diff --git a/sys/dev/hwpmc/hwpmc_core.c b/sys/dev/hwpmc/hwpmc_core.c index b0773227fac7..afd587296e01 100644 --- a/sys/dev/hwpmc/hwpmc_core.c +++ b/sys/dev/hwpmc/hwpmc_core.c @@ -1,1344 +1,1344 @@ /*- * SPDX-License-Identifier: BSD-2-Clause-FreeBSD * * Copyright (c) 2008 Joseph Koshy * 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. */ /* * Intel Core PMCs. */ #include __FBSDID("$FreeBSD$"); #include #include #include #include #include #include #include #include #include #include #include #include #define CORE_CPUID_REQUEST 0xA #define CORE_CPUID_REQUEST_SIZE 0x4 #define CORE_CPUID_EAX 0x0 #define CORE_CPUID_EBX 0x1 #define CORE_CPUID_ECX 0x2 #define CORE_CPUID_EDX 0x3 #define IAF_PMC_CAPS \ (PMC_CAP_READ | PMC_CAP_WRITE | PMC_CAP_INTERRUPT | \ PMC_CAP_USER | PMC_CAP_SYSTEM) #define IAF_RI_TO_MSR(RI) ((RI) + (1 << 30)) #define IAP_PMC_CAPS (PMC_CAP_INTERRUPT | PMC_CAP_USER | PMC_CAP_SYSTEM | \ PMC_CAP_EDGE | PMC_CAP_THRESHOLD | PMC_CAP_READ | PMC_CAP_WRITE | \ PMC_CAP_INVERT | PMC_CAP_QUALIFIER | PMC_CAP_PRECISE) #define EV_IS_NOTARCH 0 #define EV_IS_ARCH_SUPP 1 #define EV_IS_ARCH_NOTSUPP -1 /* * "Architectural" events defined by Intel. The values of these * symbols correspond to positions in the bitmask returned by * the CPUID.0AH instruction. */ enum core_arch_events { CORE_AE_BRANCH_INSTRUCTION_RETIRED = 5, CORE_AE_BRANCH_MISSES_RETIRED = 6, CORE_AE_INSTRUCTION_RETIRED = 1, CORE_AE_LLC_MISSES = 4, CORE_AE_LLC_REFERENCE = 3, CORE_AE_UNHALTED_REFERENCE_CYCLES = 2, CORE_AE_UNHALTED_CORE_CYCLES = 0 }; static enum pmc_cputype core_cputype; struct core_cpu { volatile uint32_t pc_resync; volatile uint32_t pc_iafctrl; /* Fixed function control. */ volatile uint64_t pc_globalctrl; /* Global control register. */ struct pmc_hw pc_corepmcs[]; }; static struct core_cpu **core_pcpu; static uint32_t core_architectural_events; static uint64_t core_pmcmask; static int core_iaf_ri; /* relative index of fixed counters */ static int core_iaf_width; static int core_iaf_npmc; static int core_iap_width; static int core_iap_npmc; static int core_iap_wroffset; static u_int pmc_alloc_refs; static bool pmc_tsx_force_abort_set; static int core_pcpu_noop(struct pmc_mdep *md, int cpu) { (void) md; (void) cpu; return (0); } static int core_pcpu_init(struct pmc_mdep *md, int cpu) { struct pmc_cpu *pc; struct core_cpu *cc; struct pmc_hw *phw; int core_ri, n, npmc; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[iaf,%d] insane cpu number %d", __LINE__, cpu)); PMCDBG1(MDP,INI,1,"core-init cpu=%d", cpu); core_ri = md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAP].pcd_ri; npmc = md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAP].pcd_num; if (core_cputype != PMC_CPU_INTEL_CORE) npmc += md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAF].pcd_num; cc = malloc(sizeof(struct core_cpu) + npmc * sizeof(struct pmc_hw), M_PMC, M_WAITOK | M_ZERO); core_pcpu[cpu] = cc; pc = pmc_pcpu[cpu]; KASSERT(pc != NULL && cc != NULL, ("[core,%d] NULL per-cpu structures cpu=%d", __LINE__, cpu)); for (n = 0, phw = cc->pc_corepmcs; n < npmc; n++, phw++) { phw->phw_state = PMC_PHW_FLAG_IS_ENABLED | PMC_PHW_CPU_TO_STATE(cpu) | PMC_PHW_INDEX_TO_STATE(n + core_ri); phw->phw_pmc = NULL; pc->pc_hwpmcs[n + core_ri] = phw; } return (0); } static int core_pcpu_fini(struct pmc_mdep *md, int cpu) { int core_ri, n, npmc; struct pmc_cpu *pc; struct core_cpu *cc; uint64_t msr = 0; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] insane cpu number (%d)", __LINE__, cpu)); PMCDBG1(MDP,INI,1,"core-pcpu-fini cpu=%d", cpu); if ((cc = core_pcpu[cpu]) == NULL) return (0); core_pcpu[cpu] = NULL; pc = pmc_pcpu[cpu]; KASSERT(pc != NULL, ("[core,%d] NULL per-cpu %d state", __LINE__, cpu)); npmc = md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAP].pcd_num; core_ri = md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAP].pcd_ri; for (n = 0; n < npmc; n++) { msr = rdmsr(IAP_EVSEL0 + n) & ~IAP_EVSEL_MASK; wrmsr(IAP_EVSEL0 + n, msr); } if (core_cputype != PMC_CPU_INTEL_CORE) { msr = rdmsr(IAF_CTRL) & ~IAF_CTRL_MASK; wrmsr(IAF_CTRL, msr); npmc += md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAF].pcd_num; } for (n = 0; n < npmc; n++) pc->pc_hwpmcs[n + core_ri] = NULL; free(cc, M_PMC); return (0); } /* * Fixed function counters. */ static pmc_value_t iaf_perfctr_value_to_reload_count(pmc_value_t v) { /* If the PMC has overflowed, return a reload count of zero. */ if ((v & (1ULL << (core_iaf_width - 1))) == 0) return (0); v &= (1ULL << core_iaf_width) - 1; return (1ULL << core_iaf_width) - v; } static pmc_value_t iaf_reload_count_to_perfctr_value(pmc_value_t rlc) { return (1ULL << core_iaf_width) - rlc; } static int iaf_allocate_pmc(int cpu, int ri, struct pmc *pm, const struct pmc_op_pmcallocate *a) { uint8_t ev, umask; uint32_t caps, flags, config; const struct pmc_md_iap_op_pmcallocate *iap; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU %d", __LINE__, cpu)); PMCDBG2(MDP,ALL,1, "iaf-allocate ri=%d reqcaps=0x%x", ri, pm->pm_caps); if (ri < 0 || ri > core_iaf_npmc) return (EINVAL); caps = a->pm_caps; if (a->pm_class != PMC_CLASS_IAF || (caps & IAF_PMC_CAPS) != caps) return (EINVAL); iap = &a->pm_md.pm_iap; config = iap->pm_iap_config; ev = IAP_EVSEL_GET(config); umask = IAP_UMASK_GET(config); /* INST_RETIRED.ANY */ if (ev == 0xC0 && ri != 0) return (EINVAL); /* CPU_CLK_UNHALTED.THREAD */ if (ev == 0x3C && ri != 1) return (EINVAL); /* CPU_CLK_UNHALTED.REF */ if (ev == 0x0 && umask == 0x3 && ri != 2) return (EINVAL); pmc_alloc_refs++; if ((cpu_stdext_feature3 & CPUID_STDEXT3_TSXFA) != 0 && !pmc_tsx_force_abort_set) { pmc_tsx_force_abort_set = true; - x86_msr_op(MSR_TSX_FORCE_ABORT, MSR_OP_RENDEZVOUS | - MSR_OP_WRITE, 1); + x86_msr_op(MSR_TSX_FORCE_ABORT, MSR_OP_RENDEZVOUS_ALL | + MSR_OP_WRITE, 1, NULL); } flags = 0; if (config & IAP_OS) flags |= IAF_OS; if (config & IAP_USR) flags |= IAF_USR; if (config & IAP_ANY) flags |= IAF_ANY; if (config & IAP_INT) flags |= IAF_PMI; if (caps & PMC_CAP_INTERRUPT) flags |= IAF_PMI; if (caps & PMC_CAP_SYSTEM) flags |= IAF_OS; if (caps & PMC_CAP_USER) flags |= IAF_USR; if ((caps & (PMC_CAP_USER | PMC_CAP_SYSTEM)) == 0) flags |= (IAF_OS | IAF_USR); pm->pm_md.pm_iaf.pm_iaf_ctrl = (flags << (ri * 4)); PMCDBG1(MDP,ALL,2, "iaf-allocate config=0x%jx", (uintmax_t) pm->pm_md.pm_iaf.pm_iaf_ctrl); return (0); } static int iaf_config_pmc(int cpu, int ri, struct pmc *pm) { KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iaf_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); PMCDBG3(MDP,CFG,1, "iaf-config cpu=%d ri=%d pm=%p", cpu, ri, pm); KASSERT(core_pcpu[cpu] != NULL, ("[core,%d] null per-cpu %d", __LINE__, cpu)); core_pcpu[cpu]->pc_corepmcs[ri + core_iaf_ri].phw_pmc = pm; return (0); } static int iaf_describe(int cpu, int ri, struct pmc_info *pi, struct pmc **ppmc) { int error; struct pmc_hw *phw; char iaf_name[PMC_NAME_MAX]; phw = &core_pcpu[cpu]->pc_corepmcs[ri + core_iaf_ri]; (void) snprintf(iaf_name, sizeof(iaf_name), "IAF-%d", ri); if ((error = copystr(iaf_name, pi->pm_name, PMC_NAME_MAX, NULL)) != 0) return (error); pi->pm_class = PMC_CLASS_IAF; if (phw->phw_state & PMC_PHW_FLAG_IS_ENABLED) { pi->pm_enabled = TRUE; *ppmc = phw->phw_pmc; } else { pi->pm_enabled = FALSE; *ppmc = NULL; } return (0); } static int iaf_get_config(int cpu, int ri, struct pmc **ppm) { *ppm = core_pcpu[cpu]->pc_corepmcs[ri + core_iaf_ri].phw_pmc; return (0); } static int iaf_get_msr(int ri, uint32_t *msr) { KASSERT(ri >= 0 && ri < core_iaf_npmc, ("[iaf,%d] ri %d out of range", __LINE__, ri)); *msr = IAF_RI_TO_MSR(ri); return (0); } static int iaf_read_pmc(int cpu, int ri, pmc_value_t *v) { struct pmc *pm; pmc_value_t tmp; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal cpu value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iaf_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); pm = core_pcpu[cpu]->pc_corepmcs[ri + core_iaf_ri].phw_pmc; KASSERT(pm, ("[core,%d] cpu %d ri %d(%d) pmc not configured", __LINE__, cpu, ri, ri + core_iaf_ri)); tmp = rdpmc(IAF_RI_TO_MSR(ri)); if (PMC_IS_SAMPLING_MODE(PMC_TO_MODE(pm))) *v = iaf_perfctr_value_to_reload_count(tmp); else *v = tmp & ((1ULL << core_iaf_width) - 1); PMCDBG4(MDP,REA,1, "iaf-read cpu=%d ri=%d msr=0x%x -> v=%jx", cpu, ri, IAF_RI_TO_MSR(ri), *v); return (0); } static int iaf_release_pmc(int cpu, int ri, struct pmc *pmc) { PMCDBG3(MDP,REL,1, "iaf-release cpu=%d ri=%d pm=%p", cpu, ri, pmc); KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iaf_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); KASSERT(core_pcpu[cpu]->pc_corepmcs[ri + core_iaf_ri].phw_pmc == NULL, ("[core,%d] PHW pmc non-NULL", __LINE__)); MPASS(pmc_alloc_refs > 0); if (pmc_alloc_refs-- == 1 && pmc_tsx_force_abort_set) { pmc_tsx_force_abort_set = false; - x86_msr_op(MSR_TSX_FORCE_ABORT, MSR_OP_RENDEZVOUS | - MSR_OP_WRITE, 0); + x86_msr_op(MSR_TSX_FORCE_ABORT, MSR_OP_RENDEZVOUS_ALL | + MSR_OP_WRITE, 0, NULL); } return (0); } static int iaf_start_pmc(int cpu, int ri) { struct pmc *pm; struct core_cpu *iafc; uint64_t msr = 0; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iaf_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); PMCDBG2(MDP,STA,1,"iaf-start cpu=%d ri=%d", cpu, ri); iafc = core_pcpu[cpu]; pm = iafc->pc_corepmcs[ri + core_iaf_ri].phw_pmc; iafc->pc_iafctrl |= pm->pm_md.pm_iaf.pm_iaf_ctrl; msr = rdmsr(IAF_CTRL) & ~IAF_CTRL_MASK; wrmsr(IAF_CTRL, msr | (iafc->pc_iafctrl & IAF_CTRL_MASK)); do { iafc->pc_resync = 0; iafc->pc_globalctrl |= (1ULL << (ri + IAF_OFFSET)); msr = rdmsr(IA_GLOBAL_CTRL) & ~IAF_GLOBAL_CTRL_MASK; wrmsr(IA_GLOBAL_CTRL, msr | (iafc->pc_globalctrl & IAF_GLOBAL_CTRL_MASK)); } while (iafc->pc_resync != 0); PMCDBG4(MDP,STA,1,"iafctrl=%x(%x) globalctrl=%jx(%jx)", iafc->pc_iafctrl, (uint32_t) rdmsr(IAF_CTRL), iafc->pc_globalctrl, rdmsr(IA_GLOBAL_CTRL)); return (0); } static int iaf_stop_pmc(int cpu, int ri) { uint32_t fc; struct core_cpu *iafc; uint64_t msr = 0; PMCDBG2(MDP,STO,1,"iaf-stop cpu=%d ri=%d", cpu, ri); iafc = core_pcpu[cpu]; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iaf_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); fc = (IAF_MASK << (ri * 4)); iafc->pc_iafctrl &= ~fc; PMCDBG1(MDP,STO,1,"iaf-stop iafctrl=%x", iafc->pc_iafctrl); msr = rdmsr(IAF_CTRL) & ~IAF_CTRL_MASK; wrmsr(IAF_CTRL, msr | (iafc->pc_iafctrl & IAF_CTRL_MASK)); do { iafc->pc_resync = 0; iafc->pc_globalctrl &= ~(1ULL << (ri + IAF_OFFSET)); msr = rdmsr(IA_GLOBAL_CTRL) & ~IAF_GLOBAL_CTRL_MASK; wrmsr(IA_GLOBAL_CTRL, msr | (iafc->pc_globalctrl & IAF_GLOBAL_CTRL_MASK)); } while (iafc->pc_resync != 0); PMCDBG4(MDP,STO,1,"iafctrl=%x(%x) globalctrl=%jx(%jx)", iafc->pc_iafctrl, (uint32_t) rdmsr(IAF_CTRL), iafc->pc_globalctrl, rdmsr(IA_GLOBAL_CTRL)); return (0); } static int iaf_write_pmc(int cpu, int ri, pmc_value_t v) { struct core_cpu *cc; struct pmc *pm; uint64_t msr; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal cpu value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iaf_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); cc = core_pcpu[cpu]; pm = cc->pc_corepmcs[ri + core_iaf_ri].phw_pmc; KASSERT(pm, ("[core,%d] cpu %d ri %d pmc not configured", __LINE__, cpu, ri)); if (PMC_IS_SAMPLING_MODE(PMC_TO_MODE(pm))) v = iaf_reload_count_to_perfctr_value(v); /* Turn off fixed counters */ msr = rdmsr(IAF_CTRL) & ~IAF_CTRL_MASK; wrmsr(IAF_CTRL, msr); wrmsr(IAF_CTR0 + ri, v & ((1ULL << core_iaf_width) - 1)); /* Turn on fixed counters */ msr = rdmsr(IAF_CTRL) & ~IAF_CTRL_MASK; wrmsr(IAF_CTRL, msr | (cc->pc_iafctrl & IAF_CTRL_MASK)); PMCDBG6(MDP,WRI,1, "iaf-write cpu=%d ri=%d msr=0x%x v=%jx iafctrl=%jx " "pmc=%jx", cpu, ri, IAF_RI_TO_MSR(ri), v, (uintmax_t) rdmsr(IAF_CTRL), (uintmax_t) rdpmc(IAF_RI_TO_MSR(ri))); return (0); } static void iaf_initialize(struct pmc_mdep *md, int maxcpu, int npmc, int pmcwidth) { struct pmc_classdep *pcd; KASSERT(md != NULL, ("[iaf,%d] md is NULL", __LINE__)); PMCDBG0(MDP,INI,1, "iaf-initialize"); pcd = &md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAF]; pcd->pcd_caps = IAF_PMC_CAPS; pcd->pcd_class = PMC_CLASS_IAF; pcd->pcd_num = npmc; pcd->pcd_ri = md->pmd_npmc; pcd->pcd_width = pmcwidth; pcd->pcd_allocate_pmc = iaf_allocate_pmc; pcd->pcd_config_pmc = iaf_config_pmc; pcd->pcd_describe = iaf_describe; pcd->pcd_get_config = iaf_get_config; pcd->pcd_get_msr = iaf_get_msr; pcd->pcd_pcpu_fini = core_pcpu_noop; pcd->pcd_pcpu_init = core_pcpu_noop; pcd->pcd_read_pmc = iaf_read_pmc; pcd->pcd_release_pmc = iaf_release_pmc; pcd->pcd_start_pmc = iaf_start_pmc; pcd->pcd_stop_pmc = iaf_stop_pmc; pcd->pcd_write_pmc = iaf_write_pmc; md->pmd_npmc += npmc; } /* * Intel programmable PMCs. */ /* Sub fields of UMASK that this event supports. */ #define IAP_M_CORE (1 << 0) /* Core specificity */ #define IAP_M_AGENT (1 << 1) /* Agent specificity */ #define IAP_M_PREFETCH (1 << 2) /* Prefetch */ #define IAP_M_MESI (1 << 3) /* MESI */ #define IAP_M_SNOOPRESPONSE (1 << 4) /* Snoop response */ #define IAP_M_SNOOPTYPE (1 << 5) /* Snoop type */ #define IAP_M_TRANSITION (1 << 6) /* Transition */ #define IAP_F_CORE (0x3 << 14) /* Core specificity */ #define IAP_F_AGENT (0x1 << 13) /* Agent specificity */ #define IAP_F_PREFETCH (0x3 << 12) /* Prefetch */ #define IAP_F_MESI (0xF << 8) /* MESI */ #define IAP_F_SNOOPRESPONSE (0xB << 8) /* Snoop response */ #define IAP_F_SNOOPTYPE (0x3 << 8) /* Snoop type */ #define IAP_F_TRANSITION (0x1 << 12) /* Transition */ #define IAP_PREFETCH_RESERVED (0x2 << 12) #define IAP_CORE_THIS (0x1 << 14) #define IAP_CORE_ALL (0x3 << 14) #define IAP_F_CMASK 0xFF000000 static pmc_value_t iap_perfctr_value_to_reload_count(pmc_value_t v) { /* If the PMC has overflowed, return a reload count of zero. */ if ((v & (1ULL << (core_iap_width - 1))) == 0) return (0); v &= (1ULL << core_iap_width) - 1; return (1ULL << core_iap_width) - v; } static pmc_value_t iap_reload_count_to_perfctr_value(pmc_value_t rlc) { return (1ULL << core_iap_width) - rlc; } static int iap_pmc_has_overflowed(int ri) { uint64_t v; /* * We treat a Core (i.e., Intel architecture v1) PMC as has * having overflowed if its MSB is zero. */ v = rdpmc(ri); return ((v & (1ULL << (core_iap_width - 1))) == 0); } static int iap_event_corei7_ok_on_counter(uint8_t evsel, int ri) { uint32_t mask; switch (evsel) { /* * Events valid only on counter 0, 1. */ case 0x40: case 0x41: case 0x42: case 0x43: case 0x51: case 0x63: mask = 0x3; break; default: mask = ~0; /* Any row index is ok. */ } return (mask & (1 << ri)); } static int iap_event_westmere_ok_on_counter(uint8_t evsel, int ri) { uint32_t mask; switch (evsel) { /* * Events valid only on counter 0. */ case 0x60: case 0xB3: mask = 0x1; break; /* * Events valid only on counter 0, 1. */ case 0x4C: case 0x4E: case 0x51: case 0x63: mask = 0x3; break; default: mask = ~0; /* Any row index is ok. */ } return (mask & (1 << ri)); } static int iap_event_sb_sbx_ib_ibx_ok_on_counter(uint8_t evsel, int ri) { uint32_t mask; switch (evsel) { /* Events valid only on counter 0. */ case 0xB7: mask = 0x1; break; /* Events valid only on counter 1. */ case 0xC0: mask = 0x2; break; /* Events valid only on counter 2. */ case 0x48: case 0xA2: case 0xA3: mask = 0x4; break; /* Events valid only on counter 3. */ case 0xBB: case 0xCD: mask = 0x8; break; default: mask = ~0; /* Any row index is ok. */ } return (mask & (1 << ri)); } static int iap_event_ok_on_counter(uint8_t evsel, int ri) { uint32_t mask; switch (evsel) { /* * Events valid only on counter 0. */ case 0x10: case 0x14: case 0x18: case 0xB3: case 0xC1: case 0xCB: mask = (1 << 0); break; /* * Events valid only on counter 1. */ case 0x11: case 0x12: case 0x13: mask = (1 << 1); break; default: mask = ~0; /* Any row index is ok. */ } return (mask & (1 << ri)); } static int iap_allocate_pmc(int cpu, int ri, struct pmc *pm, const struct pmc_op_pmcallocate *a) { uint8_t ev; uint32_t caps; const struct pmc_md_iap_op_pmcallocate *iap; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iap_npmc, ("[core,%d] illegal row-index value %d", __LINE__, ri)); /* check requested capabilities */ caps = a->pm_caps; if ((IAP_PMC_CAPS & caps) != caps) return (EPERM); iap = &a->pm_md.pm_iap; ev = IAP_EVSEL_GET(iap->pm_iap_config); switch (core_cputype) { case PMC_CPU_INTEL_COREI7: case PMC_CPU_INTEL_NEHALEM_EX: if (iap_event_corei7_ok_on_counter(ev, ri) == 0) return (EINVAL); break; case PMC_CPU_INTEL_SKYLAKE: case PMC_CPU_INTEL_SKYLAKE_XEON: case PMC_CPU_INTEL_BROADWELL: case PMC_CPU_INTEL_BROADWELL_XEON: case PMC_CPU_INTEL_SANDYBRIDGE: case PMC_CPU_INTEL_SANDYBRIDGE_XEON: case PMC_CPU_INTEL_IVYBRIDGE: case PMC_CPU_INTEL_IVYBRIDGE_XEON: case PMC_CPU_INTEL_HASWELL: case PMC_CPU_INTEL_HASWELL_XEON: if (iap_event_sb_sbx_ib_ibx_ok_on_counter(ev, ri) == 0) return (EINVAL); break; case PMC_CPU_INTEL_WESTMERE: case PMC_CPU_INTEL_WESTMERE_EX: if (iap_event_westmere_ok_on_counter(ev, ri) == 0) return (EINVAL); break; default: if (iap_event_ok_on_counter(ev, ri) == 0) return (EINVAL); } pm->pm_md.pm_iap.pm_iap_evsel = iap->pm_iap_config; return (0); } static int iap_config_pmc(int cpu, int ri, struct pmc *pm) { KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iap_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); PMCDBG3(MDP,CFG,1, "iap-config cpu=%d ri=%d pm=%p", cpu, ri, pm); KASSERT(core_pcpu[cpu] != NULL, ("[core,%d] null per-cpu %d", __LINE__, cpu)); core_pcpu[cpu]->pc_corepmcs[ri].phw_pmc = pm; return (0); } static int iap_describe(int cpu, int ri, struct pmc_info *pi, struct pmc **ppmc) { int error; struct pmc_hw *phw; char iap_name[PMC_NAME_MAX]; phw = &core_pcpu[cpu]->pc_corepmcs[ri]; (void) snprintf(iap_name, sizeof(iap_name), "IAP-%d", ri); if ((error = copystr(iap_name, pi->pm_name, PMC_NAME_MAX, NULL)) != 0) return (error); pi->pm_class = PMC_CLASS_IAP; if (phw->phw_state & PMC_PHW_FLAG_IS_ENABLED) { pi->pm_enabled = TRUE; *ppmc = phw->phw_pmc; } else { pi->pm_enabled = FALSE; *ppmc = NULL; } return (0); } static int iap_get_config(int cpu, int ri, struct pmc **ppm) { *ppm = core_pcpu[cpu]->pc_corepmcs[ri].phw_pmc; return (0); } static int iap_get_msr(int ri, uint32_t *msr) { KASSERT(ri >= 0 && ri < core_iap_npmc, ("[iap,%d] ri %d out of range", __LINE__, ri)); *msr = ri; return (0); } static int iap_read_pmc(int cpu, int ri, pmc_value_t *v) { struct pmc *pm; pmc_value_t tmp; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal cpu value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iap_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); pm = core_pcpu[cpu]->pc_corepmcs[ri].phw_pmc; KASSERT(pm, ("[core,%d] cpu %d ri %d pmc not configured", __LINE__, cpu, ri)); tmp = rdpmc(ri); if (PMC_IS_SAMPLING_MODE(PMC_TO_MODE(pm))) *v = iap_perfctr_value_to_reload_count(tmp); else *v = tmp & ((1ULL << core_iap_width) - 1); PMCDBG4(MDP,REA,1, "iap-read cpu=%d ri=%d msr=0x%x -> v=%jx", cpu, ri, IAP_PMC0 + ri, *v); return (0); } static int iap_release_pmc(int cpu, int ri, struct pmc *pm) { (void) pm; PMCDBG3(MDP,REL,1, "iap-release cpu=%d ri=%d pm=%p", cpu, ri, pm); KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iap_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); KASSERT(core_pcpu[cpu]->pc_corepmcs[ri].phw_pmc == NULL, ("[core,%d] PHW pmc non-NULL", __LINE__)); return (0); } static int iap_start_pmc(int cpu, int ri) { struct pmc *pm; uint32_t evsel; struct core_cpu *cc; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal CPU value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iap_npmc, ("[core,%d] illegal row-index %d", __LINE__, ri)); cc = core_pcpu[cpu]; pm = cc->pc_corepmcs[ri].phw_pmc; KASSERT(pm, ("[core,%d] starting cpu%d,ri%d with no pmc configured", __LINE__, cpu, ri)); PMCDBG2(MDP,STA,1, "iap-start cpu=%d ri=%d", cpu, ri); evsel = pm->pm_md.pm_iap.pm_iap_evsel; PMCDBG4(MDP,STA,2, "iap-start/2 cpu=%d ri=%d evselmsr=0x%x evsel=0x%x", cpu, ri, IAP_EVSEL0 + ri, evsel); /* Event specific configuration. */ switch (IAP_EVSEL_GET(evsel)) { case 0xB7: wrmsr(IA_OFFCORE_RSP0, pm->pm_md.pm_iap.pm_iap_rsp); break; case 0xBB: wrmsr(IA_OFFCORE_RSP1, pm->pm_md.pm_iap.pm_iap_rsp); break; default: break; } wrmsr(IAP_EVSEL0 + ri, evsel | IAP_EN); if (core_cputype == PMC_CPU_INTEL_CORE) return (0); do { cc->pc_resync = 0; cc->pc_globalctrl |= (1ULL << ri); wrmsr(IA_GLOBAL_CTRL, cc->pc_globalctrl); } while (cc->pc_resync != 0); return (0); } static int iap_stop_pmc(int cpu, int ri) { struct pmc *pm __diagused; struct core_cpu *cc; uint64_t msr; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal cpu value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iap_npmc, ("[core,%d] illegal row index %d", __LINE__, ri)); cc = core_pcpu[cpu]; pm = cc->pc_corepmcs[ri].phw_pmc; KASSERT(pm, ("[core,%d] cpu%d ri%d no configured PMC to stop", __LINE__, cpu, ri)); PMCDBG2(MDP,STO,1, "iap-stop cpu=%d ri=%d", cpu, ri); msr = rdmsr(IAP_EVSEL0 + ri) & ~IAP_EVSEL_MASK; wrmsr(IAP_EVSEL0 + ri, msr); /* stop hw */ if (core_cputype == PMC_CPU_INTEL_CORE) return (0); do { cc->pc_resync = 0; cc->pc_globalctrl &= ~(1ULL << ri); msr = rdmsr(IA_GLOBAL_CTRL) & ~IA_GLOBAL_CTRL_MASK; wrmsr(IA_GLOBAL_CTRL, cc->pc_globalctrl); } while (cc->pc_resync != 0); return (0); } static int iap_write_pmc(int cpu, int ri, pmc_value_t v) { struct pmc *pm; struct core_cpu *cc; KASSERT(cpu >= 0 && cpu < pmc_cpu_max(), ("[core,%d] illegal cpu value %d", __LINE__, cpu)); KASSERT(ri >= 0 && ri < core_iap_npmc, ("[core,%d] illegal row index %d", __LINE__, ri)); cc = core_pcpu[cpu]; pm = cc->pc_corepmcs[ri].phw_pmc; KASSERT(pm, ("[core,%d] cpu%d ri%d no configured PMC to stop", __LINE__, cpu, ri)); if (PMC_IS_SAMPLING_MODE(PMC_TO_MODE(pm))) v = iap_reload_count_to_perfctr_value(v); v &= (1ULL << core_iap_width) - 1; PMCDBG4(MDP,WRI,1, "iap-write cpu=%d ri=%d msr=0x%x v=%jx", cpu, ri, IAP_PMC0 + ri, v); /* * Write the new value to the counter (or it's alias). The * counter will be in a stopped state when the pcd_write() * entry point is called. */ wrmsr(core_iap_wroffset + IAP_PMC0 + ri, v); return (0); } static void iap_initialize(struct pmc_mdep *md, int maxcpu, int npmc, int pmcwidth, int flags) { struct pmc_classdep *pcd; KASSERT(md != NULL, ("[iap,%d] md is NULL", __LINE__)); PMCDBG0(MDP,INI,1, "iap-initialize"); /* Remember the set of architectural events supported. */ core_architectural_events = ~flags; pcd = &md->pmd_classdep[PMC_MDEP_CLASS_INDEX_IAP]; pcd->pcd_caps = IAP_PMC_CAPS; pcd->pcd_class = PMC_CLASS_IAP; pcd->pcd_num = npmc; pcd->pcd_ri = md->pmd_npmc; pcd->pcd_width = pmcwidth; pcd->pcd_allocate_pmc = iap_allocate_pmc; pcd->pcd_config_pmc = iap_config_pmc; pcd->pcd_describe = iap_describe; pcd->pcd_get_config = iap_get_config; pcd->pcd_get_msr = iap_get_msr; pcd->pcd_pcpu_fini = core_pcpu_fini; pcd->pcd_pcpu_init = core_pcpu_init; pcd->pcd_read_pmc = iap_read_pmc; pcd->pcd_release_pmc = iap_release_pmc; pcd->pcd_start_pmc = iap_start_pmc; pcd->pcd_stop_pmc = iap_stop_pmc; pcd->pcd_write_pmc = iap_write_pmc; md->pmd_npmc += npmc; } static int core_intr(struct trapframe *tf) { pmc_value_t v; struct pmc *pm; struct core_cpu *cc; int error, found_interrupt, ri; uint64_t msr; PMCDBG3(MDP,INT, 1, "cpu=%d tf=0x%p um=%d", curcpu, (void *) tf, TRAPF_USERMODE(tf)); found_interrupt = 0; cc = core_pcpu[curcpu]; for (ri = 0; ri < core_iap_npmc; ri++) { if ((pm = cc->pc_corepmcs[ri].phw_pmc) == NULL || !PMC_IS_SAMPLING_MODE(PMC_TO_MODE(pm))) continue; if (!iap_pmc_has_overflowed(ri)) continue; found_interrupt = 1; if (pm->pm_state != PMC_STATE_RUNNING) continue; error = pmc_process_interrupt(PMC_HR, pm, tf); v = pm->pm_sc.pm_reloadcount; v = iap_reload_count_to_perfctr_value(v); /* * Stop the counter, reload it but only restart it if * the PMC is not stalled. */ msr = rdmsr(IAP_EVSEL0 + ri) & ~IAP_EVSEL_MASK; wrmsr(IAP_EVSEL0 + ri, msr); wrmsr(core_iap_wroffset + IAP_PMC0 + ri, v); if (error) continue; wrmsr(IAP_EVSEL0 + ri, msr | (pm->pm_md.pm_iap.pm_iap_evsel | IAP_EN)); } if (found_interrupt) lapic_reenable_pmc(); if (found_interrupt) counter_u64_add(pmc_stats.pm_intr_processed, 1); else counter_u64_add(pmc_stats.pm_intr_ignored, 1); return (found_interrupt); } static int core2_intr(struct trapframe *tf) { int error, found_interrupt, n, cpu; uint64_t flag, intrstatus, intrenable, msr; struct pmc *pm; struct core_cpu *cc; pmc_value_t v; cpu = curcpu; PMCDBG3(MDP,INT, 1, "cpu=%d tf=0x%p um=%d", cpu, (void *) tf, TRAPF_USERMODE(tf)); /* * The IA_GLOBAL_STATUS (MSR 0x38E) register indicates which * PMCs have a pending PMI interrupt. We take a 'snapshot' of * the current set of interrupting PMCs and process these * after stopping them. */ intrstatus = rdmsr(IA_GLOBAL_STATUS); intrenable = intrstatus & core_pmcmask; PMCDBG2(MDP,INT, 1, "cpu=%d intrstatus=%jx", cpu, (uintmax_t) intrstatus); found_interrupt = 0; cc = core_pcpu[cpu]; KASSERT(cc != NULL, ("[core,%d] null pcpu", __LINE__)); cc->pc_globalctrl &= ~intrenable; cc->pc_resync = 1; /* MSRs now potentially out of sync. */ /* * Stop PMCs and clear overflow status bits. */ msr = rdmsr(IA_GLOBAL_CTRL) & ~IA_GLOBAL_CTRL_MASK; wrmsr(IA_GLOBAL_CTRL, msr); wrmsr(IA_GLOBAL_OVF_CTRL, intrenable | IA_GLOBAL_STATUS_FLAG_OVFBUF | IA_GLOBAL_STATUS_FLAG_CONDCHG); /* * Look for interrupts from fixed function PMCs. */ for (n = 0, flag = (1ULL << IAF_OFFSET); n < core_iaf_npmc; n++, flag <<= 1) { if ((intrstatus & flag) == 0) continue; found_interrupt = 1; pm = cc->pc_corepmcs[n + core_iaf_ri].phw_pmc; if (pm == NULL || pm->pm_state != PMC_STATE_RUNNING || !PMC_IS_SAMPLING_MODE(PMC_TO_MODE(pm))) continue; error = pmc_process_interrupt(PMC_HR, pm, tf); if (error) intrenable &= ~flag; v = iaf_reload_count_to_perfctr_value(pm->pm_sc.pm_reloadcount); /* Reload sampling count. */ wrmsr(IAF_CTR0 + n, v); PMCDBG4(MDP,INT, 1, "iaf-intr cpu=%d error=%d v=%jx(%jx)", curcpu, error, (uintmax_t) v, (uintmax_t) rdpmc(IAF_RI_TO_MSR(n))); } /* * Process interrupts from the programmable counters. */ for (n = 0, flag = 1; n < core_iap_npmc; n++, flag <<= 1) { if ((intrstatus & flag) == 0) continue; found_interrupt = 1; pm = cc->pc_corepmcs[n].phw_pmc; if (pm == NULL || pm->pm_state != PMC_STATE_RUNNING || !PMC_IS_SAMPLING_MODE(PMC_TO_MODE(pm))) continue; error = pmc_process_interrupt(PMC_HR, pm, tf); if (error) intrenable &= ~flag; v = iap_reload_count_to_perfctr_value(pm->pm_sc.pm_reloadcount); PMCDBG3(MDP,INT, 1, "iap-intr cpu=%d error=%d v=%jx", cpu, error, (uintmax_t) v); /* Reload sampling count. */ wrmsr(core_iap_wroffset + IAP_PMC0 + n, v); } /* * Reenable all non-stalled PMCs. */ PMCDBG2(MDP,INT, 1, "cpu=%d intrenable=%jx", cpu, (uintmax_t) intrenable); cc->pc_globalctrl |= intrenable; wrmsr(IA_GLOBAL_CTRL, cc->pc_globalctrl & IA_GLOBAL_CTRL_MASK); PMCDBG5(MDP,INT, 1, "cpu=%d fixedctrl=%jx globalctrl=%jx status=%jx " "ovf=%jx", cpu, (uintmax_t) rdmsr(IAF_CTRL), (uintmax_t) rdmsr(IA_GLOBAL_CTRL), (uintmax_t) rdmsr(IA_GLOBAL_STATUS), (uintmax_t) rdmsr(IA_GLOBAL_OVF_CTRL)); if (found_interrupt) lapic_reenable_pmc(); if (found_interrupt) counter_u64_add(pmc_stats.pm_intr_processed, 1); else counter_u64_add(pmc_stats.pm_intr_ignored, 1); return (found_interrupt); } int pmc_core_initialize(struct pmc_mdep *md, int maxcpu, int version_override) { int cpuid[CORE_CPUID_REQUEST_SIZE]; int ipa_version, flags, nflags; do_cpuid(CORE_CPUID_REQUEST, cpuid); ipa_version = (version_override > 0) ? version_override : cpuid[CORE_CPUID_EAX] & 0xFF; core_cputype = md->pmd_cputype; PMCDBG3(MDP,INI,1,"core-init cputype=%d ncpu=%d ipa-version=%d", core_cputype, maxcpu, ipa_version); if (ipa_version < 1 || ipa_version > 4 || (core_cputype != PMC_CPU_INTEL_CORE && ipa_version == 1)) { /* Unknown PMC architecture. */ printf("hwpc_core: unknown PMC architecture: %d\n", ipa_version); return (EPROGMISMATCH); } core_iap_wroffset = 0; if (cpu_feature2 & CPUID2_PDCM) { if (rdmsr(IA32_PERF_CAPABILITIES) & PERFCAP_FW_WRITE) { PMCDBG0(MDP, INI, 1, "core-init full-width write supported"); core_iap_wroffset = IAP_A_PMC0 - IAP_PMC0; } else PMCDBG0(MDP, INI, 1, "core-init full-width write NOT supported"); } else PMCDBG0(MDP, INI, 1, "core-init pdcm not supported"); core_pmcmask = 0; /* * Initialize programmable counters. */ core_iap_npmc = (cpuid[CORE_CPUID_EAX] >> 8) & 0xFF; core_iap_width = (cpuid[CORE_CPUID_EAX] >> 16) & 0xFF; core_pmcmask |= ((1ULL << core_iap_npmc) - 1); nflags = (cpuid[CORE_CPUID_EAX] >> 24) & 0xFF; flags = cpuid[CORE_CPUID_EBX] & ((1 << nflags) - 1); iap_initialize(md, maxcpu, core_iap_npmc, core_iap_width, flags); /* * Initialize fixed function counters, if present. */ if (core_cputype != PMC_CPU_INTEL_CORE) { core_iaf_ri = core_iap_npmc; core_iaf_npmc = cpuid[CORE_CPUID_EDX] & 0x1F; core_iaf_width = (cpuid[CORE_CPUID_EDX] >> 5) & 0xFF; iaf_initialize(md, maxcpu, core_iaf_npmc, core_iaf_width); core_pmcmask |= ((1ULL << core_iaf_npmc) - 1) << IAF_OFFSET; } PMCDBG2(MDP,INI,1,"core-init pmcmask=0x%jx iafri=%d", core_pmcmask, core_iaf_ri); core_pcpu = malloc(sizeof(*core_pcpu) * maxcpu, M_PMC, M_ZERO | M_WAITOK); /* * Choose the appropriate interrupt handler. */ if (ipa_version == 1) md->pmd_intr = core_intr; else md->pmd_intr = core2_intr; md->pmd_pcpu_fini = NULL; md->pmd_pcpu_init = NULL; return (0); } void pmc_core_finalize(struct pmc_mdep *md) { PMCDBG0(MDP,INI,1, "core-finalize"); free(core_pcpu, M_PMC); core_pcpu = NULL; } diff --git a/sys/x86/include/x86_var.h b/sys/x86/include/x86_var.h index cc730fcd1bf1..71f7a7eca564 100644 --- a/sys/x86/include/x86_var.h +++ b/sys/x86/include/x86_var.h @@ -1,164 +1,176 @@ /*- * Copyright (c) 1995 Bruce D. Evans. * 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. Neither the name of the author nor the names of contributors * may be used to endorse or promote products derived from this software * without specific prior written permission. * * 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. * * $FreeBSD$ */ #ifndef _X86_X86_VAR_H_ #define _X86_X86_VAR_H_ /* * Miscellaneous machine-dependent declarations. */ extern long Maxmem; extern u_int basemem; extern int busdma_swi_pending; extern u_int cpu_exthigh; extern u_int cpu_feature; extern u_int cpu_feature2; extern u_int amd_feature; extern u_int amd_feature2; extern u_int amd_rascap; extern u_int amd_pminfo; extern u_int amd_extended_feature_extensions; extern u_int via_feature_rng; extern u_int via_feature_xcrypt; extern u_int cpu_clflush_line_size; extern u_int cpu_stdext_feature; extern u_int cpu_stdext_feature2; extern u_int cpu_stdext_feature3; extern uint64_t cpu_ia32_arch_caps; extern u_int cpu_fxsr; extern u_int cpu_high; extern u_int cpu_id; extern u_int cpu_max_ext_state_size; extern u_int cpu_mxcsr_mask; extern u_int cpu_procinfo; extern u_int cpu_procinfo2; extern char cpu_vendor[]; extern u_int cpu_vendor_id; extern u_int cpu_mon_mwait_flags; extern u_int cpu_mon_min_size; extern u_int cpu_mon_max_size; extern u_int cpu_maxphyaddr; extern u_int cpu_power_eax; extern u_int cpu_power_ebx; extern u_int cpu_power_ecx; extern u_int cpu_power_edx; extern u_int hv_base; extern u_int hv_high; extern char hv_vendor[]; extern char kstack[]; extern char sigcode[]; extern int szsigcode; extern int workaround_erratum383; extern int _udatasel; extern int _ucodesel; extern int _ucode32sel; extern int _ufssel; extern int _ugssel; extern int use_xsave; extern uint64_t xsave_mask; extern u_int max_apic_id; extern int i386_read_exec; extern int pti; extern int hw_ibrs_ibpb_active; extern int hw_mds_disable; extern int hw_ssb_active; extern int x86_taa_enable; extern int cpu_flush_rsb_ctxsw; extern int x86_rngds_mitg_enable; extern int cpu_amdc1e_bug; struct pcb; struct thread; struct reg; struct fpreg; struct dbreg; struct dumperinfo; struct trapframe; /* * The interface type of the interrupt handler entry point cannot be * expressed in C. Use simplest non-variadic function type as an * approximation. */ typedef void alias_for_inthand_t(void); bool acpi_get_fadt_bootflags(uint16_t *flagsp); void *alloc_fpusave(int flags); void busdma_swi(void); u_int cpu_auxmsr(void); vm_paddr_t cpu_getmaxphyaddr(void); bool cpu_mwait_usable(void); void cpu_probe_amdc1e(void); void cpu_setregs(void); int dbreg_set_watchpoint(vm_offset_t addr, vm_size_t size, int