #endif if (device_is_attached(dev)) { ether_ifdetach(ifp); BGE_LOCK(sc); bge_stop(sc); BGE_UNLOCK(sc); callout_drain(&sc->bge_stat_ch); } if (sc->bge_tq) taskqueue_drain(sc->bge_tq, &sc->bge_intr_task); if (sc->bge_flags & BGE_FLAG_TBI) ifmedia_removeall(&sc->bge_ifmedia); else if (sc->bge_miibus != NULL) { bus_generic_detach(dev); device_delete_child(dev, sc->bge_miibus); } bge_release_resources(sc); return (0); } static void bge_release_resources(struct bge_softc *sc) { device_t dev; dev = sc->bge_dev; if (sc->bge_tq != NULL) taskqueue_free(sc->bge_tq); if (sc->bge_intrhand != NULL) bus_teardown_intr(dev, sc->bge_irq, sc->bge_intrhand); if (sc->bge_irq != NULL) { bus_release_resource(dev, SYS_RES_IRQ, rman_get_rid(sc->bge_irq), sc->bge_irq); pci_release_msi(dev); } if (sc->bge_res != NULL) bus_release_resource(dev, SYS_RES_MEMORY, rman_get_rid(sc->bge_res), sc->bge_res); if (sc->bge_res2 != NULL) bus_release_resource(dev, SYS_RES_MEMORY, rman_get_rid(sc->bge_res2), sc->bge_res2); if (sc->bge_ifp != NULL) if_free(sc->bge_ifp); bge_dma_free(sc); if (mtx_initialized(&sc->bge_mtx)) /* XXX */ BGE_LOCK_DESTROY(sc); } static int bge_reset(struct bge_softc *sc) { device_t dev; uint32_t cachesize, command, mac_mode, mac_mode_mask, reset, val; void (*write_op)(struct bge_softc *, int, int); uint16_t devctl; int i; dev = sc->bge_dev; mac_mode_mask = BGE_MACMODE_HALF_DUPLEX | BGE_MACMODE_PORTMODE; if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) != 0) mac_mode_mask |= BGE_MACMODE_APE_RX_EN | BGE_MACMODE_APE_TX_EN; mac_mode = CSR_READ_4(sc, BGE_MAC_MODE) & mac_mode_mask; if (BGE_IS_575X_PLUS(sc) && !BGE_IS_5714_FAMILY(sc) && (sc->bge_asicrev != BGE_ASICREV_BCM5906)) { if (sc->bge_flags & BGE_FLAG_PCIE) write_op = bge_writemem_direct; else write_op = bge_writemem_ind; } else write_op = bge_writereg_ind; if (sc->bge_asicrev != BGE_ASICREV_BCM5700 && sc->bge_asicrev != BGE_ASICREV_BCM5701) { CSR_WRITE_4(sc, BGE_NVRAM_SWARB, BGE_NVRAMSWARB_SET1); for (i = 0; i < 8000; i++) { if (CSR_READ_4(sc, BGE_NVRAM_SWARB) & BGE_NVRAMSWARB_GNT1) break; DELAY(20); } if (i == 8000) { if (bootverbose) device_printf(dev, "NVRAM lock timedout!\n"); } } /* Take APE lock when performing reset. */ bge_ape_lock(sc, BGE_APE_LOCK_GRC); /* Save some important PCI state. */ cachesize = pci_read_config(dev, BGE_PCI_CACHESZ, 4); command = pci_read_config(dev, BGE_PCI_CMD, 4); pci_write_config(dev, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_INDIRECT_ACCESS | BGE_PCIMISCCTL_MASK_PCI_INTR | BGE_HIF_SWAP_OPTIONS | BGE_PCIMISCCTL_PCISTATE_RW, 4); /* Disable fastboot on controllers that support it. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5752 || BGE_IS_5755_PLUS(sc)) { if (bootverbose) device_printf(dev, "Disabling fastboot\n"); CSR_WRITE_4(sc, BGE_FASTBOOT_PC, 0x0); } /* * Write the magic number to SRAM at offset 0xB50. * When firmware finishes its initialization it will * write ~BGE_SRAM_FW_MB_MAGIC to the same location. */ bge_writemem_ind(sc, BGE_SRAM_FW_MB, BGE_SRAM_FW_MB_MAGIC); reset = BGE_MISCCFG_RESET_CORE_CLOCKS | BGE_32BITTIME_66MHZ; /* XXX: Broadcom Linux driver. */ if (sc->bge_flags & BGE_FLAG_PCIE) { if (sc->bge_asicrev != BGE_ASICREV_BCM5785 && (sc->bge_flags & BGE_FLAG_5717_PLUS) == 0) { if (CSR_READ_4(sc, 0x7E2C) == 0x60) /* PCIE 1.0 */ CSR_WRITE_4(sc, 0x7E2C, 0x20); } if (sc->bge_chipid != BGE_CHIPID_BCM5750_A0) { /* Prevent PCIE link training during global reset */ CSR_WRITE_4(sc, BGE_MISC_CFG, 1 << 29); reset |= 1 << 29; } } if (sc->bge_asicrev == BGE_ASICREV_BCM5906) { val = CSR_READ_4(sc, BGE_VCPU_STATUS); CSR_WRITE_4(sc, BGE_VCPU_STATUS, val | BGE_VCPU_STATUS_DRV_RESET); val = CSR_READ_4(sc, BGE_VCPU_EXT_CTRL); CSR_WRITE_4(sc, BGE_VCPU_EXT_CTRL, val & ~BGE_VCPU_EXT_CTRL_HALT_CPU); } /* * Set GPHY Power Down Override to leave GPHY * powered up in D0 uninitialized. */ if (BGE_IS_5705_PLUS(sc) && (sc->bge_flags & BGE_FLAG_CPMU_PRESENT) == 0) reset |= BGE_MISCCFG_GPHY_PD_OVERRIDE; /* Issue global reset */ write_op(sc, BGE_MISC_CFG, reset); if (sc->bge_flags & BGE_FLAG_PCIE) DELAY(100 * 1000); else DELAY(1000); /* XXX: Broadcom Linux driver. */ if (sc->bge_flags & BGE_FLAG_PCIE) { if (sc->bge_chipid == BGE_CHIPID_BCM5750_A0) { DELAY(500000); /* wait for link training to complete */ val = pci_read_config(dev, 0xC4, 4); pci_write_config(dev, 0xC4, val | (1 << 15), 4); } devctl = pci_read_config(dev, sc->bge_expcap + PCIER_DEVICE_CTL, 2); /* Clear enable no snoop and disable relaxed ordering. */ devctl &= ~(PCIEM_CTL_RELAXED_ORD_ENABLE | PCIEM_CTL_NOSNOOP_ENABLE); pci_write_config(dev, sc->bge_expcap + PCIER_DEVICE_CTL, devctl, 2); pci_set_max_read_req(dev, sc->bge_expmrq); /* Clear error status. */ pci_write_config(dev, sc->bge_expcap + PCIER_DEVICE_STA, PCIEM_STA_CORRECTABLE_ERROR | PCIEM_STA_NON_FATAL_ERROR | PCIEM_STA_FATAL_ERROR | PCIEM_STA_UNSUPPORTED_REQ, 2); } /* Reset some of the PCI state that got zapped by reset. */ pci_write_config(dev, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_INDIRECT_ACCESS | BGE_PCIMISCCTL_MASK_PCI_INTR | BGE_HIF_SWAP_OPTIONS | BGE_PCIMISCCTL_PCISTATE_RW, 4); val = BGE_PCISTATE_ROM_ENABLE | BGE_PCISTATE_ROM_RETRY_ENABLE; if (sc->bge_chipid == BGE_CHIPID_BCM5704_A0 && (sc->bge_flags & BGE_FLAG_PCIX) != 0) val |= BGE_PCISTATE_RETRY_SAME_DMA; if ((sc->bge_mfw_flags & BGE_MFW_ON_APE) != 0) val |= BGE_PCISTATE_ALLOW_APE_CTLSPC_WR | BGE_PCISTATE_ALLOW_APE_SHMEM_WR | BGE_PCISTATE_ALLOW_APE_PSPACE_WR; pci_write_config(dev, BGE_PCI_PCISTATE, val, 4); pci_write_config(dev, BGE_PCI_CACHESZ, cachesize, 4); pci_write_config(dev, BGE_PCI_CMD, command, 4); /* * Disable PCI-X relaxed ordering to ensure status block update * comes first then packet buffer DMA. Otherwise driver may * read stale status block. */ if (sc->bge_flags & BGE_FLAG_PCIX) { devctl = pci_read_config(dev, sc->bge_pcixcap + PCIXR_COMMAND, 2); devctl &= ~PCIXM_COMMAND_ERO; if (sc->bge_asicrev == BGE_ASICREV_BCM5703) { devctl &= ~PCIXM_COMMAND_MAX_READ; devctl |= PCIXM_COMMAND_MAX_READ_2048; } else if (sc->bge_asicrev == BGE_ASICREV_BCM5704) { devctl &= ~(PCIXM_COMMAND_MAX_SPLITS | PCIXM_COMMAND_MAX_READ); devctl |= PCIXM_COMMAND_MAX_READ_2048; } pci_write_config(dev, sc->bge_pcixcap + PCIXR_COMMAND, devctl, 2); } /* Re-enable MSI, if necessary, and enable the memory arbiter. */ if (BGE_IS_5714_FAMILY(sc)) { /* This chip disables MSI on reset. */ if (sc->bge_flags & BGE_FLAG_MSI) { val = pci_read_config(dev, sc->bge_msicap + PCIR_MSI_CTRL, 2); pci_write_config(dev, sc->bge_msicap + PCIR_MSI_CTRL, val | PCIM_MSICTRL_MSI_ENABLE, 2); val = CSR_READ_4(sc, BGE_MSI_MODE); CSR_WRITE_4(sc, BGE_MSI_MODE, val | BGE_MSIMODE_ENABLE); } val = CSR_READ_4(sc, BGE_MARB_MODE); CSR_WRITE_4(sc, BGE_MARB_MODE, BGE_MARBMODE_ENABLE | val); } else CSR_WRITE_4(sc, BGE_MARB_MODE, BGE_MARBMODE_ENABLE); /* Fix up byte swapping. */ CSR_WRITE_4(sc, BGE_MODE_CTL, bge_dma_swap_options(sc)); val = CSR_READ_4(sc, BGE_MAC_MODE); val = (val & ~mac_mode_mask) | mac_mode; CSR_WRITE_4(sc, BGE_MAC_MODE, val); DELAY(40); bge_ape_unlock(sc, BGE_APE_LOCK_GRC); if (sc->bge_asicrev == BGE_ASICREV_BCM5906) { for (i = 0; i < BGE_TIMEOUT; i++) { val = CSR_READ_4(sc, BGE_VCPU_STATUS); if (val & BGE_VCPU_STATUS_INIT_DONE) break; DELAY(100); } if (i == BGE_TIMEOUT) { device_printf(dev, "reset timed out\n"); return (1); } } else { /* * Poll until we see the 1's complement of the magic number. * This indicates that the firmware initialization is complete. * We expect this to fail if no chip containing the Ethernet * address is fitted though. */ for (i = 0; i < BGE_TIMEOUT; i++) { DELAY(10); val = bge_readmem_ind(sc, BGE_SRAM_FW_MB); if (val == ~BGE_SRAM_FW_MB_MAGIC) break; } if ((sc->bge_flags & BGE_FLAG_EADDR) && i == BGE_TIMEOUT) device_printf(dev, "firmware handshake timed out, found 0x%08x\n", val); /* BCM57765 A0 needs additional time before accessing. */ if (sc->bge_chipid == BGE_CHIPID_BCM57765_A0) DELAY(10 * 1000); /* XXX */ } /* * The 5704 in TBI mode apparently needs some special * adjustment to insure the SERDES drive level is set * to 1.2V. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5704 && sc->bge_flags & BGE_FLAG_TBI) { val = CSR_READ_4(sc, BGE_SERDES_CFG); val = (val & ~0xFFF) | 0x880; CSR_WRITE_4(sc, BGE_SERDES_CFG, val); } /* XXX: Broadcom Linux driver. */ if (sc->bge_flags & BGE_FLAG_PCIE && !BGE_IS_5717_PLUS(sc) && sc->bge_chipid != BGE_CHIPID_BCM5750_A0 && sc->bge_asicrev != BGE_ASICREV_BCM5785) { /* Enable Data FIFO protection. */ val = CSR_READ_4(sc, 0x7C00); CSR_WRITE_4(sc, 0x7C00, val | (1 << 25)); } if (sc->bge_asicrev == BGE_ASICREV_BCM5720) BGE_CLRBIT(sc, BGE_CPMU_CLCK_ORIDE, CPMU_CLCK_ORIDE_MAC_ORIDE_EN); return (0); } static __inline void bge_rxreuse_std(struct bge_softc *sc, int i) { struct bge_rx_bd *r; r = &sc->bge_ldata.bge_rx_std_ring[sc->bge_std]; r->bge_flags = BGE_RXBDFLAG_END; r->bge_len = sc->bge_cdata.bge_rx_std_seglen[i]; r->bge_idx = i; BGE_INC(sc->bge_std, BGE_STD_RX_RING_CNT); } static __inline void bge_rxreuse_jumbo(struct bge_softc *sc, int i) { struct bge_extrx_bd *r; r = &sc->bge_ldata.bge_rx_jumbo_ring[sc->bge_jumbo]; r->bge_flags = BGE_RXBDFLAG_JUMBO_RING | BGE_RXBDFLAG_END; r->bge_len0 = sc->bge_cdata.bge_rx_jumbo_seglen[i][0]; r->bge_len1 = sc->bge_cdata.bge_rx_jumbo_seglen[i][1]; r->bge_len2 = sc->bge_cdata.bge_rx_jumbo_seglen[i][2]; r->bge_len3 = sc->bge_cdata.bge_rx_jumbo_seglen[i][3]; r->bge_idx = i; BGE_INC(sc->bge_jumbo, BGE_JUMBO_RX_RING_CNT); } /* * Frame reception handling. This is called if there's a frame * on the receive return list. * * Note: we have to be able to handle two possibilities here: * 1) the frame is from the jumbo receive ring * 2) the frame is from the standard receive ring */ static int bge_rxeof(struct bge_softc *sc, uint16_t rx_prod, int holdlck) { if_t ifp; int rx_npkts = 0, stdcnt = 0, jumbocnt = 0; uint16_t rx_cons; rx_cons = sc->bge_rx_saved_considx; /* Nothing to do. */ if (rx_cons == rx_prod) return (rx_npkts); ifp = sc->bge_ifp; bus_dmamap_sync(sc->bge_cdata.bge_rx_return_ring_tag, sc->bge_cdata.bge_rx_return_ring_map, BUS_DMASYNC_POSTREAD); bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag, sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_POSTWRITE); if (BGE_IS_JUMBO_CAPABLE(sc) && if_getmtu(ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN + ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN)) bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag, sc->bge_cdata.bge_rx_jumbo_ring_map, BUS_DMASYNC_POSTWRITE); while (rx_cons != rx_prod) { struct bge_rx_bd *cur_rx; uint32_t rxidx; struct mbuf *m = NULL; uint16_t vlan_tag = 0; int have_tag = 0; #ifdef DEVICE_POLLING if (if_getcapenable(ifp) & IFCAP_POLLING) { if (sc->rxcycles <= 0) break; sc->rxcycles--; } #endif cur_rx = &sc->bge_ldata.bge_rx_return_ring[rx_cons]; rxidx = cur_rx->bge_idx; BGE_INC(rx_cons, sc->bge_return_ring_cnt); if (if_getcapenable(ifp) & IFCAP_VLAN_HWTAGGING && cur_rx->bge_flags & BGE_RXBDFLAG_VLAN_TAG) { have_tag = 1; vlan_tag = cur_rx->bge_vlan_tag; } if (cur_rx->bge_flags & BGE_RXBDFLAG_JUMBO_RING) { jumbocnt++; m = sc->bge_cdata.bge_rx_jumbo_chain[rxidx]; if (cur_rx->bge_flags & BGE_RXBDFLAG_ERROR) { bge_rxreuse_jumbo(sc, rxidx); continue; } if (bge_newbuf_jumbo(sc, rxidx) != 0) { bge_rxreuse_jumbo(sc, rxidx); if_inc_counter(ifp, IFCOUNTER_IQDROPS, 1); continue; } BGE_INC(sc->bge_jumbo, BGE_JUMBO_RX_RING_CNT); } else { stdcnt++; m = sc->bge_cdata.bge_rx_std_chain[rxidx]; if (cur_rx->bge_flags & BGE_RXBDFLAG_ERROR) { bge_rxreuse_std(sc, rxidx); continue; } if (bge_newbuf_std(sc, rxidx) != 0) { bge_rxreuse_std(sc, rxidx); if_inc_counter(ifp, IFCOUNTER_IQDROPS, 1); continue; } BGE_INC(sc->bge_std, BGE_STD_RX_RING_CNT); } if_inc_counter(ifp, IFCOUNTER_IPACKETS, 1); #ifndef __NO_STRICT_ALIGNMENT /* * For architectures with strict alignment we must make sure * the payload is aligned. */ if (sc->bge_flags & BGE_FLAG_RX_ALIGNBUG) { bcopy(m->m_data, m->m_data + ETHER_ALIGN, cur_rx->bge_len); m->m_data += ETHER_ALIGN; } #endif m->m_pkthdr.len = m->m_len = cur_rx->bge_len - ETHER_CRC_LEN; m->m_pkthdr.rcvif = ifp; if (if_getcapenable(ifp) & IFCAP_RXCSUM) bge_rxcsum(sc, cur_rx, m); /* * If we received a packet with a vlan tag, * attach that information to the packet. */ if (have_tag) { m->m_pkthdr.ether_vtag = vlan_tag; m->m_flags |= M_VLANTAG; } if (holdlck != 0) { BGE_UNLOCK(sc); if_input(ifp, m); BGE_LOCK(sc); } else if_input(ifp, m); rx_npkts++; if (!(if_getdrvflags(ifp) & IFF_DRV_RUNNING)) return (rx_npkts); } bus_dmamap_sync(sc->bge_cdata.bge_rx_return_ring_tag, sc->bge_cdata.bge_rx_return_ring_map, BUS_DMASYNC_PREREAD); if (stdcnt > 0) bus_dmamap_sync(sc->bge_cdata.bge_rx_std_ring_tag, sc->bge_cdata.bge_rx_std_ring_map, BUS_DMASYNC_PREWRITE); if (jumbocnt > 0) bus_dmamap_sync(sc->bge_cdata.bge_rx_jumbo_ring_tag, sc->bge_cdata.bge_rx_jumbo_ring_map, BUS_DMASYNC_PREWRITE); sc->bge_rx_saved_considx = rx_cons; bge_writembx(sc, BGE_MBX_RX_CONS0_LO, sc->bge_rx_saved_considx); if (stdcnt) bge_writembx(sc, BGE_MBX_RX_STD_PROD_LO, (sc->bge_std + BGE_STD_RX_RING_CNT - 1) % BGE_STD_RX_RING_CNT); if (jumbocnt) bge_writembx(sc, BGE_MBX_RX_JUMBO_PROD_LO, (sc->bge_jumbo + BGE_JUMBO_RX_RING_CNT - 1) % BGE_JUMBO_RX_RING_CNT); #ifdef notyet /* * This register wraps very quickly under heavy packet drops. * If you need correct statistics, you can enable this check. */ if (BGE_IS_5705_PLUS(sc)) if_incierrors(ifp, CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_DROPS)); #endif return (rx_npkts); } static void bge_rxcsum(struct bge_softc *sc, struct bge_rx_bd *cur_rx, struct mbuf *m) { if (BGE_IS_5717_PLUS(sc)) { if ((cur_rx->bge_flags & BGE_RXBDFLAG_IPV6) == 0) { if (cur_rx->bge_flags & BGE_RXBDFLAG_IP_CSUM) { m->m_pkthdr.csum_flags |= CSUM_IP_CHECKED; if ((cur_rx->bge_error_flag & BGE_RXERRFLAG_IP_CSUM_NOK) == 0) m->m_pkthdr.csum_flags |= CSUM_IP_VALID; } if (cur_rx->bge_flags & BGE_RXBDFLAG_TCP_UDP_CSUM) { m->m_pkthdr.csum_data = cur_rx->bge_tcp_udp_csum; m->m_pkthdr.csum_flags |= CSUM_DATA_VALID | CSUM_PSEUDO_HDR; } } } else { if (cur_rx->bge_flags & BGE_RXBDFLAG_IP_CSUM) { m->m_pkthdr.csum_flags |= CSUM_IP_CHECKED; if ((cur_rx->bge_ip_csum ^ 0xFFFF) == 0) m->m_pkthdr.csum_flags |= CSUM_IP_VALID; } if (cur_rx->bge_flags & BGE_RXBDFLAG_TCP_UDP_CSUM && m->m_pkthdr.len >= ETHER_MIN_NOPAD) { m->m_pkthdr.csum_data = cur_rx->bge_tcp_udp_csum; m->m_pkthdr.csum_flags |= CSUM_DATA_VALID | CSUM_PSEUDO_HDR; } } } static void bge_txeof(struct bge_softc *sc, uint16_t tx_cons) { struct bge_tx_bd *cur_tx; if_t ifp; BGE_LOCK_ASSERT(sc); /* Nothing to do. */ if (sc->bge_tx_saved_considx == tx_cons) return; ifp = sc->bge_ifp; bus_dmamap_sync(sc->bge_cdata.bge_tx_ring_tag, sc->bge_cdata.bge_tx_ring_map, BUS_DMASYNC_POSTWRITE); /* * Go through our tx ring and free mbufs for those * frames that have been sent. */ while (sc->bge_tx_saved_considx != tx_cons) { uint32_t idx; idx = sc->bge_tx_saved_considx; cur_tx = &sc->bge_ldata.bge_tx_ring[idx]; if (cur_tx->bge_flags & BGE_TXBDFLAG_END) if_inc_counter(ifp, IFCOUNTER_OPACKETS, 1); if (sc->bge_cdata.bge_tx_chain[idx] != NULL) { bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag, sc->bge_cdata.bge_tx_dmamap[idx], BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag, sc->bge_cdata.bge_tx_dmamap[idx]); m_freem(sc->bge_cdata.bge_tx_chain[idx]); sc->bge_cdata.bge_tx_chain[idx] = NULL; } sc->bge_txcnt--; BGE_INC(sc->bge_tx_saved_considx, BGE_TX_RING_CNT); } if_setdrvflagbits(ifp, 0, IFF_DRV_OACTIVE); if (sc->bge_txcnt == 0) sc->bge_timer = 0; } #ifdef DEVICE_POLLING static int bge_poll(if_t ifp, enum poll_cmd cmd, int count) { struct bge_softc *sc = if_getsoftc(ifp); uint16_t rx_prod, tx_cons; uint32_t statusword; int rx_npkts = 0; BGE_LOCK(sc); if (!(if_getdrvflags(ifp) & IFF_DRV_RUNNING)) { BGE_UNLOCK(sc); return (rx_npkts); } bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); /* Fetch updates from the status block. */ rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx; tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx; statusword = sc->bge_ldata.bge_status_block->bge_status; /* Clear the status so the next pass only sees the changes. */ sc->bge_ldata.bge_status_block->bge_status = 0; bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); /* Note link event. It will be processed by POLL_AND_CHECK_STATUS. */ if (statusword & BGE_STATFLAG_LINKSTATE_CHANGED) sc->bge_link_evt++; if (cmd == POLL_AND_CHECK_STATUS) if ((sc->bge_asicrev == BGE_ASICREV_BCM5700 && sc->bge_chipid != BGE_CHIPID_BCM5700_B2) || sc->bge_link_evt || (sc->bge_flags & BGE_FLAG_TBI)) bge_link_upd(sc); sc->rxcycles = count; rx_npkts = bge_rxeof(sc, rx_prod, 1); if (!(if_getdrvflags(ifp) & IFF_DRV_RUNNING)) { BGE_UNLOCK(sc); return (rx_npkts); } bge_txeof(sc, tx_cons); if (!if_sendq_empty(ifp)) bge_start_locked(ifp); BGE_UNLOCK(sc); return (rx_npkts); } #endif /* DEVICE_POLLING */ static int bge_msi_intr(void *arg) { struct bge_softc *sc; sc = (struct bge_softc *)arg; /* * This interrupt is not shared and controller already * disabled further interrupt. */ taskqueue_enqueue(sc->bge_tq, &sc->bge_intr_task); return (FILTER_HANDLED); } static void bge_intr_task(void *arg, int pending) { struct bge_softc *sc; if_t ifp; uint32_t status, status_tag; uint16_t rx_prod, tx_cons; sc = (struct bge_softc *)arg; ifp = sc->bge_ifp; BGE_LOCK(sc); if ((if_getdrvflags(ifp) & IFF_DRV_RUNNING) == 0) { BGE_UNLOCK(sc); return; } /* Get updated status block. */ bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); /* Save producer/consumer indices. */ rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx; tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx; status = sc->bge_ldata.bge_status_block->bge_status; status_tag = sc->bge_ldata.bge_status_block->bge_status_tag << 24; /* Dirty the status flag. */ sc->bge_ldata.bge_status_block->bge_status = 0; bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); if ((sc->bge_flags & BGE_FLAG_TAGGED_STATUS) == 0) status_tag = 0; if ((status & BGE_STATFLAG_LINKSTATE_CHANGED) != 0) bge_link_upd(sc); /* Let controller work. */ bge_writembx(sc, BGE_MBX_IRQ0_LO, status_tag); if (if_getdrvflags(ifp) & IFF_DRV_RUNNING && sc->bge_rx_saved_considx != rx_prod) { /* Check RX return ring producer/consumer. */ BGE_UNLOCK(sc); bge_rxeof(sc, rx_prod, 0); BGE_LOCK(sc); } if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) { /* Check TX ring producer/consumer. */ bge_txeof(sc, tx_cons); if (!if_sendq_empty(ifp)) bge_start_locked(ifp); } BGE_UNLOCK(sc); } static void bge_intr(void *xsc) { struct bge_softc *sc; if_t ifp; uint32_t statusword; uint16_t rx_prod, tx_cons; sc = xsc; BGE_LOCK(sc); ifp = sc->bge_ifp; #ifdef DEVICE_POLLING if (if_getcapenable(ifp) & IFCAP_POLLING) { BGE_UNLOCK(sc); return; } #endif /* * Ack the interrupt by writing something to BGE_MBX_IRQ0_LO. Don't * disable interrupts by writing nonzero like we used to, since with * our current organization this just gives complications and * pessimizations for re-enabling interrupts. We used to have races * instead of the necessary complications. Disabling interrupts * would just reduce the chance of a status update while we are * running (by switching to the interrupt-mode coalescence * parameters), but this chance is already very low so it is more * efficient to get another interrupt than prevent it. * * We do the ack first to ensure another interrupt if there is a * status update after the ack. We don't check for the status * changing later because it is more efficient to get another * interrupt than prevent it, not quite as above (not checking is * a smaller optimization than not toggling the interrupt enable, * since checking doesn't involve PCI accesses and toggling require * the status check). So toggling would probably be a pessimization * even with MSI. It would only be needed for using a task queue. */ bge_writembx(sc, BGE_MBX_IRQ0_LO, 0); /* * Do the mandatory PCI flush as well as get the link status. */ statusword = CSR_READ_4(sc, BGE_MAC_STS) & BGE_MACSTAT_LINK_CHANGED; /* Make sure the descriptor ring indexes are coherent. */ bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx; tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx; sc->bge_ldata.bge_status_block->bge_status = 0; bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); if ((sc->bge_asicrev == BGE_ASICREV_BCM5700 && sc->bge_chipid != BGE_CHIPID_BCM5700_B2) || statusword || sc->bge_link_evt) bge_link_upd(sc); if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) { /* Check RX return ring producer/consumer. */ bge_rxeof(sc, rx_prod, 1); } if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) { /* Check TX ring producer/consumer. */ bge_txeof(sc, tx_cons); } if (if_getdrvflags(ifp) & IFF_DRV_RUNNING && !if_sendq_empty(ifp)) bge_start_locked(ifp); BGE_UNLOCK(sc); } static void bge_asf_driver_up(struct bge_softc *sc) { if (sc->bge_asf_mode & ASF_STACKUP) { /* Send ASF heartbeat aprox. every 2s */ if (sc->bge_asf_count) sc->bge_asf_count --; else { sc->bge_asf_count = 2; bge_writemem_ind(sc, BGE_SRAM_FW_CMD_MB, BGE_FW_CMD_DRV_ALIVE); bge_writemem_ind(sc, BGE_SRAM_FW_CMD_LEN_MB, 4); bge_writemem_ind(sc, BGE_SRAM_FW_CMD_DATA_MB, BGE_FW_HB_TIMEOUT_SEC); CSR_WRITE_4(sc, BGE_RX_CPU_EVENT, CSR_READ_4(sc, BGE_RX_CPU_EVENT) | BGE_RX_CPU_DRV_EVENT); } } } static void bge_tick(void *xsc) { struct bge_softc *sc = xsc; struct mii_data *mii = NULL; BGE_LOCK_ASSERT(sc); /* Synchronize with possible callout reset/stop. */ if (callout_pending(&sc->bge_stat_ch) || !callout_active(&sc->bge_stat_ch)) return; if (BGE_IS_5705_PLUS(sc)) bge_stats_update_regs(sc); else bge_stats_update(sc); /* XXX Add APE heartbeat check here? */ if ((sc->bge_flags & BGE_FLAG_TBI) == 0) { mii = device_get_softc(sc->bge_miibus); /* * Do not touch PHY if we have link up. This could break * IPMI/ASF mode or produce extra input errors * (extra errors was reported for bcm5701 & bcm5704). */ if (!sc->bge_link) mii_tick(mii); } else { /* * Since in TBI mode auto-polling can't be used we should poll * link status manually. Here we register pending link event * and trigger interrupt. */ #ifdef DEVICE_POLLING /* In polling mode we poll link state in bge_poll(). */ if (!(if_getcapenable(sc->bge_ifp) & IFCAP_POLLING)) #endif { sc->bge_link_evt++; if (sc->bge_asicrev == BGE_ASICREV_BCM5700 || sc->bge_flags & BGE_FLAG_5788) BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_INTR_SET); else BGE_SETBIT(sc, BGE_HCC_MODE, BGE_HCCMODE_COAL_NOW); } } bge_asf_driver_up(sc); bge_watchdog(sc); callout_reset(&sc->bge_stat_ch, hz, bge_tick, sc); } static void bge_stats_update_regs(struct bge_softc *sc) { if_t ifp; struct bge_mac_stats *stats; uint32_t val; ifp = sc->bge_ifp; stats = &sc->bge_mac_stats; stats->ifHCOutOctets += CSR_READ_4(sc, BGE_TX_MAC_STATS_OCTETS); stats->etherStatsCollisions += CSR_READ_4(sc, BGE_TX_MAC_STATS_COLLS); stats->outXonSent += CSR_READ_4(sc, BGE_TX_MAC_STATS_XON_SENT); stats->outXoffSent += CSR_READ_4(sc, BGE_TX_MAC_STATS_XOFF_SENT); stats->dot3StatsInternalMacTransmitErrors += CSR_READ_4(sc, BGE_TX_MAC_STATS_ERRORS); stats->dot3StatsSingleCollisionFrames += CSR_READ_4(sc, BGE_TX_MAC_STATS_SINGLE_COLL); stats->dot3StatsMultipleCollisionFrames += CSR_READ_4(sc, BGE_TX_MAC_STATS_MULTI_COLL); stats->dot3StatsDeferredTransmissions += CSR_READ_4(sc, BGE_TX_MAC_STATS_DEFERRED); stats->dot3StatsExcessiveCollisions += CSR_READ_4(sc, BGE_TX_MAC_STATS_EXCESS_COLL); stats->dot3StatsLateCollisions += CSR_READ_4(sc, BGE_TX_MAC_STATS_LATE_COLL); stats->ifHCOutUcastPkts += CSR_READ_4(sc, BGE_TX_MAC_STATS_UCAST); stats->ifHCOutMulticastPkts += CSR_READ_4(sc, BGE_TX_MAC_STATS_MCAST); stats->ifHCOutBroadcastPkts += CSR_READ_4(sc, BGE_TX_MAC_STATS_BCAST); stats->ifHCInOctets += CSR_READ_4(sc, BGE_RX_MAC_STATS_OCTESTS); stats->etherStatsFragments += CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAGMENTS); stats->ifHCInUcastPkts += CSR_READ_4(sc, BGE_RX_MAC_STATS_UCAST); stats->ifHCInMulticastPkts += CSR_READ_4(sc, BGE_RX_MAC_STATS_MCAST); stats->ifHCInBroadcastPkts += CSR_READ_4(sc, BGE_RX_MAC_STATS_BCAST); stats->dot3StatsFCSErrors += CSR_READ_4(sc, BGE_RX_MAC_STATS_FCS_ERRORS); stats->dot3StatsAlignmentErrors += CSR_READ_4(sc, BGE_RX_MAC_STATS_ALGIN_ERRORS); stats->xonPauseFramesReceived += CSR_READ_4(sc, BGE_RX_MAC_STATS_XON_RCVD); stats->xoffPauseFramesReceived += CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_RCVD); stats->macControlFramesReceived += CSR_READ_4(sc, BGE_RX_MAC_STATS_CTRL_RCVD); stats->xoffStateEntered += CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_ENTERED); stats->dot3StatsFramesTooLong += CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAME_TOO_LONG); stats->etherStatsJabbers += CSR_READ_4(sc, BGE_RX_MAC_STATS_JABBERS); stats->etherStatsUndersizePkts += CSR_READ_4(sc, BGE_RX_MAC_STATS_UNDERSIZE); stats->FramesDroppedDueToFilters += CSR_READ_4(sc, BGE_RXLP_LOCSTAT_FILTDROP); stats->DmaWriteQueueFull += CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_WRQ_FULL); stats->DmaWriteHighPriQueueFull += CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_HPWRQ_FULL); stats->NoMoreRxBDs += CSR_READ_4(sc, BGE_RXLP_LOCSTAT_OUT_OF_BDS); /* * XXX * Unlike other controllers, BGE_RXLP_LOCSTAT_IFIN_DROPS * counter of BCM5717, BCM5718, BCM5719 A0 and BCM5720 A0 * includes number of unwanted multicast frames. This comes * from silicon bug and known workaround to get rough(not * exact) counter is to enable interrupt on MBUF low water * attention. This can be accomplished by setting * BGE_HCCMODE_ATTN bit of BGE_HCC_MODE, * BGE_BMANMODE_LOMBUF_ATTN bit of BGE_BMAN_MODE and * BGE_MODECTL_FLOWCTL_ATTN_INTR bit of BGE_MODE_CTL. * However that change would generate more interrupts and * there are still possibilities of losing multiple frames * during BGE_MODECTL_FLOWCTL_ATTN_INTR interrupt handling. * Given that the workaround still would not get correct * counter I don't think it's worth to implement it. So * ignore reading the counter on controllers that have the * silicon bug. */ if (sc->bge_asicrev != BGE_ASICREV_BCM5717 && sc->bge_chipid != BGE_CHIPID_BCM5719_A0 && sc->bge_chipid != BGE_CHIPID_BCM5720_A0) stats->InputDiscards += CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_DROPS); stats->InputErrors += CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_ERRORS); stats->RecvThresholdHit += CSR_READ_4(sc, BGE_RXLP_LOCSTAT_RXTHRESH_HIT); if (sc->bge_flags & BGE_FLAG_RDMA_BUG) { /* * If controller transmitted more than BGE_NUM_RDMA_CHANNELS * frames, it's safe to disable workaround for DMA engine's * miscalculation of TXMBUF space. */ if (stats->ifHCOutUcastPkts + stats->ifHCOutMulticastPkts + stats->ifHCOutBroadcastPkts > BGE_NUM_RDMA_CHANNELS) { val = CSR_READ_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL); if (sc->bge_asicrev == BGE_ASICREV_BCM5719) val &= ~BGE_RDMA_TX_LENGTH_WA_5719; else val &= ~BGE_RDMA_TX_LENGTH_WA_5720; CSR_WRITE_4(sc, BGE_RDMA_LSO_CRPTEN_CTRL, val); sc->bge_flags &= ~BGE_FLAG_RDMA_BUG; } } } static void bge_stats_clear_regs(struct bge_softc *sc) { CSR_READ_4(sc, BGE_TX_MAC_STATS_OCTETS); CSR_READ_4(sc, BGE_TX_MAC_STATS_COLLS); CSR_READ_4(sc, BGE_TX_MAC_STATS_XON_SENT); CSR_READ_4(sc, BGE_TX_MAC_STATS_XOFF_SENT); CSR_READ_4(sc, BGE_TX_MAC_STATS_ERRORS); CSR_READ_4(sc, BGE_TX_MAC_STATS_SINGLE_COLL); CSR_READ_4(sc, BGE_TX_MAC_STATS_MULTI_COLL); CSR_READ_4(sc, BGE_TX_MAC_STATS_DEFERRED); CSR_READ_4(sc, BGE_TX_MAC_STATS_EXCESS_COLL); CSR_READ_4(sc, BGE_TX_MAC_STATS_LATE_COLL); CSR_READ_4(sc, BGE_TX_MAC_STATS_UCAST); CSR_READ_4(sc, BGE_TX_MAC_STATS_MCAST); CSR_READ_4(sc, BGE_TX_MAC_STATS_BCAST); CSR_READ_4(sc, BGE_RX_MAC_STATS_OCTESTS); CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAGMENTS); CSR_READ_4(sc, BGE_RX_MAC_STATS_UCAST); CSR_READ_4(sc, BGE_RX_MAC_STATS_MCAST); CSR_READ_4(sc, BGE_RX_MAC_STATS_BCAST); CSR_READ_4(sc, BGE_RX_MAC_STATS_FCS_ERRORS); CSR_READ_4(sc, BGE_RX_MAC_STATS_ALGIN_ERRORS); CSR_READ_4(sc, BGE_RX_MAC_STATS_XON_RCVD); CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_RCVD); CSR_READ_4(sc, BGE_RX_MAC_STATS_CTRL_RCVD); CSR_READ_4(sc, BGE_RX_MAC_STATS_XOFF_ENTERED); CSR_READ_4(sc, BGE_RX_MAC_STATS_FRAME_TOO_LONG); CSR_READ_4(sc, BGE_RX_MAC_STATS_JABBERS); CSR_READ_4(sc, BGE_RX_MAC_STATS_UNDERSIZE); CSR_READ_4(sc, BGE_RXLP_LOCSTAT_FILTDROP); CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_WRQ_FULL); CSR_READ_4(sc, BGE_RXLP_LOCSTAT_DMA_HPWRQ_FULL); CSR_READ_4(sc, BGE_RXLP_LOCSTAT_OUT_OF_BDS); CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_DROPS); CSR_READ_4(sc, BGE_RXLP_LOCSTAT_IFIN_ERRORS); CSR_READ_4(sc, BGE_RXLP_LOCSTAT_RXTHRESH_HIT); } static void bge_stats_update(struct bge_softc *sc) { if_t ifp; bus_size_t stats; uint32_t cnt; /* current register value */ ifp = sc->bge_ifp; stats = BGE_MEMWIN_START + BGE_STATS_BLOCK; #define READ_STAT(sc, stats, stat) \ CSR_READ_4(sc, stats + offsetof(struct bge_stats, stat)) cnt = READ_STAT(sc, stats, txstats.etherStatsCollisions.bge_addr_lo); if_inc_counter(ifp, IFCOUNTER_COLLISIONS, cnt - sc->bge_tx_collisions); sc->bge_tx_collisions = cnt; cnt = READ_STAT(sc, stats, nicNoMoreRxBDs.bge_addr_lo); if_inc_counter(ifp, IFCOUNTER_IERRORS, cnt - sc->bge_rx_nobds); sc->bge_rx_nobds = cnt; cnt = READ_STAT(sc, stats, ifInErrors.bge_addr_lo); if_inc_counter(ifp, IFCOUNTER_IERRORS, cnt - sc->bge_rx_inerrs); sc->bge_rx_inerrs = cnt; cnt = READ_STAT(sc, stats, ifInDiscards.bge_addr_lo); if_inc_counter(ifp, IFCOUNTER_IERRORS, cnt - sc->bge_rx_discards); sc->bge_rx_discards = cnt; cnt = READ_STAT(sc, stats, txstats.ifOutDiscards.bge_addr_lo); if_inc_counter(ifp, IFCOUNTER_OERRORS, cnt - sc->bge_tx_discards); sc->bge_tx_discards = cnt; #undef READ_STAT } /* * Pad outbound frame to ETHER_MIN_NOPAD for an unusual reason. * The bge hardware will pad out Tx runts to ETHER_MIN_NOPAD, * but when such padded frames employ the bge IP/TCP checksum offload, * the hardware checksum assist gives incorrect results (possibly * from incorporating its own padding into the UDP/TCP checksum; who knows). * If we pad such runts with zeros, the onboard checksum comes out correct. */ static __inline int bge_cksum_pad(struct mbuf *m) { int padlen = ETHER_MIN_NOPAD - m->m_pkthdr.len; struct mbuf *last; /* If there's only the packet-header and we can pad there, use it. */ if (m->m_pkthdr.len == m->m_len && M_WRITABLE(m) && M_TRAILINGSPACE(m) >= padlen) { last = m; } else { /* * Walk packet chain to find last mbuf. We will either * pad there, or append a new mbuf and pad it. */ for (last = m; last->m_next != NULL; last = last->m_next); if (!(M_WRITABLE(last) && M_TRAILINGSPACE(last) >= padlen)) { /* Allocate new empty mbuf, pad it. Compact later. */ struct mbuf *n; MGET(n, M_NOWAIT, MT_DATA); if (n == NULL) return (ENOBUFS); n->m_len = 0; last->m_next = n; last = n; } } /* Now zero the pad area, to avoid the bge cksum-assist bug. */ memset(mtod(last, caddr_t) + last->m_len, 0, padlen); last->m_len += padlen; m->m_pkthdr.len += padlen; return (0); } static struct mbuf * bge_check_short_dma(struct mbuf *m) { struct mbuf *n; int found; /* * If device receive two back-to-back send BDs with less than * or equal to 8 total bytes then the device may hang. The two * back-to-back send BDs must in the same frame for this failure * to occur. Scan mbuf chains and see whether two back-to-back * send BDs are there. If this is the case, allocate new mbuf * and copy the frame to workaround the silicon bug. */ for (n = m, found = 0; n != NULL; n = n->m_next) { if (n->m_len < 8) { found++; if (found > 1) break; continue; } found = 0; } if (found > 1) { n = m_defrag(m, M_NOWAIT); if (n == NULL) m_freem(m); } else n = m; return (n); } static struct mbuf * bge_setup_tso(struct bge_softc *sc, struct mbuf *m, uint16_t *mss, uint16_t *flags) { struct ip *ip; struct tcphdr *tcp; struct mbuf *n; uint16_t hlen; uint32_t poff; if (M_WRITABLE(m) == 0) { /* Get a writable copy. */ n = m_dup(m, M_NOWAIT); m_freem(m); if (n == NULL) return (NULL); m = n; } m = m_pullup(m, sizeof(struct ether_header) + sizeof(struct ip)); if (m == NULL) return (NULL); ip = (struct ip *)(mtod(m, char *) + sizeof(struct ether_header)); poff = sizeof(struct ether_header) + (ip->ip_hl << 2); m = m_pullup(m, poff + sizeof(struct tcphdr)); if (m == NULL) return (NULL); tcp = (struct tcphdr *)(mtod(m, char *) + poff); m = m_pullup(m, poff + (tcp->th_off << 2)); if (m == NULL) return (NULL); /* * It seems controller doesn't modify IP length and TCP pseudo * checksum. These checksum computed by upper stack should be 0. */ *mss = m->m_pkthdr.tso_segsz; ip = (struct ip *)(mtod(m, char *) + sizeof(struct ether_header)); ip->ip_sum = 0; ip->ip_len = htons(*mss + (ip->ip_hl << 2) + (tcp->th_off << 2)); /* Clear pseudo checksum computed by TCP stack. */ tcp = (struct tcphdr *)(mtod(m, char *) + poff); tcp->th_sum = 0; /* * Broadcom controllers uses different descriptor format for * TSO depending on ASIC revision. Due to TSO-capable firmware * license issue and lower performance of firmware based TSO * we only support hardware based TSO. */ /* Calculate header length, incl. TCP/IP options, in 32 bit units. */ hlen = ((ip->ip_hl << 2) + (tcp->th_off << 2)) >> 2; if (sc->bge_flags & BGE_FLAG_TSO3) { /* * For BCM5717 and newer controllers, hardware based TSO * uses the 14 lower bits of the bge_mss field to store the * MSS and the upper 2 bits to store the lowest 2 bits of * the IP/TCP header length. The upper 6 bits of the header * length are stored in the bge_flags[14:10,4] field. Jumbo * frames are supported. */ *mss |= ((hlen & 0x3) << 14); *flags |= ((hlen & 0xF8) << 7) | ((hlen & 0x4) << 2); } else { /* * For BCM5755 and newer controllers, hardware based TSO uses * the lower 11 bits to store the MSS and the upper 5 bits to * store the IP/TCP header length. Jumbo frames are not * supported. */ *mss |= (hlen << 11); } return (m); } /* * Encapsulate an mbuf chain in the tx ring by coupling the mbuf data * pointers to descriptors. */ static int bge_encap(struct bge_softc *sc, struct mbuf **m_head, uint32_t *txidx) { bus_dma_segment_t segs[BGE_NSEG_NEW]; bus_dmamap_t map; struct bge_tx_bd *d; struct mbuf *m = *m_head; uint32_t idx = *txidx; uint16_t csum_flags, mss, vlan_tag; int nsegs, i, error; csum_flags = 0; mss = 0; vlan_tag = 0; if ((sc->bge_flags & BGE_FLAG_SHORT_DMA_BUG) != 0 && m->m_next != NULL) { *m_head = bge_check_short_dma(m); if (*m_head == NULL) return (ENOBUFS); m = *m_head; } if ((m->m_pkthdr.csum_flags & CSUM_TSO) != 0) { *m_head = m = bge_setup_tso(sc, m, &mss, &csum_flags); if (*m_head == NULL) return (ENOBUFS); csum_flags |= BGE_TXBDFLAG_CPU_PRE_DMA | BGE_TXBDFLAG_CPU_POST_DMA; } else if ((m->m_pkthdr.csum_flags & sc->bge_csum_features) != 0) { if (m->m_pkthdr.csum_flags & CSUM_IP) csum_flags |= BGE_TXBDFLAG_IP_CSUM; if (m->m_pkthdr.csum_flags & (CSUM_TCP | CSUM_UDP)) { csum_flags |= BGE_TXBDFLAG_TCP_UDP_CSUM; if (m->m_pkthdr.len < ETHER_MIN_NOPAD && (error = bge_cksum_pad(m)) != 0) { m_freem(m); *m_head = NULL; return (error); } } } if ((m->m_pkthdr.csum_flags & CSUM_TSO) == 0) { if (sc->bge_flags & BGE_FLAG_JUMBO_FRAME && m->m_pkthdr.len > ETHER_MAX_LEN) csum_flags |= BGE_TXBDFLAG_JUMBO_FRAME; if (sc->bge_forced_collapse > 0 && (sc->bge_flags & BGE_FLAG_PCIE) != 0 && m->m_next != NULL) { /* * Forcedly collapse mbuf chains to overcome hardware * limitation which only support a single outstanding * DMA read operation. */ if (sc->bge_forced_collapse == 1) m = m_defrag(m, M_NOWAIT); else m = m_collapse(m, M_NOWAIT, sc->bge_forced_collapse); if (m == NULL) m = *m_head; *m_head = m; } } map = sc->bge_cdata.bge_tx_dmamap[idx]; error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_tx_mtag, map, m, segs, &nsegs, BUS_DMA_NOWAIT); if (error == EFBIG) { m = m_collapse(m, M_NOWAIT, BGE_NSEG_NEW); if (m == NULL) { m_freem(*m_head); *m_head = NULL; return (ENOBUFS); } *m_head = m; error = bus_dmamap_load_mbuf_sg(sc->bge_cdata.bge_tx_mtag, map, m, segs, &nsegs, BUS_DMA_NOWAIT); if (error) { m_freem(m); *m_head = NULL; return (error); } } else if (error != 0) return (error); /* Check if we have enough free send BDs. */ if (sc->bge_txcnt + nsegs >= BGE_TX_RING_CNT) { bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag, map); return (ENOBUFS); } bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag, map, BUS_DMASYNC_PREWRITE); if (m->m_flags & M_VLANTAG) { csum_flags |= BGE_TXBDFLAG_VLAN_TAG; vlan_tag = m->m_pkthdr.ether_vtag; } if (sc->bge_asicrev == BGE_ASICREV_BCM5762 && (m->m_pkthdr.csum_flags & CSUM_TSO) != 0) { /* * 5725 family of devices corrupts TSO packets when TSO DMA * buffers cross into regions which are within MSS bytes of * a 4GB boundary. If we encounter the condition, drop the * packet. */ for (i = 0; ; i++) { d = &sc->bge_ldata.bge_tx_ring[idx]; d->bge_addr.bge_addr_lo = BGE_ADDR_LO(segs[i].ds_addr); d->bge_addr.bge_addr_hi = BGE_ADDR_HI(segs[i].ds_addr); d->bge_len = segs[i].ds_len; if (d->bge_addr.bge_addr_lo + segs[i].ds_len + mss < d->bge_addr.bge_addr_lo) break; d->bge_flags = csum_flags; d->bge_vlan_tag = vlan_tag; d->bge_mss = mss; if (i == nsegs - 1) break; BGE_INC(idx, BGE_TX_RING_CNT); } if (i != nsegs - 1) { bus_dmamap_sync(sc->bge_cdata.bge_tx_mtag, map, BUS_DMASYNC_POSTWRITE); bus_dmamap_unload(sc->bge_cdata.bge_tx_mtag, map); m_freem(*m_head); *m_head = NULL; return (EIO); } } else { for (i = 0; ; i++) { d = &sc->bge_ldata.bge_tx_ring[idx]; d->bge_addr.bge_addr_lo = BGE_ADDR_LO(segs[i].ds_addr); d->bge_addr.bge_addr_hi = BGE_ADDR_HI(segs[i].ds_addr); d->bge_len = segs[i].ds_len; d->bge_flags = csum_flags; d->bge_vlan_tag = vlan_tag; d->bge_mss = mss; if (i == nsegs - 1) break; BGE_INC(idx, BGE_TX_RING_CNT); } } /* Mark the last segment as end of packet... */ d->bge_flags |= BGE_TXBDFLAG_END; /* * Insure that the map for this transmission * is placed at the array index of the last descriptor * in this chain. */ sc->bge_cdata.bge_tx_dmamap[*txidx] = sc->bge_cdata.bge_tx_dmamap[idx]; sc->bge_cdata.bge_tx_dmamap[idx] = map; sc->bge_cdata.bge_tx_chain[idx] = m; sc->bge_txcnt += nsegs; BGE_INC(idx, BGE_TX_RING_CNT); *txidx = idx; return (0); } /* * Main transmit routine. To avoid having to do mbuf copies, we put pointers * to the mbuf data regions directly in the transmit descriptors. */ static void bge_start_locked(if_t ifp) { struct bge_softc *sc; struct mbuf *m_head; uint32_t prodidx; int count; sc = if_getsoftc(ifp); BGE_LOCK_ASSERT(sc); if (!sc->bge_link || (if_getdrvflags(ifp) & (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)) != IFF_DRV_RUNNING) return; prodidx = sc->bge_tx_prodidx; for (count = 0; !if_sendq_empty(ifp);) { if (sc->bge_txcnt > BGE_TX_RING_CNT - 16) { if_setdrvflagbits(ifp, IFF_DRV_OACTIVE, 0); break; } m_head = if_dequeue(ifp); if (m_head == NULL) break; /* * Pack the data into the transmit ring. If we * don't have room, set the OACTIVE flag and wait * for the NIC to drain the ring. */ if (bge_encap(sc, &m_head, &prodidx)) { if (m_head == NULL) break; if_sendq_prepend(ifp, m_head); if_setdrvflagbits(ifp, IFF_DRV_OACTIVE, 0); break; } ++count; /* * If there's a BPF listener, bounce a copy of this frame * to him. */ if_bpfmtap(ifp, m_head); } if (count > 0) bge_start_tx(sc, prodidx); } static void bge_start_tx(struct bge_softc *sc, uint32_t prodidx) { bus_dmamap_sync(sc->bge_cdata.bge_tx_ring_tag, sc->bge_cdata.bge_tx_ring_map, BUS_DMASYNC_PREWRITE); /* Transmit. */ bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, prodidx); /* 5700 b2 errata */ if (sc->bge_chiprev == BGE_CHIPREV_5700_BX) bge_writembx(sc, BGE_MBX_TX_HOST_PROD0_LO, prodidx); sc->bge_tx_prodidx = prodidx; /* Set a timeout in case the chip goes out to lunch. */ sc->bge_timer = BGE_TX_TIMEOUT; } /* * Main transmit routine. To avoid having to do mbuf copies, we put pointers * to the mbuf data regions directly in the transmit descriptors. */ static void bge_start(if_t ifp) { struct bge_softc *sc; sc = if_getsoftc(ifp); BGE_LOCK(sc); bge_start_locked(ifp); BGE_UNLOCK(sc); } static void bge_init_locked(struct bge_softc *sc) { if_t ifp; uint16_t *m; uint32_t mode; BGE_LOCK_ASSERT(sc); ifp = sc->bge_ifp; if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) return; /* Cancel pending I/O and flush buffers. */ bge_stop(sc); bge_stop_fw(sc); bge_sig_pre_reset(sc, BGE_RESET_START); bge_reset(sc); bge_sig_legacy(sc, BGE_RESET_START); bge_sig_post_reset(sc, BGE_RESET_START); bge_chipinit(sc); /* * Init the various state machines, ring * control blocks and firmware. */ if (bge_blockinit(sc)) { device_printf(sc->bge_dev, "initialization failure\n"); return; } ifp = sc->bge_ifp; /* Specify MTU. */ CSR_WRITE_4(sc, BGE_RX_MTU, if_getmtu(ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN + (if_getcapenable(ifp) & IFCAP_VLAN_MTU ? ETHER_VLAN_ENCAP_LEN : 0)); /* Load our MAC address. */ m = (uint16_t *)IF_LLADDR(sc->bge_ifp); CSR_WRITE_4(sc, BGE_MAC_ADDR1_LO, htons(m[0])); CSR_WRITE_4(sc, BGE_MAC_ADDR1_HI, (htons(m[1]) << 16) | htons(m[2])); /* Program promiscuous mode. */ bge_setpromisc(sc); /* Program multicast filter. */ bge_setmulti(sc); /* Program VLAN tag stripping. */ bge_setvlan(sc); /* Override UDP checksum offloading. */ if (sc->bge_forced_udpcsum == 0) sc->bge_csum_features &= ~CSUM_UDP; else sc->bge_csum_features |= CSUM_UDP; if (if_getcapabilities(ifp) & IFCAP_TXCSUM && if_getcapenable(ifp) & IFCAP_TXCSUM) { if_sethwassistbits(ifp, 0, (BGE_CSUM_FEATURES | CSUM_UDP)); if_sethwassistbits(ifp, sc->bge_csum_features, 0); } /* Init RX ring. */ if (bge_init_rx_ring_std(sc) != 0) { device_printf(sc->bge_dev, "no memory for std Rx buffers.\n"); bge_stop(sc); return; } /* * Workaround for a bug in 5705 ASIC rev A0. Poll the NIC's * memory to insure that the chip has in fact read the first * entry of the ring. */ if (sc->bge_chipid == BGE_CHIPID_BCM5705_A0) { uint32_t v, i; for (i = 0; i < 10; i++) { DELAY(20); v = bge_readmem_ind(sc, BGE_STD_RX_RINGS + 8); if (v == (MCLBYTES - ETHER_ALIGN)) break; } if (i == 10) device_printf (sc->bge_dev, "5705 A0 chip failed to load RX ring\n"); } /* Init jumbo RX ring. */ if (BGE_IS_JUMBO_CAPABLE(sc) && if_getmtu(ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN + ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN)) { if (bge_init_rx_ring_jumbo(sc) != 0) { device_printf(sc->bge_dev, "no memory for jumbo Rx buffers.\n"); bge_stop(sc); return; } } /* Init our RX return ring index. */ sc->bge_rx_saved_considx = 0; /* Init our RX/TX stat counters. */ sc->bge_rx_discards = sc->bge_tx_discards = sc->bge_tx_collisions = 0; /* Init TX ring. */ bge_init_tx_ring(sc); /* Enable TX MAC state machine lockup fix. */ mode = CSR_READ_4(sc, BGE_TX_MODE); if (BGE_IS_5755_PLUS(sc) || sc->bge_asicrev == BGE_ASICREV_BCM5906) mode |= BGE_TXMODE_MBUF_LOCKUP_FIX; if (sc->bge_asicrev == BGE_ASICREV_BCM5720 || sc->bge_asicrev == BGE_ASICREV_BCM5762) { mode &= ~(BGE_TXMODE_JMB_FRM_LEN | BGE_TXMODE_CNT_DN_MODE); mode |= CSR_READ_4(sc, BGE_TX_MODE) & (BGE_TXMODE_JMB_FRM_LEN | BGE_TXMODE_CNT_DN_MODE); } /* Turn on transmitter. */ CSR_WRITE_4(sc, BGE_TX_MODE, mode | BGE_TXMODE_ENABLE); DELAY(100); /* Turn on receiver. */ mode = CSR_READ_4(sc, BGE_RX_MODE); if (BGE_IS_5755_PLUS(sc)) mode |= BGE_RXMODE_IPV6_ENABLE; if (sc->bge_asicrev == BGE_ASICREV_BCM5762) mode |= BGE_RXMODE_IPV4_FRAG_FIX; CSR_WRITE_4(sc,BGE_RX_MODE, mode | BGE_RXMODE_ENABLE); DELAY(10); /* * Set the number of good frames to receive after RX MBUF * Low Watermark has been reached. After the RX MAC receives * this number of frames, it will drop subsequent incoming * frames until the MBUF High Watermark is reached. */ if (BGE_IS_57765_PLUS(sc)) CSR_WRITE_4(sc, BGE_MAX_RX_FRAME_LOWAT, 1); else CSR_WRITE_4(sc, BGE_MAX_RX_FRAME_LOWAT, 2); /* Clear MAC statistics. */ if (BGE_IS_5705_PLUS(sc)) bge_stats_clear_regs(sc); /* Tell firmware we're alive. */ BGE_SETBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP); #ifdef DEVICE_POLLING /* Disable interrupts if we are polling. */ if (if_getcapenable(ifp) & IFCAP_POLLING) { BGE_SETBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_MASK_PCI_INTR); bge_writembx(sc, BGE_MBX_IRQ0_LO, 1); } else #endif /* Enable host interrupts. */ { BGE_SETBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_CLEAR_INTA); BGE_CLRBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_MASK_PCI_INTR); bge_writembx(sc, BGE_MBX_IRQ0_LO, 0); } if_setdrvflagbits(ifp, IFF_DRV_RUNNING, 0); if_setdrvflagbits(ifp, 0, IFF_DRV_OACTIVE); bge_ifmedia_upd_locked(ifp); callout_reset(&sc->bge_stat_ch, hz, bge_tick, sc); } static void bge_init(void *xsc) { struct bge_softc *sc = xsc; BGE_LOCK(sc); bge_init_locked(sc); BGE_UNLOCK(sc); } /* * Set media options. */ static int bge_ifmedia_upd(if_t ifp) { struct bge_softc *sc = if_getsoftc(ifp); int res; BGE_LOCK(sc); res = bge_ifmedia_upd_locked(ifp); BGE_UNLOCK(sc); return (res); } static int bge_ifmedia_upd_locked(if_t ifp) { struct bge_softc *sc = if_getsoftc(ifp); struct mii_data *mii; struct mii_softc *miisc; struct ifmedia *ifm; BGE_LOCK_ASSERT(sc); ifm = &sc->bge_ifmedia; /* If this is a 1000baseX NIC, enable the TBI port. */ if (sc->bge_flags & BGE_FLAG_TBI) { if (IFM_TYPE(ifm->ifm_media) != IFM_ETHER) return (EINVAL); switch(IFM_SUBTYPE(ifm->ifm_media)) { case IFM_AUTO: /* * The BCM5704 ASIC appears to have a special * mechanism for programming the autoneg * advertisement registers in TBI mode. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5704) { uint32_t sgdig; sgdig = CSR_READ_4(sc, BGE_SGDIG_STS); if (sgdig & BGE_SGDIGSTS_DONE) { CSR_WRITE_4(sc, BGE_TX_TBI_AUTONEG, 0); sgdig = CSR_READ_4(sc, BGE_SGDIG_CFG); sgdig |= BGE_SGDIGCFG_AUTO | BGE_SGDIGCFG_PAUSE_CAP | BGE_SGDIGCFG_ASYM_PAUSE; CSR_WRITE_4(sc, BGE_SGDIG_CFG, sgdig | BGE_SGDIGCFG_SEND); DELAY(5); CSR_WRITE_4(sc, BGE_SGDIG_CFG, sgdig); } } break; case IFM_1000_SX: if ((ifm->ifm_media & IFM_GMASK) == IFM_FDX) { BGE_CLRBIT(sc, BGE_MAC_MODE, BGE_MACMODE_HALF_DUPLEX); } else { BGE_SETBIT(sc, BGE_MAC_MODE, BGE_MACMODE_HALF_DUPLEX); } DELAY(40); break; default: return (EINVAL); } return (0); } sc->bge_link_evt++; mii = device_get_softc(sc->bge_miibus); LIST_FOREACH(miisc, &mii->mii_phys, mii_list) PHY_RESET(miisc); mii_mediachg(mii); /* * Force an interrupt so that we will call bge_link_upd * if needed and clear any pending link state attention. * Without this we are not getting any further interrupts * for link state changes and thus will not UP the link and * not be able to send in bge_start_locked. The only * way to get things working was to receive a packet and * get an RX intr. * bge_tick should help for fiber cards and we might not * need to do this here if BGE_FLAG_TBI is set but as * we poll for fiber anyway it should not harm. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5700 || sc->bge_flags & BGE_FLAG_5788) BGE_SETBIT(sc, BGE_MISC_LOCAL_CTL, BGE_MLC_INTR_SET); else BGE_SETBIT(sc, BGE_HCC_MODE, BGE_HCCMODE_COAL_NOW); return (0); } /* * Report current media status. */ static void bge_ifmedia_sts(if_t ifp, struct ifmediareq *ifmr) { struct bge_softc *sc = if_getsoftc(ifp); struct mii_data *mii; BGE_LOCK(sc); if ((if_getflags(ifp) & IFF_UP) == 0) { BGE_UNLOCK(sc); return; } if (sc->bge_flags & BGE_FLAG_TBI) { ifmr->ifm_status = IFM_AVALID; ifmr->ifm_active = IFM_ETHER; if (CSR_READ_4(sc, BGE_MAC_STS) & BGE_MACSTAT_TBI_PCS_SYNCHED) ifmr->ifm_status |= IFM_ACTIVE; else { ifmr->ifm_active |= IFM_NONE; BGE_UNLOCK(sc); return; } ifmr->ifm_active |= IFM_1000_SX; if (CSR_READ_4(sc, BGE_MAC_MODE) & BGE_MACMODE_HALF_DUPLEX) ifmr->ifm_active |= IFM_HDX; else ifmr->ifm_active |= IFM_FDX; BGE_UNLOCK(sc); return; } mii = device_get_softc(sc->bge_miibus); mii_pollstat(mii); ifmr->ifm_active = mii->mii_media_active; ifmr->ifm_status = mii->mii_media_status; BGE_UNLOCK(sc); } static int bge_ioctl(if_t ifp, u_long command, caddr_t data) { struct bge_softc *sc = if_getsoftc(ifp); struct ifreq *ifr = (struct ifreq *) data; struct mii_data *mii; int flags, mask, error = 0; switch (command) { case SIOCSIFMTU: if (BGE_IS_JUMBO_CAPABLE(sc) || (sc->bge_flags & BGE_FLAG_JUMBO_STD)) { if (ifr->ifr_mtu < ETHERMIN || ifr->ifr_mtu > BGE_JUMBO_MTU) { error = EINVAL; break; } } else if (ifr->ifr_mtu < ETHERMIN || ifr->ifr_mtu > ETHERMTU) { error = EINVAL; break; } BGE_LOCK(sc); if (if_getmtu(ifp) != ifr->ifr_mtu) { if_setmtu(ifp, ifr->ifr_mtu); if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) { if_setdrvflagbits(ifp, 0, IFF_DRV_RUNNING); bge_init_locked(sc); } } BGE_UNLOCK(sc); break; case SIOCSIFFLAGS: BGE_LOCK(sc); if (if_getflags(ifp) & IFF_UP) { /* * If only the state of the PROMISC flag changed, * then just use the 'set promisc mode' command * instead of reinitializing the entire NIC. Doing * a full re-init means reloading the firmware and * waiting for it to start up, which may take a * second or two. Similarly for ALLMULTI. */ if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) { flags = if_getflags(ifp) ^ sc->bge_if_flags; if (flags & IFF_PROMISC) bge_setpromisc(sc); if (flags & IFF_ALLMULTI) bge_setmulti(sc); } else bge_init_locked(sc); } else { if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) { bge_stop(sc); } } sc->bge_if_flags = if_getflags(ifp); BGE_UNLOCK(sc); error = 0; break; case SIOCADDMULTI: case SIOCDELMULTI: if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) { BGE_LOCK(sc); bge_setmulti(sc); BGE_UNLOCK(sc); error = 0; } break; case SIOCSIFMEDIA: case SIOCGIFMEDIA: if (sc->bge_flags & BGE_FLAG_TBI) { error = ifmedia_ioctl(ifp, ifr, &sc->bge_ifmedia, command); } else { mii = device_get_softc(sc->bge_miibus); error = ifmedia_ioctl(ifp, ifr, &mii->mii_media, command); } break; case SIOCSIFCAP: mask = ifr->ifr_reqcap ^ if_getcapenable(ifp); #ifdef DEVICE_POLLING if (mask & IFCAP_POLLING) { if (ifr->ifr_reqcap & IFCAP_POLLING) { error = ether_poll_register(bge_poll, ifp); if (error) return (error); BGE_LOCK(sc); BGE_SETBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_MASK_PCI_INTR); bge_writembx(sc, BGE_MBX_IRQ0_LO, 1); if_setcapenablebit(ifp, IFCAP_POLLING, 0); BGE_UNLOCK(sc); } else { error = ether_poll_deregister(ifp); /* Enable interrupt even in error case */ BGE_LOCK(sc); BGE_CLRBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_MASK_PCI_INTR); bge_writembx(sc, BGE_MBX_IRQ0_LO, 0); if_setcapenablebit(ifp, 0, IFCAP_POLLING); BGE_UNLOCK(sc); } } #endif if ((mask & IFCAP_TXCSUM) != 0 && (if_getcapabilities(ifp) & IFCAP_TXCSUM) != 0) { if_togglecapenable(ifp, IFCAP_TXCSUM); if ((if_getcapenable(ifp) & IFCAP_TXCSUM) != 0) if_sethwassistbits(ifp, sc->bge_csum_features, 0); else if_sethwassistbits(ifp, 0, sc->bge_csum_features); } if ((mask & IFCAP_RXCSUM) != 0 && (if_getcapabilities(ifp) & IFCAP_RXCSUM) != 0) if_togglecapenable(ifp, IFCAP_RXCSUM); if ((mask & IFCAP_TSO4) != 0 && (if_getcapabilities(ifp) & IFCAP_TSO4) != 0) { if_togglecapenable(ifp, IFCAP_TSO4); if ((if_getcapenable(ifp) & IFCAP_TSO4) != 0) if_sethwassistbits(ifp, CSUM_TSO, 0); else if_sethwassistbits(ifp, 0, CSUM_TSO); } if (mask & IFCAP_VLAN_MTU) { if_togglecapenable(ifp, IFCAP_VLAN_MTU); if_setdrvflagbits(ifp, 0, IFF_DRV_RUNNING); bge_init(sc); } if ((mask & IFCAP_VLAN_HWTSO) != 0 && (if_getcapabilities(ifp) & IFCAP_VLAN_HWTSO) != 0) if_togglecapenable(ifp, IFCAP_VLAN_HWTSO); if ((mask & IFCAP_VLAN_HWTAGGING) != 0 && (if_getcapabilities(ifp) & IFCAP_VLAN_HWTAGGING) != 0) { if_togglecapenable(ifp, IFCAP_VLAN_HWTAGGING); if ((if_getcapenable(ifp) & IFCAP_VLAN_HWTAGGING) == 0) if_setcapenablebit(ifp, 0, IFCAP_VLAN_HWTSO); BGE_LOCK(sc); bge_setvlan(sc); BGE_UNLOCK(sc); } #ifdef VLAN_CAPABILITIES if_vlancap(ifp); #endif break; default: error = ether_ioctl(ifp, command, data); break; } return (error); } static void bge_watchdog(struct bge_softc *sc) { if_t ifp; uint32_t status; BGE_LOCK_ASSERT(sc); if (sc->bge_timer == 0 || --sc->bge_timer) return; /* If pause frames are active then don't reset the hardware. */ if ((CSR_READ_4(sc, BGE_RX_MODE) & BGE_RXMODE_FLOWCTL_ENABLE) != 0) { status = CSR_READ_4(sc, BGE_RX_STS); if ((status & BGE_RXSTAT_REMOTE_XOFFED) != 0) { /* * If link partner has us in XOFF state then wait for * the condition to clear. */ CSR_WRITE_4(sc, BGE_RX_STS, status); sc->bge_timer = BGE_TX_TIMEOUT; return; } else if ((status & BGE_RXSTAT_RCVD_XOFF) != 0 && (status & BGE_RXSTAT_RCVD_XON) != 0) { /* * If link partner has us in XOFF state then wait for * the condition to clear. */ CSR_WRITE_4(sc, BGE_RX_STS, status); sc->bge_timer = BGE_TX_TIMEOUT; return; } /* * Any other condition is unexpected and the controller * should be reset. */ } ifp = sc->bge_ifp; if_printf(ifp, "watchdog timeout -- resetting\n"); if_setdrvflagbits(ifp, 0, IFF_DRV_RUNNING); bge_init_locked(sc); if_inc_counter(ifp, IFCOUNTER_OERRORS, 1); } static void bge_stop_block(struct bge_softc *sc, bus_size_t reg, uint32_t bit) { int i; BGE_CLRBIT(sc, reg, bit); for (i = 0; i < BGE_TIMEOUT; i++) { if ((CSR_READ_4(sc, reg) & bit) == 0) return; DELAY(100); } } /* * Stop the adapter and free any mbufs allocated to the * RX and TX lists. */ static void bge_stop(struct bge_softc *sc) { if_t ifp; BGE_LOCK_ASSERT(sc); ifp = sc->bge_ifp; callout_stop(&sc->bge_stat_ch); /* Disable host interrupts. */ BGE_SETBIT(sc, BGE_PCI_MISC_CTL, BGE_PCIMISCCTL_MASK_PCI_INTR); bge_writembx(sc, BGE_MBX_IRQ0_LO, 1); /* * Tell firmware we're shutting down. */ bge_stop_fw(sc); bge_sig_pre_reset(sc, BGE_RESET_SHUTDOWN); /* * Disable all of the receiver blocks. */ bge_stop_block(sc, BGE_RX_MODE, BGE_RXMODE_ENABLE); bge_stop_block(sc, BGE_RBDI_MODE, BGE_RBDIMODE_ENABLE); bge_stop_block(sc, BGE_RXLP_MODE, BGE_RXLPMODE_ENABLE); if (BGE_IS_5700_FAMILY(sc)) bge_stop_block(sc, BGE_RXLS_MODE, BGE_RXLSMODE_ENABLE); bge_stop_block(sc, BGE_RDBDI_MODE, BGE_RBDIMODE_ENABLE); bge_stop_block(sc, BGE_RDC_MODE, BGE_RDCMODE_ENABLE); bge_stop_block(sc, BGE_RBDC_MODE, BGE_RBDCMODE_ENABLE); /* * Disable all of the transmit blocks. */ bge_stop_block(sc, BGE_SRS_MODE, BGE_SRSMODE_ENABLE); bge_stop_block(sc, BGE_SBDI_MODE, BGE_SBDIMODE_ENABLE); bge_stop_block(sc, BGE_SDI_MODE, BGE_SDIMODE_ENABLE); bge_stop_block(sc, BGE_RDMA_MODE, BGE_RDMAMODE_ENABLE); bge_stop_block(sc, BGE_SDC_MODE, BGE_SDCMODE_ENABLE); if (BGE_IS_5700_FAMILY(sc)) bge_stop_block(sc, BGE_DMAC_MODE, BGE_DMACMODE_ENABLE); bge_stop_block(sc, BGE_SBDC_MODE, BGE_SBDCMODE_ENABLE); /* * Shut down all of the memory managers and related * state machines. */ bge_stop_block(sc, BGE_HCC_MODE, BGE_HCCMODE_ENABLE); bge_stop_block(sc, BGE_WDMA_MODE, BGE_WDMAMODE_ENABLE); if (BGE_IS_5700_FAMILY(sc)) bge_stop_block(sc, BGE_MBCF_MODE, BGE_MBCFMODE_ENABLE); CSR_WRITE_4(sc, BGE_FTQ_RESET, 0xFFFFFFFF); CSR_WRITE_4(sc, BGE_FTQ_RESET, 0); if (!(BGE_IS_5705_PLUS(sc))) { BGE_CLRBIT(sc, BGE_BMAN_MODE, BGE_BMANMODE_ENABLE); BGE_CLRBIT(sc, BGE_MARB_MODE, BGE_MARBMODE_ENABLE); } /* Update MAC statistics. */ if (BGE_IS_5705_PLUS(sc)) bge_stats_update_regs(sc); bge_reset(sc); bge_sig_legacy(sc, BGE_RESET_SHUTDOWN); bge_sig_post_reset(sc, BGE_RESET_SHUTDOWN); /* * Keep the ASF firmware running if up. */ if (sc->bge_asf_mode & ASF_STACKUP) BGE_SETBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP); else BGE_CLRBIT(sc, BGE_MODE_CTL, BGE_MODECTL_STACKUP); /* Free the RX lists. */ bge_free_rx_ring_std(sc); /* Free jumbo RX list. */ if (BGE_IS_JUMBO_CAPABLE(sc)) bge_free_rx_ring_jumbo(sc); /* Free TX buffers. */ bge_free_tx_ring(sc); sc->bge_tx_saved_considx = BGE_TXCONS_UNSET; /* Clear MAC's link state (PHY may still have link UP). */ if (bootverbose && sc->bge_link) if_printf(sc->bge_ifp, "link DOWN\n"); sc->bge_link = 0; if_setdrvflagbits(ifp, 0, (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)); } /* * Stop all chip I/O so that the kernel's probe routines don't * get confused by errant DMAs when rebooting. */ static int bge_shutdown(device_t dev) { struct bge_softc *sc; sc = device_get_softc(dev); BGE_LOCK(sc); bge_stop(sc); BGE_UNLOCK(sc); return (0); } static int bge_suspend(device_t dev) { struct bge_softc *sc; sc = device_get_softc(dev); BGE_LOCK(sc); bge_stop(sc); BGE_UNLOCK(sc); return (0); } static int bge_resume(device_t dev) { struct bge_softc *sc; if_t ifp; sc = device_get_softc(dev); BGE_LOCK(sc); ifp = sc->bge_ifp; if (if_getflags(ifp) & IFF_UP) { bge_init_locked(sc); if (if_getdrvflags(ifp) & IFF_DRV_RUNNING) bge_start_locked(ifp); } BGE_UNLOCK(sc); return (0); } static void bge_link_upd(struct bge_softc *sc) { struct mii_data *mii; uint32_t link, status; BGE_LOCK_ASSERT(sc); /* Clear 'pending link event' flag. */ sc->bge_link_evt = 0; /* * Process link state changes. * Grrr. The link status word in the status block does * not work correctly on the BCM5700 rev AX and BX chips, * according to all available information. Hence, we have * to enable MII interrupts in order to properly obtain * async link changes. Unfortunately, this also means that * we have to read the MAC status register to detect link * changes, thereby adding an additional register access to * the interrupt handler. * * XXX: perhaps link state detection procedure used for * BGE_CHIPID_BCM5700_B2 can be used for others BCM5700 revisions. */ if (sc->bge_asicrev == BGE_ASICREV_BCM5700 && sc->bge_chipid != BGE_CHIPID_BCM5700_B2) { status = CSR_READ_4(sc, BGE_MAC_STS); if (status & BGE_MACSTAT_MI_INTERRUPT) { mii = device_get_softc(sc->bge_miibus); mii_pollstat(mii); if (!sc->bge_link && mii->mii_media_status & IFM_ACTIVE && IFM_SUBTYPE(mii->mii_media_active) != IFM_NONE) { sc->bge_link++; if (bootverbose) if_printf(sc->bge_ifp, "link UP\n"); } else if (sc->bge_link && (!(mii->mii_media_status & IFM_ACTIVE) || IFM_SUBTYPE(mii->mii_media_active) == IFM_NONE)) { sc->bge_link = 0; if (bootverbose) if_printf(sc->bge_ifp, "link DOWN\n"); } /* Clear the interrupt. */ CSR_WRITE_4(sc, BGE_MAC_EVT_ENB, BGE_EVTENB_MI_INTERRUPT); bge_miibus_readreg(sc->bge_dev, sc->bge_phy_addr, BRGPHY_MII_ISR); bge_miibus_writereg(sc->bge_dev, sc->bge_phy_addr, BRGPHY_MII_IMR, BRGPHY_INTRS); } return; } if (sc->bge_flags & BGE_FLAG_TBI) { status = CSR_READ_4(sc, BGE_MAC_STS); if (status & BGE_MACSTAT_TBI_PCS_SYNCHED) { if (!sc->bge_link) { sc->bge_link++; if (sc->bge_asicrev == BGE_ASICREV_BCM5704) { BGE_CLRBIT(sc, BGE_MAC_MODE, BGE_MACMODE_TBI_SEND_CFGS); DELAY(40); } CSR_WRITE_4(sc, BGE_MAC_STS, 0xFFFFFFFF); if (bootverbose) if_printf(sc->bge_ifp, "link UP\n"); if_link_state_change(sc->bge_ifp, LINK_STATE_UP); } } else if (sc->bge_link) { sc->bge_link = 0; if (bootverbose) if_printf(sc->bge_ifp, "link DOWN\n"); if_link_state_change(sc->bge_ifp, LINK_STATE_DOWN); } } else if ((sc->bge_mi_mode & BGE_MIMODE_AUTOPOLL) != 0) { /* * Some broken BCM chips have BGE_STATFLAG_LINKSTATE_CHANGED bit * in status word always set. Workaround this bug by reading * PHY link status directly. */ link = (CSR_READ_4(sc, BGE_MI_STS) & BGE_MISTS_LINK) ? 1 : 0; if (link != sc->bge_link || sc->bge_asicrev == BGE_ASICREV_BCM5700) { mii = device_get_softc(sc->bge_miibus); mii_pollstat(mii); if (!sc->bge_link && mii->mii_media_status & IFM_ACTIVE && IFM_SUBTYPE(mii->mii_media_active) != IFM_NONE) { sc->bge_link++; if (bootverbose) if_printf(sc->bge_ifp, "link UP\n"); } else if (sc->bge_link && (!(mii->mii_media_status & IFM_ACTIVE) || IFM_SUBTYPE(mii->mii_media_active) == IFM_NONE)) { sc->bge_link = 0; if (bootverbose) if_printf(sc->bge_ifp, "link DOWN\n"); } } } else { /* * For controllers that call mii_tick, we have to poll * link status. */ mii = device_get_softc(sc->bge_miibus); mii_pollstat(mii); bge_miibus_statchg(sc->bge_dev); } /* Disable MAC attention when link is up. */ CSR_WRITE_4(sc, BGE_MAC_STS, BGE_MACSTAT_SYNC_CHANGED | BGE_MACSTAT_CFG_CHANGED | BGE_MACSTAT_MI_COMPLETE | BGE_MACSTAT_LINK_CHANGED); } static void bge_add_sysctls(struct bge_softc *sc) { struct sysctl_ctx_list *ctx; struct sysctl_oid_list *children; int unit; ctx = device_get_sysctl_ctx(sc->bge_dev); children = SYSCTL_CHILDREN(device_get_sysctl_tree(sc->bge_dev)); #ifdef BGE_REGISTER_DEBUG SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "debug_info", CTLTYPE_INT | CTLFLAG_RW, sc, 0, bge_sysctl_debug_info, "I", "Debug Information"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "reg_read", CTLTYPE_INT | CTLFLAG_RW, sc, 0, bge_sysctl_reg_read, "I", "MAC Register Read"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "ape_read", CTLTYPE_INT | CTLFLAG_RW, sc, 0, bge_sysctl_ape_read, "I", "APE Register Read"); SYSCTL_ADD_PROC(ctx, children, OID_AUTO, "mem_read", CTLTYPE_INT | CTLFLAG_RW, sc, 0, bge_sysctl_mem_read, "I", "Memory Read"); #endif unit = device_get_unit(sc->bge_dev); /* * A common design characteristic for many Broadcom client controllers * is that they only support a single outstanding DMA read operation * on the PCIe bus. This means that it will take twice as long to fetch * a TX frame that is split into header and payload buffers as it does * to fetch a single, contiguous TX frame (2 reads vs. 1 read). For * these controllers, coalescing buffers to reduce the number of memory * reads is effective way to get maximum performance(about 940Mbps). * Without collapsing TX buffers the maximum TCP bulk transfer * performance is about 850Mbps. However forcing coalescing mbufs * consumes a lot of CPU cycles, so leave it off by default. */ sc->bge_forced_collapse = 0; SYSCTL_ADD_INT(ctx, children, OID_AUTO, "forced_collapse", CTLFLAG_RWTUN, &sc->bge_forced_collapse, 0, "Number of fragmented TX buffers of a frame allowed before " "forced collapsing"); sc->bge_msi = 1; SYSCTL_ADD_INT(ctx, children, OID_AUTO, "msi", CTLFLAG_RDTUN, &sc->bge_msi, 0, "Enable MSI"); /* * It seems all Broadcom controllers have a bug that can generate UDP * datagrams with checksum value 0 when TX UDP checksum offloading is * enabled. Generating UDP checksum value 0 is RFC 768 violation. * Even though the probability of generating such UDP datagrams is * low, I don't want to see FreeBSD boxes to inject such datagrams * into network so disable UDP checksum offloading by default. Users * still override this behavior by setting a sysctl variable, * dev.bge.0.forced_udpcsum. */ sc->bge_forced_udpcsum = 0; SYSCTL_ADD_INT(ctx, children, OID_AUTO, "forced_udpcsum", CTLFLAG_RWTUN, &sc->bge_forced_udpcsum, 0, "Enable UDP checksum offloading even if controller can " "generate UDP checksum value 0"); if (BGE_IS_5705_PLUS(sc)) bge_add_sysctl_stats_regs(sc, ctx, children); else bge_add_sysctl_stats(sc, ctx, children); } #define BGE_SYSCTL_STAT(sc, ctx, desc, parent, node, oid) \ SYSCTL_ADD_PROC(ctx, parent, OID_AUTO, oid, CTLTYPE_UINT|CTLFLAG_RD, \ sc, offsetof(struct bge_stats, node), bge_sysctl_stats, "IU", \ desc) static void bge_add_sysctl_stats(struct bge_softc *sc, struct sysctl_ctx_list *ctx, struct sysctl_oid_list *parent) { struct sysctl_oid *tree; struct sysctl_oid_list *children, *schildren; tree = SYSCTL_ADD_NODE(ctx, parent, OID_AUTO, "stats", CTLFLAG_RD, NULL, "BGE Statistics"); schildren = children = SYSCTL_CHILDREN(tree); BGE_SYSCTL_STAT(sc, ctx, "Frames Dropped Due To Filters", children, COSFramesDroppedDueToFilters, "FramesDroppedDueToFilters"); BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Write Queue Full", children, nicDmaWriteQueueFull, "DmaWriteQueueFull"); BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Write High Priority Queue Full", children, nicDmaWriteHighPriQueueFull, "DmaWriteHighPriQueueFull"); BGE_SYSCTL_STAT(sc, ctx, "NIC No More RX Buffer Descriptors", children, nicNoMoreRxBDs, "NoMoreRxBDs"); BGE_SYSCTL_STAT(sc, ctx, "Discarded Input Frames", children, ifInDiscards, "InputDiscards"); BGE_SYSCTL_STAT(sc, ctx, "Input Errors", children, ifInErrors, "InputErrors"); BGE_SYSCTL_STAT(sc, ctx, "NIC Recv Threshold Hit", children, nicRecvThresholdHit, "RecvThresholdHit"); BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Read Queue Full", children, nicDmaReadQueueFull, "DmaReadQueueFull"); BGE_SYSCTL_STAT(sc, ctx, "NIC DMA Read High Priority Queue Full", children, nicDmaReadHighPriQueueFull, "DmaReadHighPriQueueFull"); BGE_SYSCTL_STAT(sc, ctx, "NIC Send Data Complete Queue Full", children, nicSendDataCompQueueFull, "SendDataCompQueueFull"); BGE_SYSCTL_STAT(sc, ctx, "NIC Ring Set Send Producer Index", children, nicRingSetSendProdIndex, "RingSetSendProdIndex"); BGE_SYSCTL_STAT(sc, ctx, "NIC Ring Status Update", children, nicRingStatusUpdate, "RingStatusUpdate"); BGE_SYSCTL_STAT(sc, ctx, "NIC Interrupts", children, nicInterrupts, "Interrupts"); BGE_SYSCTL_STAT(sc, ctx, "NIC Avoided Interrupts", children, nicAvoidedInterrupts, "AvoidedInterrupts"); BGE_SYSCTL_STAT(sc, ctx, "NIC Send Threshold Hit", children, nicSendThresholdHit, "SendThresholdHit"); tree = SYSCTL_ADD_NODE(ctx, schildren, OID_AUTO, "rx", CTLFLAG_RD, NULL, "BGE RX Statistics"); children = SYSCTL_CHILDREN(tree); BGE_SYSCTL_STAT(sc, ctx, "Inbound Octets", children, rxstats.ifHCInOctets, "ifHCInOctets"); BGE_SYSCTL_STAT(sc, ctx, "Fragments", children, rxstats.etherStatsFragments, "Fragments"); BGE_SYSCTL_STAT(sc, ctx, "Inbound Unicast Packets", children, rxstats.ifHCInUcastPkts, "UnicastPkts"); BGE_SYSCTL_STAT(sc, ctx, "Inbound Multicast Packets", children, rxstats.ifHCInMulticastPkts, "MulticastPkts"); BGE_SYSCTL_STAT(sc, ctx, "FCS Errors", children, rxstats.dot3StatsFCSErrors, "FCSErrors"); BGE_SYSCTL_STAT(sc, ctx, "Alignment Errors", children, rxstats.dot3StatsAlignmentErrors, "AlignmentErrors"); BGE_SYSCTL_STAT(sc, ctx, "XON Pause Frames Received", children, rxstats.xonPauseFramesReceived, "xonPauseFramesReceived"); BGE_SYSCTL_STAT(sc, ctx, "XOFF Pause Frames Received", children, rxstats.xoffPauseFramesReceived, "xoffPauseFramesReceived"); BGE_SYSCTL_STAT(sc, ctx, "MAC Control Frames Received", children, rxstats.macControlFramesReceived, "ControlFramesReceived"); BGE_SYSCTL_STAT(sc, ctx, "XOFF State Entered", children, rxstats.xoffStateEntered, "xoffStateEntered"); BGE_SYSCTL_STAT(sc, ctx, "Frames Too Long", children, rxstats.dot3StatsFramesTooLong, "FramesTooLong"); BGE_SYSCTL_STAT(sc, ctx, "Jabbers", children, rxstats.etherStatsJabbers, "Jabbers"); BGE_SYSCTL_STAT(sc, ctx, "Undersized Packets", children, rxstats.etherStatsUndersizePkts, "UndersizePkts"); BGE_SYSCTL_STAT(sc, ctx, "Inbound Range Length Errors", children, rxstats.inRangeLengthError, "inRangeLengthError"); BGE_SYSCTL_STAT(sc, ctx, "Outbound Range Length Errors", children, rxstats.outRangeLengthError, "outRangeLengthError"); tree = SYSCTL_ADD_NODE(ctx, schildren, OID_AUTO, "tx", CTLFLAG_RD, NULL, "BGE TX Statistics"); children = SYSCTL_CHILDREN(tree); BGE_SYSCTL_STAT(sc, ctx, "Outbound Octets", children, txstats.ifHCOutOctets, "ifHCOutOctets"); BGE_SYSCTL_STAT(sc, ctx, "TX Collisions", children, txstats.etherStatsCollisions, "Collisions"); BGE_SYSCTL_STAT(sc, ctx, "XON Sent", children, txstats.outXonSent, "XonSent"); BGE_SYSCTL_STAT(sc, ctx, "XOFF Sent", children, txstats.outXoffSent, "XoffSent"); BGE_SYSCTL_STAT(sc, ctx, "Flow Control Done", children, txstats.flowControlDone, "flowControlDone"); BGE_SYSCTL_STAT(sc, ctx, "Internal MAC TX errors", children, txstats.dot3StatsInternalMacTransmitErrors, "InternalMacTransmitErrors"); BGE_SYSCTL_STAT(sc, ctx, "Single Collision Frames", children, txstats.dot3StatsSingleCollisionFrames, "SingleCollisionFrames"); BGE_SYSCTL_STAT(sc, ctx, "Multiple Collision Frames", children, txstats.dot3StatsMultipleCollisionFrames, "MultipleCollisionFrames"); BGE_SYSCTL_STAT(sc, ctx, "Deferred Transmissions", children, txstats.dot3StatsDeferredTransmissions, "DeferredTransmissions"); BGE_SYSCTL_STAT(sc, ctx, "Excessive Collisions", children, txstats.dot3StatsExcessiveCollisions, "ExcessiveCollisions"); BGE_SYSCTL_STAT(sc, ctx, "Late Collisions", children, txstats.dot3StatsLateCollisions, "LateCollisions"); BGE_SYSCTL_STAT(sc, ctx, "Outbound Unicast Packets", children, txstats.ifHCOutUcastPkts, "UnicastPkts"); BGE_SYSCTL_STAT(sc, ctx, "Outbound Multicast Packets", children, txstats.ifHCOutMulticastPkts, "MulticastPkts"); BGE_SYSCTL_STAT(sc, ctx, "Outbound Broadcast Packets", children, txstats.ifHCOutBroadcastPkts, "BroadcastPkts"); BGE_SYSCTL_STAT(sc, ctx, "Carrier Sense Errors", children, txstats.dot3StatsCarrierSenseErrors, "CarrierSenseErrors"); BGE_SYSCTL_STAT(sc, ctx, "Outbound Discards", children, txstats.ifOutDiscards, "Discards"); BGE_SYSCTL_STAT(sc, ctx, "Outbound Errors", children, txstats.ifOutErrors, "Errors"); } #undef BGE_SYSCTL_STAT #define BGE_SYSCTL_STAT_ADD64(c, h, n, p, d) \ SYSCTL_ADD_UQUAD(c, h, OID_AUTO, n, CTLFLAG_RD, p, d) static void bge_add_sysctl_stats_regs(struct bge_softc *sc, struct sysctl_ctx_list *ctx, struct sysctl_oid_list *parent) { struct sysctl_oid *tree; struct sysctl_oid_list *child, *schild; struct bge_mac_stats *stats; stats = &sc->bge_mac_stats; tree = SYSCTL_ADD_NODE(ctx, parent, OID_AUTO, "stats", CTLFLAG_RD, NULL, "BGE Statistics"); schild = child = SYSCTL_CHILDREN(tree); BGE_SYSCTL_STAT_ADD64(ctx, child, "FramesDroppedDueToFilters", &stats->FramesDroppedDueToFilters, "Frames Dropped Due to Filters"); BGE_SYSCTL_STAT_ADD64(ctx, child, "DmaWriteQueueFull", &stats->DmaWriteQueueFull, "NIC DMA Write Queue Full"); BGE_SYSCTL_STAT_ADD64(ctx, child, "DmaWriteHighPriQueueFull", &stats->DmaWriteHighPriQueueFull, "NIC DMA Write High Priority Queue Full"); BGE_SYSCTL_STAT_ADD64(ctx, child, "NoMoreRxBDs", &stats->NoMoreRxBDs, "NIC No More RX Buffer Descriptors"); BGE_SYSCTL_STAT_ADD64(ctx, child, "InputDiscards", &stats->InputDiscards, "Discarded Input Frames"); BGE_SYSCTL_STAT_ADD64(ctx, child, "InputErrors", &stats->InputErrors, "Input Errors"); BGE_SYSCTL_STAT_ADD64(ctx, child, "RecvThresholdHit", &stats->RecvThresholdHit, "NIC Recv Threshold Hit"); tree = SYSCTL_ADD_NODE(ctx, schild, OID_AUTO, "rx", CTLFLAG_RD, NULL, "BGE RX Statistics"); child = SYSCTL_CHILDREN(tree); BGE_SYSCTL_STAT_ADD64(ctx, child, "ifHCInOctets", &stats->ifHCInOctets, "Inbound Octets"); BGE_SYSCTL_STAT_ADD64(ctx, child, "Fragments", &stats->etherStatsFragments, "Fragments"); BGE_SYSCTL_STAT_ADD64(ctx, child, "UnicastPkts", &stats->ifHCInUcastPkts, "Inbound Unicast Packets"); BGE_SYSCTL_STAT_ADD64(ctx, child, "MulticastPkts", &stats->ifHCInMulticastPkts, "Inbound Multicast Packets"); BGE_SYSCTL_STAT_ADD64(ctx, child, "BroadcastPkts", &stats->ifHCInBroadcastPkts, "Inbound Broadcast Packets"); BGE_SYSCTL_STAT_ADD64(ctx, child, "FCSErrors", &stats->dot3StatsFCSErrors, "FCS Errors"); BGE_SYSCTL_STAT_ADD64(ctx, child, "AlignmentErrors", &stats->dot3StatsAlignmentErrors, "Alignment Errors"); BGE_SYSCTL_STAT_ADD64(ctx, child, "xonPauseFramesReceived", &stats->xonPauseFramesReceived, "XON Pause Frames Received"); BGE_SYSCTL_STAT_ADD64(ctx, child, "xoffPauseFramesReceived", &stats->xoffPauseFramesReceived, "XOFF Pause Frames Received"); BGE_SYSCTL_STAT_ADD64(ctx, child, "ControlFramesReceived", &stats->macControlFramesReceived, "MAC Control Frames Received"); BGE_SYSCTL_STAT_ADD64(ctx, child, "xoffStateEntered", &stats->xoffStateEntered, "XOFF State Entered"); BGE_SYSCTL_STAT_ADD64(ctx, child, "FramesTooLong", &stats->dot3StatsFramesTooLong, "Frames Too Long"); BGE_SYSCTL_STAT_ADD64(ctx, child, "Jabbers", &stats->etherStatsJabbers, "Jabbers"); BGE_SYSCTL_STAT_ADD64(ctx, child, "UndersizePkts", &stats->etherStatsUndersizePkts, "Undersized Packets"); tree = SYSCTL_ADD_NODE(ctx, schild, OID_AUTO, "tx", CTLFLAG_RD, NULL, "BGE TX Statistics"); child = SYSCTL_CHILDREN(tree); BGE_SYSCTL_STAT_ADD64(ctx, child, "ifHCOutOctets", &stats->ifHCOutOctets, "Outbound Octets"); BGE_SYSCTL_STAT_ADD64(ctx, child, "Collisions", &stats->etherStatsCollisions, "TX Collisions"); BGE_SYSCTL_STAT_ADD64(ctx, child, "XonSent", &stats->outXonSent, "XON Sent"); BGE_SYSCTL_STAT_ADD64(ctx, child, "XoffSent", &stats->outXoffSent, "XOFF Sent"); BGE_SYSCTL_STAT_ADD64(ctx, child, "InternalMacTransmitErrors", &stats->dot3StatsInternalMacTransmitErrors, "Internal MAC TX Errors"); BGE_SYSCTL_STAT_ADD64(ctx, child, "SingleCollisionFrames", &stats->dot3StatsSingleCollisionFrames, "Single Collision Frames"); BGE_SYSCTL_STAT_ADD64(ctx, child, "MultipleCollisionFrames", &stats->dot3StatsMultipleCollisionFrames, "Multiple Collision Frames"); BGE_SYSCTL_STAT_ADD64(ctx, child, "DeferredTransmissions", &stats->dot3StatsDeferredTransmissions, "Deferred Transmissions"); BGE_SYSCTL_STAT_ADD64(ctx, child, "ExcessiveCollisions", &stats->dot3StatsExcessiveCollisions, "Excessive Collisions"); BGE_SYSCTL_STAT_ADD64(ctx, child, "LateCollisions", &stats->dot3StatsLateCollisions, "Late Collisions"); BGE_SYSCTL_STAT_ADD64(ctx, child, "UnicastPkts", &stats->ifHCOutUcastPkts, "Outbound Unicast Packets"); BGE_SYSCTL_STAT_ADD64(ctx, child, "MulticastPkts", &stats->ifHCOutMulticastPkts, "Outbound Multicast Packets"); BGE_SYSCTL_STAT_ADD64(ctx, child, "BroadcastPkts", &stats->ifHCOutBroadcastPkts, "Outbound Broadcast Packets"); } #undef BGE_SYSCTL_STAT_ADD64 static int bge_sysctl_stats(SYSCTL_HANDLER_ARGS) { struct bge_softc *sc; uint32_t result; int offset; sc = (struct bge_softc *)arg1; offset = arg2; result = CSR_READ_4(sc, BGE_MEMWIN_START + BGE_STATS_BLOCK + offset + offsetof(bge_hostaddr, bge_addr_lo)); return (sysctl_handle_int(oidp, &result, 0, req)); } #ifdef BGE_REGISTER_DEBUG static int bge_sysctl_debug_info(SYSCTL_HANDLER_ARGS) { struct bge_softc *sc; uint16_t *sbdata; int error, result, sbsz; int i, j; result = -1; error = sysctl_handle_int(oidp, &result, 0, req); if (error || (req->newptr == NULL)) return (error); if (result == 1) { sc = (struct bge_softc *)arg1; if (sc->bge_asicrev == BGE_ASICREV_BCM5700 && sc->bge_chipid != BGE_CHIPID_BCM5700_C0) sbsz = BGE_STATUS_BLK_SZ; else sbsz = 32; sbdata = (uint16_t *)sc->bge_ldata.bge_status_block; printf("Status Block:\n"); BGE_LOCK(sc); bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); for (i = 0x0; i < sbsz / sizeof(uint16_t); ) { printf("%06x:", i); for (j = 0; j < 8; j++) printf(" %04x", sbdata[i++]); printf("\n"); } printf("Registers:\n"); for (i = 0x800; i < 0xA00; ) { printf("%06x:", i); for (j = 0; j < 8; j++) { printf(" %08x", CSR_READ_4(sc, i)); i += 4; } printf("\n"); } BGE_UNLOCK(sc); printf("Hardware Flags:\n"); if (BGE_IS_5717_PLUS(sc)) printf(" - 5717 Plus\n"); if (BGE_IS_5755_PLUS(sc)) printf(" - 5755 Plus\n"); if (BGE_IS_575X_PLUS(sc)) printf(" - 575X Plus\n"); if (BGE_IS_5705_PLUS(sc)) printf(" - 5705 Plus\n"); if (BGE_IS_5714_FAMILY(sc)) printf(" - 5714 Family\n"); if (BGE_IS_5700_FAMILY(sc)) printf(" - 5700 Family\n"); if (sc->bge_flags & BGE_FLAG_JUMBO) printf(" - Supports Jumbo Frames\n"); if (sc->bge_flags & BGE_FLAG_PCIX) printf(" - PCI-X Bus\n"); if (sc->bge_flags & BGE_FLAG_PCIE) printf(" - PCI Express Bus\n"); if (sc->bge_phy_flags & BGE_PHY_NO_3LED) printf(" - No 3 LEDs\n"); if (sc->bge_flags & BGE_FLAG_RX_ALIGNBUG) printf(" - RX Alignment Bug\n"); } return (error); } static int bge_sysctl_reg_read(SYSCTL_HANDLER_ARGS) { struct bge_softc *sc; int error; uint16_t result; uint32_t val; result = -1; error = sysctl_handle_int(oidp, &result, 0, req); if (error || (req->newptr == NULL)) return (error); if (result < 0x8000) { sc = (struct bge_softc *)arg1; val = CSR_READ_4(sc, result); printf("reg 0x%06X = 0x%08X\n", result, val); } return (error); } static int bge_sysctl_ape_read(SYSCTL_HANDLER_ARGS) { struct bge_softc *sc; int error; uint16_t result; uint32_t val; result = -1; error = sysctl_handle_int(oidp, &result, 0, req); if (error || (req->newptr == NULL)) return (error); if (result < 0x8000) { sc = (struct bge_softc *)arg1; val = APE_READ_4(sc, result); printf("reg 0x%06X = 0x%08X\n", result, val); } return (error); } static int bge_sysctl_mem_read(SYSCTL_HANDLER_ARGS) { struct bge_softc *sc; int error; uint16_t result; uint32_t val; result = -1; error = sysctl_handle_int(oidp, &result, 0, req); if (error || (req->newptr == NULL)) return (error); if (result < 0x8000) { sc = (struct bge_softc *)arg1; val = bge_readmem_ind(sc, result); printf("mem 0x%06X = 0x%08X\n", result, val); } return (error); } #endif static int bge_get_eaddr_fw(struct bge_softc *sc, uint8_t ether_addr[]) { #ifdef __sparc64__ if (sc->bge_flags & BGE_FLAG_EADDR) return (1); OF_getetheraddr(sc->bge_dev, ether_addr); return (0); #else return (1); #endif } static int bge_get_eaddr_mem(struct bge_softc *sc, uint8_t ether_addr[]) { uint32_t mac_addr; mac_addr = bge_readmem_ind(sc, BGE_SRAM_MAC_ADDR_HIGH_MB); if ((mac_addr >> 16) == 0x484b) { ether_addr[0] = (uint8_t)(mac_addr >> 8); ether_addr[1] = (uint8_t)mac_addr; mac_addr = bge_readmem_ind(sc, BGE_SRAM_MAC_ADDR_LOW_MB); ether_addr[2] = (uint8_t)(mac_addr >> 24); ether_addr[3] = (uint8_t)(mac_addr >> 16); ether_addr[4] = (uint8_t)(mac_addr >> 8); ether_addr[5] = (uint8_t)mac_addr; return (0); } return (1); } static int bge_get_eaddr_nvram(struct bge_softc *sc, uint8_t ether_addr[]) { int mac_offset = BGE_EE_MAC_OFFSET; if (sc->bge_asicrev == BGE_ASICREV_BCM5906) mac_offset = BGE_EE_MAC_OFFSET_5906; return (bge_read_nvram(sc, ether_addr, mac_offset + 2, ETHER_ADDR_LEN)); } static int bge_get_eaddr_eeprom(struct bge_softc *sc, uint8_t ether_addr[]) { if (sc->bge_asicrev == BGE_ASICREV_BCM5906) return (1); return (bge_read_eeprom(sc, ether_addr, BGE_EE_MAC_OFFSET + 2, ETHER_ADDR_LEN)); } static int bge_get_eaddr(struct bge_softc *sc, uint8_t eaddr[]) { static const bge_eaddr_fcn_t bge_eaddr_funcs[] = { /* NOTE: Order is critical */ bge_get_eaddr_fw, bge_get_eaddr_mem, bge_get_eaddr_nvram, bge_get_eaddr_eeprom, NULL }; const bge_eaddr_fcn_t *func; for (func = bge_eaddr_funcs; *func != NULL; ++func) { if ((*func)(sc, eaddr) == 0) break; } return (*func == NULL ? ENXIO : 0); } static uint64_t bge_get_counter(if_t ifp, ift_counter cnt) { struct bge_softc *sc; struct bge_mac_stats *stats; sc = if_getsoftc(ifp); if (!BGE_IS_5705_PLUS(sc)) return (if_get_counter_default(ifp, cnt)); stats = &sc->bge_mac_stats; switch (cnt) { case IFCOUNTER_IERRORS: return (stats->NoMoreRxBDs + stats->InputDiscards + stats->InputErrors); case IFCOUNTER_COLLISIONS: return (stats->etherStatsCollisions); default: return (if_get_counter_default(ifp, cnt)); } } #ifdef NETDUMP static void bge_netdump_init(if_t ifp, int *nrxr, int *ncl, int *clsize) { struct bge_softc *sc; sc = if_getsoftc(ifp); BGE_LOCK(sc); *nrxr = sc->bge_return_ring_cnt; *ncl = NETDUMP_MAX_IN_FLIGHT; if ((sc->bge_flags & BGE_FLAG_JUMBO_STD) != 0 && (if_getmtu(sc->bge_ifp) + ETHER_HDR_LEN + ETHER_CRC_LEN + ETHER_VLAN_ENCAP_LEN > (MCLBYTES - ETHER_ALIGN))) *clsize = MJUM9BYTES; else *clsize = MCLBYTES; BGE_UNLOCK(sc); } static void bge_netdump_event(if_t ifp __unused, enum netdump_ev event __unused) { } static int bge_netdump_transmit(if_t ifp, struct mbuf *m) { struct bge_softc *sc; uint32_t prodidx; int error; sc = if_getsoftc(ifp); if ((if_getdrvflags(ifp) & (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)) != IFF_DRV_RUNNING) return (1); prodidx = sc->bge_tx_prodidx; error = bge_encap(sc, &m, &prodidx); if (error == 0) bge_start_tx(sc, prodidx); return (error); } static int bge_netdump_poll(if_t ifp, int count) { struct bge_softc *sc; uint32_t rx_prod, tx_cons; sc = if_getsoftc(ifp); if ((if_getdrvflags(ifp) & (IFF_DRV_RUNNING | IFF_DRV_OACTIVE)) != IFF_DRV_RUNNING) return (1); bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE); rx_prod = sc->bge_ldata.bge_status_block->bge_idx[0].bge_rx_prod_idx; tx_cons = sc->bge_ldata.bge_status_block->bge_idx[0].bge_tx_cons_idx; bus_dmamap_sync(sc->bge_cdata.bge_status_tag, sc->bge_cdata.bge_status_map, BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE); (void)bge_rxeof(sc, rx_prod, 0); bge_txeof(sc, tx_cons); return (0); } #endif /* NETDUMP */ Index: projects/power8_bringup_hacks/sys/powerpc/powernv/opal_pci.c =================================================================== --- projects/power8_bringup_hacks/sys/powerpc/powernv/opal_pci.c (revision 339414) +++ projects/power8_bringup_hacks/sys/powerpc/powernv/opal_pci.c (revision 339415) @@ -1,663 +1,697 @@ /*- * Copyright (c) 2015-2016 Nathan Whitehorn * Copyright (c) 2017-2018 Semihalf * All rights reserved. * * Redistribution and use in source and binary forms, with or without * modification, are permitted provided that the following conditions * are met: * 1. Redistributions of source code must retain the above copyright * notice, this list of conditions and the following disclaimer. * 2. Redistributions in binary form must reproduce the above copyright * notice, this list of conditions and the following disclaimer in the * documentation and/or other materials provided with the distribution. * * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF * SUCH DAMAGE. */ #include __FBSDID("$FreeBSD$"); #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include "pcib_if.h" #include "pic_if.h" #include "iommu_if.h" #include "opal.h" #define OPAL_PCI_TCE_MAX_ENTRIES (1024*1024UL) #define OPAL_PCI_TCE_DEFAULT_SEG_SIZE (16*1024*1024UL) #define OPAL_PCI_TCE_R (1UL << 0) #define OPAL_PCI_TCE_W (1UL << 1) #define PHB3_TCE_KILL_INVAL_ALL (1UL << 63) /* * Device interface. */ static int opalpci_probe(device_t); static int opalpci_attach(device_t); /* * pcib interface. */ static uint32_t opalpci_read_config(device_t, u_int, u_int, u_int, u_int, int); static void opalpci_write_config(device_t, u_int, u_int, u_int, u_int, u_int32_t, int); static int opalpci_alloc_msi(device_t dev, device_t child, int count, int maxcount, int *irqs); static int opalpci_release_msi(device_t dev, device_t child, int count, int *irqs); static int opalpci_alloc_msix(device_t dev, device_t child, int *irq); static int opalpci_release_msix(device_t dev, device_t child, int irq); static int opalpci_map_msi(device_t dev, device_t child, int irq, uint64_t *addr, uint32_t *data); static int opalpci_route_interrupt(device_t bus, device_t dev, int pin); /* * MSI PIC interface. */ static void opalpic_pic_enable(device_t dev, u_int irq, u_int vector); static void opalpic_pic_eoi(device_t dev, u_int irq); +/* Bus interface */ +static bus_dma_tag_t opalpci_get_dma_tag(device_t dev, device_t child); + /* * Commands */ #define OPAL_M32_WINDOW_TYPE 1 #define OPAL_M64_WINDOW_TYPE 2 #define OPAL_IO_WINDOW_TYPE 3 #define OPAL_RESET_PHB_COMPLETE 1 #define OPAL_RESET_PCI_IODA_TABLE 6 #define OPAL_DISABLE_M64 0 #define OPAL_ENABLE_M64_SPLIT 1 #define OPAL_ENABLE_M64_NON_SPLIT 2 #define OPAL_EEH_ACTION_CLEAR_FREEZE_MMIO 1 #define OPAL_EEH_ACTION_CLEAR_FREEZE_DMA 2 #define OPAL_EEH_ACTION_CLEAR_FREEZE_ALL 3 /* * Constants */ #define OPAL_PCI_DEFAULT_PE 1 +#define OPAL_PCI_BUS_SPACE_LOWADDR_32BIT 0x7FFFFFFFUL + /* * Driver methods. */ static device_method_t opalpci_methods[] = { /* Device interface */ DEVMETHOD(device_probe, opalpci_probe), DEVMETHOD(device_attach, opalpci_attach), /* pcib interface */ DEVMETHOD(pcib_read_config, opalpci_read_config), DEVMETHOD(pcib_write_config, opalpci_write_config), DEVMETHOD(pcib_alloc_msi, opalpci_alloc_msi), DEVMETHOD(pcib_release_msi, opalpci_release_msi), DEVMETHOD(pcib_alloc_msix, opalpci_alloc_msix), DEVMETHOD(pcib_release_msix, opalpci_release_msix), DEVMETHOD(pcib_map_msi, opalpci_map_msi), DEVMETHOD(pcib_route_interrupt, opalpci_route_interrupt), /* PIC interface for MSIs */ DEVMETHOD(pic_enable, opalpic_pic_enable), DEVMETHOD(pic_eoi, opalpic_pic_eoi), + /* Bus interface */ + DEVMETHOD(bus_get_dma_tag, opalpci_get_dma_tag), + DEVMETHOD_END }; struct opalpci_softc { struct ofw_pci_softc ofw_sc; uint64_t phb_id; vmem_t *msi_vmem; int msi_base; /* Base XIVE number */ int base_msi_irq; /* Base IRQ assigned by FreeBSD to this PIC */ uint64_t *tce; /* TCE table for 1:1 mapping */ struct resource *r_reg; }; static devclass_t opalpci_devclass; DEFINE_CLASS_1(pcib, opalpci_driver, opalpci_methods, sizeof(struct opalpci_softc), ofw_pci_driver); EARLY_DRIVER_MODULE(opalpci, ofwbus, opalpci_driver, opalpci_devclass, 0, 0, BUS_PASS_BUS); static int opalpci_probe(device_t dev) { const char *type; if (opal_check() != 0) return (ENXIO); type = ofw_bus_get_type(dev); if (type == NULL || (strcmp(type, "pci") != 0 && strcmp(type, "pciex") != 0)) return (ENXIO); if (!OF_hasprop(ofw_bus_get_node(dev), "ibm,opal-phbid")) return (ENXIO); device_set_desc(dev, "OPAL Host-PCI bridge"); return (BUS_PROBE_GENERIC); } static void pci_phb3_tce_invalidate_entire(struct opalpci_softc *sc) { mb(); bus_write_8(sc->r_reg, 0x210, PHB3_TCE_KILL_INVAL_ALL); mb(); } /* Simple function to round to a power of 2 */ static uint64_t round_pow2(uint64_t val) { return (1 << (flsl(val + (val - 1)) - 1)); } /* * Starting with skiboot 5.10 PCIe nodes have a new property, * "ibm,supported-tce-sizes", to denote the TCE sizes available. This allows us * to avoid hard-coding the maximum TCE size allowed, and instead provide a sane * default (however, the "sane" default, which works for all targets, is 64k, * limiting us to 64GB if we have 1M entries. */ static uint64_t max_tce_size(device_t dev) { phandle_t node; cell_t sizes[64]; /* Property is a list of bit-widths, up to 64-bits */ int count; node = ofw_bus_get_node(dev); count = OF_getencprop(node, "ibm,supported-tce-sizes", sizes, sizeof(sizes)); if (count < (int) sizeof(cell_t)) return OPAL_PCI_TCE_DEFAULT_SEG_SIZE; count /= sizeof(cell_t); return (1ULL << sizes[count - 1]); } static int opalpci_attach(device_t dev) { struct opalpci_softc *sc; cell_t id[2], m64ranges[2], m64window[6], npe; phandle_t node; int i, err; uint64_t maxmem; uint64_t entries; uint64_t tce_size; uint64_t tce_tbl_size; int m64bar; int rid; sc = device_get_softc(dev); node = ofw_bus_get_node(dev); switch (OF_getproplen(node, "ibm,opal-phbid")) { case 8: OF_getencprop(node, "ibm,opal-phbid", id, 8); sc->phb_id = ((uint64_t)id[0] << 32) | id[1]; break; case 4: OF_getencprop(node, "ibm,opal-phbid", id, 4); sc->phb_id = id[0]; break; default: device_printf(dev, "PHB ID property had wrong length (%zd)\n", OF_getproplen(node, "ibm,opal-phbid")); return (ENXIO); } if (bootverbose) device_printf(dev, "OPAL ID %#lx\n", sc->phb_id); rid = 0; sc->r_reg = bus_alloc_resource_any(dev, SYS_RES_MEMORY, &rid, RF_ACTIVE | RF_SHAREABLE); if (sc->r_reg == NULL) { device_printf(dev, "Failed to allocate PHB[%jd] registers\n", (uintmax_t)sc->phb_id); return (ENXIO); } #if 0 /* * Reset PCI IODA table */ err = opal_call(OPAL_PCI_RESET, sc->phb_id, OPAL_RESET_PCI_IODA_TABLE, 1); if (err != 0) { device_printf(dev, "IODA table reset failed: %d\n", err); return (ENXIO); } err = opal_call(OPAL_PCI_RESET, sc->phb_id, OPAL_RESET_PHB_COMPLETE, 1); if (err < 0) { device_printf(dev, "PHB reset failed: %d\n", err); return (ENXIO); } if (err > 0) { while ((err = opal_call(OPAL_PCI_POLL, sc->phb_id)) > 0) { DELAY(1000*(err + 1)); /* Returns expected delay in ms */ } } if (err < 0) { device_printf(dev, "WARNING: PHB IODA reset poll failed: %d\n", err); } err = opal_call(OPAL_PCI_RESET, sc->phb_id, OPAL_RESET_PHB_COMPLETE, 0); if (err < 0) { device_printf(dev, "PHB reset failed: %d\n", err); return (ENXIO); } if (err > 0) { while ((err = opal_call(OPAL_PCI_POLL, sc->phb_id)) > 0) { DELAY(1000*(err + 1)); /* Returns expected delay in ms */ } } #endif /* * Map all devices on the bus to partitionable endpoint one until * such time as we start wanting to do things like bhyve. */ err = opal_call(OPAL_PCI_SET_PE, sc->phb_id, OPAL_PCI_DEFAULT_PE, 0, OPAL_PCI_BUS_ANY, OPAL_IGNORE_RID_DEVICE_NUMBER, OPAL_IGNORE_RID_FUNC_NUMBER, OPAL_MAP_PE); if (err != 0) { device_printf(dev, "PE mapping failed: %d\n", err); return (ENXIO); } /* * Turn on MMIO, mapped to PE 1 */ if (OF_getencprop(node, "ibm,opal-num-pes", &npe, 4) != 4) npe = 1; for (i = 0; i < npe; i++) { err = opal_call(OPAL_PCI_MAP_PE_MMIO_WINDOW, sc->phb_id, OPAL_PCI_DEFAULT_PE, OPAL_M32_WINDOW_TYPE, 0, i); if (err != 0) device_printf(dev, "MMIO %d map failed: %d\n", i, err); } if (OF_getencprop(node, "ibm,opal-available-m64-ranges", m64ranges, sizeof(m64ranges)) == sizeof(m64ranges)) m64bar = m64ranges[0]; else m64bar = 0; /* XXX: multiple M64 windows? */ if (OF_getencprop(node, "ibm,opal-m64-window", m64window, sizeof(m64window)) == sizeof(m64window)) { opal_call(OPAL_PCI_PHB_MMIO_ENABLE, sc->phb_id, OPAL_M64_WINDOW_TYPE, m64bar, 0); opal_call(OPAL_PCI_SET_PHB_MEM_WINDOW, sc->phb_id, OPAL_M64_WINDOW_TYPE, m64bar /* index */, ((uint64_t)m64window[2] << 32) | m64window[3], 0, ((uint64_t)m64window[4] << 32) | m64window[5]); opal_call(OPAL_PCI_MAP_PE_MMIO_WINDOW, sc->phb_id, OPAL_PCI_DEFAULT_PE, OPAL_M64_WINDOW_TYPE, m64bar /* index */, 0); opal_call(OPAL_PCI_PHB_MMIO_ENABLE, sc->phb_id, OPAL_M64_WINDOW_TYPE, m64bar, OPAL_ENABLE_M64_NON_SPLIT); } /* * Enable IOMMU for PE1 - map everything 1:1 using * segments of max_tce_size size */ tce_size = max_tce_size(dev); maxmem = roundup2(powerpc_ptob(Maxmem), tce_size); entries = round_pow2(maxmem / tce_size); tce_tbl_size = max(entries * sizeof(uint64_t), 4096); if (entries > OPAL_PCI_TCE_MAX_ENTRIES) panic("POWERNV supports only %jdGB of memory space\n", (uintmax_t)((OPAL_PCI_TCE_MAX_ENTRIES * tce_size) >> 30)); if (bootverbose) device_printf(dev, "Mapping 0-%#jx for DMA\n", (uintmax_t)maxmem); sc->tce = contigmalloc(tce_tbl_size, M_DEVBUF, M_NOWAIT | M_ZERO, 0, BUS_SPACE_MAXADDR, tce_size, 0); if (sc->tce == NULL) panic("Failed to allocate TCE memory for PHB %jd\n", (uintmax_t)sc->phb_id); for (i = 0; i < entries; i++) sc->tce[i] = (i * tce_size) | OPAL_PCI_TCE_R | OPAL_PCI_TCE_W; /* Map TCE for every PE. It seems necessary for Power8 */ for (i = 0; i < npe; i++) { err = opal_call(OPAL_PCI_MAP_PE_DMA_WINDOW, sc->phb_id, i, (i << 1), 1, pmap_kextract((uint64_t)&sc->tce[0]), tce_tbl_size, tce_size); if (err != 0) { device_printf(dev, "DMA IOMMU mapping failed: %d\n", err); return (ENXIO); } err = opal_call(OPAL_PCI_MAP_PE_DMA_WINDOW_REAL, sc->phb_id, i, (i << 1) + 1, (1UL << 59), maxmem); if (err != 0) { device_printf(dev, "DMA 64b bypass mapping failed: %d\n", err); return (ENXIO); } } /* * Invalidate all previous TCE entries. * * TODO: add support for other PHBs than PHB3 */ pci_phb3_tce_invalidate_entire(sc); /* * Get MSI properties */ sc->msi_vmem = NULL; if (OF_getproplen(node, "ibm,opal-msi-ranges") > 0) { cell_t msi_ranges[2]; OF_getencprop(node, "ibm,opal-msi-ranges", msi_ranges, sizeof(msi_ranges)); sc->msi_base = msi_ranges[0]; sc->msi_vmem = vmem_create("OPAL MSI", msi_ranges[0], msi_ranges[1], 1, 16, M_BESTFIT | M_WAITOK); sc->base_msi_irq = powerpc_register_pic(dev, OF_xref_from_node(node), msi_ranges[0] + msi_ranges[1], 0, FALSE); if (bootverbose) device_printf(dev, "Supports %d MSIs starting at %d\n", msi_ranges[1], msi_ranges[0]); } + /* Create the parent DMA tag */ + err = bus_dma_tag_create(bus_get_dma_tag(dev), /* parent */ + 1, 0, /* alignment, bounds */ + OPAL_PCI_BUS_SPACE_LOWADDR_32BIT, /* lowaddr */ + BUS_SPACE_MAXADDR_32BIT, /* highaddr */ + NULL, NULL, /* filter, filterarg */ + BUS_SPACE_MAXSIZE, /* maxsize */ + BUS_SPACE_UNRESTRICTED, /* nsegments */ + BUS_SPACE_MAXSIZE, /* maxsegsize */ + 0, /* flags */ + NULL, NULL, /* lockfunc, lockarg */ + &sc->ofw_sc.sc_dmat); + if (err != 0) { + device_printf(dev, "Failed to create DMA tag\n"); + return (err); + } + /* * General OFW PCI attach */ err = ofw_pci_init(dev); if (err != 0) return (err); /* * Unfreeze non-config-space PCI operations. Let this fail silently * if e.g. there is no current freeze. */ opal_call(OPAL_PCI_EEH_FREEZE_CLEAR, sc->phb_id, OPAL_PCI_DEFAULT_PE, OPAL_EEH_ACTION_CLEAR_FREEZE_ALL); /* * OPAL stores 64-bit BARs in a special property rather than "ranges" */ if (OF_getencprop(node, "ibm,opal-m64-window", m64window, sizeof(m64window)) == sizeof(m64window)) { struct ofw_pci_range *rp; sc->ofw_sc.sc_nrange++; sc->ofw_sc.sc_range = realloc(sc->ofw_sc.sc_range, sc->ofw_sc.sc_nrange * sizeof(sc->ofw_sc.sc_range[0]), M_DEVBUF, M_WAITOK); rp = &sc->ofw_sc.sc_range[sc->ofw_sc.sc_nrange-1]; rp->pci_hi = OFW_PCI_PHYS_HI_SPACE_MEM64 | OFW_PCI_PHYS_HI_PREFETCHABLE; rp->pci = ((uint64_t)m64window[0] << 32) | m64window[1]; rp->host = ((uint64_t)m64window[2] << 32) | m64window[3]; rp->size = ((uint64_t)m64window[4] << 32) | m64window[5]; rman_manage_region(&sc->ofw_sc.sc_mem_rman, rp->pci, rp->pci + rp->size - 1); } return (ofw_pci_attach(dev)); } static uint32_t opalpci_read_config(device_t dev, u_int bus, u_int slot, u_int func, u_int reg, int width) { struct opalpci_softc *sc; uint64_t config_addr; uint8_t byte; uint16_t half; uint32_t word; int error; sc = device_get_softc(dev); config_addr = (bus << 8) | ((slot & 0x1f) << 3) | (func & 0x7); switch (width) { case 1: error = opal_call(OPAL_PCI_CONFIG_READ_BYTE, sc->phb_id, config_addr, reg, vtophys(&byte)); word = byte; break; case 2: error = opal_call(OPAL_PCI_CONFIG_READ_HALF_WORD, sc->phb_id, config_addr, reg, vtophys(&half)); word = half; break; case 4: error = opal_call(OPAL_PCI_CONFIG_READ_WORD, sc->phb_id, config_addr, reg, vtophys(&word)); break; default: error = OPAL_SUCCESS; word = 0xffffffff; } /* * Poking config state for non-existant devices can make * the host bridge hang up. Clear any errors. * * XXX: Make this conditional on the existence of a freeze */ opal_call(OPAL_PCI_EEH_FREEZE_CLEAR, sc->phb_id, OPAL_PCI_DEFAULT_PE, OPAL_EEH_ACTION_CLEAR_FREEZE_ALL); if (error != OPAL_SUCCESS) word = 0xffffffff; return (word); } static void opalpci_write_config(device_t dev, u_int bus, u_int slot, u_int func, u_int reg, uint32_t val, int width) { struct opalpci_softc *sc; uint64_t config_addr; int error = OPAL_SUCCESS; sc = device_get_softc(dev); config_addr = (bus << 8) | ((slot & 0x1f) << 3) | (func & 0x7); switch (width) { case 1: error = opal_call(OPAL_PCI_CONFIG_WRITE_BYTE, sc->phb_id, config_addr, reg, val); break; case 2: error = opal_call(OPAL_PCI_CONFIG_WRITE_HALF_WORD, sc->phb_id, config_addr, reg, val); break; case 4: error = opal_call(OPAL_PCI_CONFIG_WRITE_WORD, sc->phb_id, config_addr, reg, val); break; } if (error != OPAL_SUCCESS) { /* * Poking config state for non-existant devices can make * the host bridge hang up. Clear any errors. */ opal_call(OPAL_PCI_EEH_FREEZE_CLEAR, sc->phb_id, OPAL_PCI_DEFAULT_PE, OPAL_EEH_ACTION_CLEAR_FREEZE_ALL); } } static int opalpci_route_interrupt(device_t bus, device_t dev, int pin) { return (pin); } static int opalpci_alloc_msi(device_t dev, device_t child, int count, int maxcount, int *irqs) { struct opalpci_softc *sc; vmem_addr_t start; phandle_t xref; int err, i; sc = device_get_softc(dev); if (sc->msi_vmem == NULL) return (ENODEV); err = vmem_xalloc(sc->msi_vmem, count, powerof2(count), 0, 0, VMEM_ADDR_MIN, VMEM_ADDR_MAX, M_BESTFIT | M_WAITOK, &start); if (err) return (err); xref = OF_xref_from_node(ofw_bus_get_node(dev)); for (i = 0; i < count; i++) irqs[i] = MAP_IRQ(xref, start + i); return (0); } static int opalpci_release_msi(device_t dev, device_t child, int count, int *irqs) { struct opalpci_softc *sc; sc = device_get_softc(dev); if (sc->msi_vmem == NULL) return (ENODEV); vmem_xfree(sc->msi_vmem, irqs[0] - sc->base_msi_irq, count); return (0); } static int opalpci_alloc_msix(device_t dev, device_t child, int *irq) { return (opalpci_alloc_msi(dev, child, 1, 1, irq)); } static int opalpci_release_msix(device_t dev, device_t child, int irq) { return (opalpci_release_msi(dev, child, 1, &irq)); } static int opalpci_map_msi(device_t dev, device_t child, int irq, uint64_t *addr, uint32_t *data) { struct opalpci_softc *sc; struct pci_devinfo *dinfo; int err, xive; sc = device_get_softc(dev); if (sc->msi_vmem == NULL) return (ENODEV); xive = irq - sc->base_msi_irq - sc->msi_base; opal_call(OPAL_PCI_SET_XIVE_PE, sc->phb_id, OPAL_PCI_DEFAULT_PE, xive); dinfo = device_get_ivars(child); if (dinfo->cfg.msi.msi_alloc > 0 && (dinfo->cfg.msi.msi_ctrl & PCIM_MSICTRL_64BIT) == 0) { uint32_t msi32; err = opal_call(OPAL_GET_MSI_32, sc->phb_id, OPAL_PCI_DEFAULT_PE, xive, 1, vtophys(&msi32), vtophys(data)); *addr = be32toh(msi32); } else { err = opal_call(OPAL_GET_MSI_64, sc->phb_id, OPAL_PCI_DEFAULT_PE, xive, 1, vtophys(addr), vtophys(data)); *addr = be64toh(*addr); } *data = be32toh(*data); if (bootverbose && err != 0) device_printf(child, "OPAL MSI mapping error: %d\n", err); return ((err == 0) ? 0 : ENXIO); } static void opalpic_pic_enable(device_t dev, u_int irq, u_int vector) { struct opalpci_softc *sc = device_get_softc(dev); PIC_ENABLE(root_pic, irq, vector); opal_call(OPAL_PCI_MSI_EOI, sc->phb_id, irq); } static void opalpic_pic_eoi(device_t dev, u_int irq) { struct opalpci_softc *sc; sc = device_get_softc(dev); opal_call(OPAL_PCI_MSI_EOI, sc->phb_id, irq); PIC_EOI(root_pic, irq); +} + +static bus_dma_tag_t +opalpci_get_dma_tag(device_t dev, device_t child) +{ + struct opalpci_softc *sc; + + sc = device_get_softc(dev); + return (sc->ofw_sc.sc_dmat); }