access); int dbreg_clr_watchpoint(vm_offset_t addr, vm_size_t size); void dbreg_list_watchpoints(void); void x86_clear_dbregs(struct pcb *pcb); bool disable_wp(void); void restore_wp(bool old_wp); void finishidentcpu(void); void identify_cpu1(void); void identify_cpu2(void); void identify_cpu_fixup_bsp(void); void identify_hypervisor(void); void initializecpu(void); void initializecpucache(void); bool fix_cpuid(void); void fillw(int /*u_short*/ pat, void *base, size_t cnt); int is_physical_memory(vm_paddr_t addr); int isa_nmi(int cd); void handle_ibrs_entry(void); void handle_ibrs_exit(void); void hw_ibrs_recalculate(bool all_cpus); void hw_mds_recalculate(void); void hw_ssb_recalculate(bool all_cpus); void x86_taa_recalculate(void); void x86_rngds_mitg_recalculate(bool all_cpus); void nmi_call_kdb(u_int cpu, u_int type, struct trapframe *frame); void nmi_call_kdb_smp(u_int type, struct trapframe *frame); void nmi_handle_intr(u_int type, struct trapframe *frame); void pagecopy(void *from, void *to); void printcpuinfo(void); int pti_get_default(void); int user_dbreg_trap(register_t dr6); int minidumpsys(struct dumperinfo *); struct pcb *get_pcb_td(struct thread *td); +/* + * MSR ops for x86_msr_op() + */ #define MSR_OP_ANDNOT 0x00000001 #define MSR_OP_OR 0x00000002 #define MSR_OP_WRITE 0x00000003 +#define MSR_OP_READ 0x00000004 + +/* + * Where and which execution mode + */ #define MSR_OP_LOCAL 0x10000000 -#define MSR_OP_SCHED 0x20000000 -#define MSR_OP_RENDEZVOUS 0x30000000 -void x86_msr_op(u_int msr, u_int op, uint64_t arg1); +#define MSR_OP_SCHED_ALL 0x20000000 +#define MSR_OP_SCHED_ONE 0x30000000 +#define MSR_OP_RENDEZVOUS_ALL 0x40000000 +#define MSR_OP_RENDEZVOUS_ONE 0x50000000 +#define MSR_OP_CPUID(id) ((id) << 8) + +void x86_msr_op(u_int msr, u_int op, uint64_t arg1, uint64_t *res); #endif diff --git a/sys/x86/x86/cpu_machdep.c b/sys/x86/x86/cpu_machdep.c index 77ae7b360a25..8ad718372928 100644 --- a/sys/x86/x86/cpu_machdep.c +++ b/sys/x86/x86/cpu_machdep.c @@ -1,1471 +1,1506 @@ /*- * Copyright (c) 2003 Peter Wemm. * Copyright (c) 1992 Terrence R. Lambert. * Copyright (c) 1982, 1987, 1990 The Regents of the University of California. * All rights reserved. * * This code is derived from software contributed to Berkeley by * William Jolitz. * * 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 the University of * California, Berkeley and its contributors. * 4. Neither the name of the University nor the names of its contributors * may be used to endorse or promote products derived from this software * without specific prior written permission. * * THIS SOFTWARE IS PROVIDED BY THE REGENTS 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 REGENTS 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. * * from: @(#)machdep.c 7.4 (Berkeley) 6/3/91 */ #include __FBSDID("$FreeBSD$"); #include "opt_acpi.h" #include "opt_atpic.h" #include "opt_cpu.h" #include "opt_ddb.h" #include "opt_inet.h" #include "opt_isa.h" #include "opt_kdb.h" #include "opt_kstack_pages.h" #include "opt_maxmem.h" #include "opt_mp_watchdog.h" #include "opt_platform.h" #ifdef __i386__ #include "opt_apic.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 #ifdef SMP #include #endif #ifdef CPU_ELAN #include #endif #include #include #include #include #include #include #include #include #include #include #include #define STATE_RUNNING 0x0 #define STATE_MWAIT 0x1 #define STATE_SLEEPING 0x2 #ifdef SMP static u_int cpu_reset_proxyid; static volatile u_int cpu_reset_proxy_active; #endif struct msr_op_arg { u_int msr; int op; uint64_t arg1; + uint64_t *res; }; static void x86_msr_op_one(void *argp) { struct msr_op_arg *a; uint64_t v; a = argp; switch (a->op) { case MSR_OP_ANDNOT: v = rdmsr(a->msr); v &= ~a->arg1; wrmsr(a->msr, v); break; case MSR_OP_OR: v = rdmsr(a->msr); v |= a->arg1; wrmsr(a->msr, v); break; case MSR_OP_WRITE: wrmsr(a->msr, a->arg1); break; + case MSR_OP_READ: + v = rdmsr(a->msr); + *a->res = v; + break; } } #define MSR_OP_EXMODE_MASK 0xf0000000 #define MSR_OP_OP_MASK 0x000000ff +#define MSR_OP_GET_CPUID(x) (((x) & ~MSR_OP_EXMODE_MASK) >> 8) void -x86_msr_op(u_int msr, u_int op, uint64_t arg1) +x86_msr_op(u_int msr, u_int op, uint64_t arg1, uint64_t *res) { struct thread *td; struct msr_op_arg a; + cpuset_t set; u_int exmode; - int bound_cpu, i, is_bound; + int bound_cpu, cpu, i, is_bound; a.op = op & MSR_OP_OP_MASK; MPASS(a.op == MSR_OP_ANDNOT || a.op == MSR_OP_OR || - a.op == MSR_OP_WRITE); + a.op == MSR_OP_WRITE || a.op == MSR_OP_READ); exmode = op & MSR_OP_EXMODE_MASK; - MPASS(exmode == MSR_OP_LOCAL || exmode == MSR_OP_SCHED || - exmode == MSR_OP_RENDEZVOUS); + MPASS(exmode == MSR_OP_LOCAL || exmode == MSR_OP_SCHED_ALL || + exmode == MSR_OP_SCHED_ONE || exmode == MSR_OP_RENDEZVOUS_ALL || + exmode == MSR_OP_RENDEZVOUS_ONE); a.msr = msr; a.arg1 = arg1; + a.res = res; switch (exmode) { case MSR_OP_LOCAL: x86_msr_op_one(&a); break; - case MSR_OP_SCHED: + case MSR_OP_SCHED_ALL: td = curthread; thread_lock(td); is_bound = sched_is_bound(td); bound_cpu = td->td_oncpu; CPU_FOREACH(i) { sched_bind(td, i); x86_msr_op_one(&a); } if (is_bound) sched_bind(td, bound_cpu); else sched_unbind(td); thread_unlock(td); break; - case MSR_OP_RENDEZVOUS: - smp_rendezvous(NULL, x86_msr_op_one, NULL, &a); + case MSR_OP_SCHED_ONE: + td = curthread; + cpu = MSR_OP_GET_CPUID(op); + thread_lock(td); + is_bound = sched_is_bound(td); + bound_cpu = td->td_oncpu; + if (!is_bound || bound_cpu != cpu) + sched_bind(td, cpu); + x86_msr_op_one(&a); + if (is_bound) { + if (bound_cpu != cpu) + sched_bind(td, bound_cpu); + } else { + sched_unbind(td); + } + thread_unlock(td); + break; + case MSR_OP_RENDEZVOUS_ALL: + smp_rendezvous(smp_no_rendezvous_barrier, x86_msr_op_one, + smp_no_rendezvous_barrier, &a); + break; + case MSR_OP_RENDEZVOUS_ONE: + cpu = MSR_OP_GET_CPUID(op); + CPU_SETOF(cpu, &set); + smp_rendezvous_cpus(set, smp_no_rendezvous_barrier, + x86_msr_op_one, smp_no_rendezvous_barrier, &a); break; } } /* * Automatically initialized per CPU errata in cpu_idle_tun below. */ bool mwait_cpustop_broken = false; SYSCTL_BOOL(_machdep, OID_AUTO, mwait_cpustop_broken, CTLFLAG_RDTUN, &mwait_cpustop_broken, 0, "Can not reliably wake MONITOR/MWAIT cpus without interrupts"); /* * Flush the D-cache for non-DMA I/O so that the I-cache can * be made coherent later. */ void cpu_flush_dcache(void *ptr, size_t len) { /* Not applicable */ } void acpi_cpu_c1(void) { __asm __volatile("sti; hlt"); } /* * Use mwait to pause execution while waiting for an interrupt or * another thread to signal that there is more work. * * NOTE: Interrupts will cause a wakeup; however, this function does * not enable interrupt handling. The caller is responsible to enable * interrupts. */ void acpi_cpu_idle_mwait(uint32_t mwait_hint) { int *state; uint64_t v; /* * A comment in Linux patch claims that 'CPUs run faster with * speculation protection disabled. All CPU threads in a core * must disable speculation protection for it to be * disabled. Disable it while we are idle so the other * hyperthread can run fast.' * * XXXKIB. Software coordination mode should be supported, * but all Intel CPUs provide hardware coordination. */ state = &PCPU_PTR(monitorbuf)->idle_state; KASSERT(atomic_load_int(state) == STATE_SLEEPING, ("cpu_mwait_cx: wrong monitorbuf state")); atomic_store_int(state, STATE_MWAIT); if (PCPU_GET(ibpb_set) || hw_ssb_active) { v = rdmsr(MSR_IA32_SPEC_CTRL); wrmsr(MSR_IA32_SPEC_CTRL, v & ~(IA32_SPEC_CTRL_IBRS | IA32_SPEC_CTRL_STIBP | IA32_SPEC_CTRL_SSBD)); } else { v = 0; } cpu_monitor(state, 0, 0); if (atomic_load_int(state) == STATE_MWAIT) cpu_mwait(MWAIT_INTRBREAK, mwait_hint); /* * SSB cannot be disabled while we sleep, or rather, if it was * disabled, the sysctl thread will bind to our cpu to tweak * MSR. */ if (v != 0) wrmsr(MSR_IA32_SPEC_CTRL, v); /* * We should exit on any event that interrupts mwait, because * that event might be a wanted interrupt. */ atomic_store_int(state, STATE_RUNNING); } /* Get current clock frequency for the given cpu id. */ int cpu_est_clockrate(int cpu_id, uint64_t *rate) { uint64_t tsc1, tsc2; uint64_t acnt, mcnt, perf; register_t reg; if (pcpu_find(cpu_id) == NULL || rate == NULL) return (EINVAL); #ifdef __i386__ if ((cpu_feature & CPUID_TSC) == 0) return (EOPNOTSUPP); #endif /* * If TSC is P-state invariant and APERF/MPERF MSRs do not exist, * DELAY(9) based logic fails. */ if (tsc_is_invariant && !tsc_perf_stat) return (EOPNOTSUPP); #ifdef SMP if (smp_cpus > 1) { /* Schedule ourselves on the indicated cpu. */ thread_lock(curthread); sched_bind(curthread, cpu_id); thread_unlock(curthread); } #endif /* Calibrate by measuring a short delay. */ reg = intr_disable(); if (tsc_is_invariant) { wrmsr(MSR_MPERF, 0); wrmsr(MSR_APERF, 0); tsc1 = rdtsc(); DELAY(1000); mcnt = rdmsr(MSR_MPERF); acnt = rdmsr(MSR_APERF); tsc2 = rdtsc(); intr_restore(reg); perf = 1000 * acnt / mcnt; *rate = (tsc2 - tsc1) * perf; } else { tsc1 = rdtsc(); DELAY(1000); tsc2 = rdtsc(); intr_restore(reg); *rate = (tsc2 - tsc1) * 1000; } #ifdef SMP if (smp_cpus > 1) { thread_lock(curthread); sched_unbind(curthread); thread_unlock(curthread); } #endif return (0); } /* * Shutdown the CPU as much as possible */ void cpu_halt(void) { for (;;) halt(); } static void cpu_reset_real(void) { struct region_descriptor null_idt; int b; disable_intr(); #ifdef CPU_ELAN if (elan_mmcr != NULL) elan_mmcr->RESCFG = 1; #endif #ifdef __i386__ if (cpu == CPU_GEODE1100) { /* Attempt Geode's own reset */ outl(0xcf8, 0x80009044ul); outl(0xcfc, 0xf); } #endif #if !defined(BROKEN_KEYBOARD_RESET) /* * Attempt to do a CPU reset via the keyboard controller, * do not turn off GateA20, as any machine that fails * to do the reset here would then end up in no man's land. */ outb(IO_KBD + 4, 0xFE); DELAY(500000); /* wait 0.5 sec to see if that did it */ #endif /* * Attempt to force a reset via the Reset Control register at * I/O port 0xcf9. Bit 2 forces a system reset when it * transitions from 0 to 1. Bit 1 selects the type of reset * to attempt: 0 selects a "soft" reset, and 1 selects a * "hard" reset. We try a "hard" reset. The first write sets * bit 1 to select a "hard" reset and clears bit 2. The * second write forces a 0 -> 1 transition in bit 2 to trigger * a reset. */ outb(0xcf9, 0x2); outb(0xcf9, 0x6); DELAY(500000); /* wait 0.5 sec to see if that did it */ /* * Attempt to force a reset via the Fast A20 and Init register * at I/O port 0x92. Bit 1 serves as an alternate A20 gate. * Bit 0 asserts INIT# when set to 1. We are careful to only * preserve bit 1 while setting bit 0. We also must clear bit * 0 before setting it if it isn't already clear. */ b = inb(0x92); if (b != 0xff) { if ((b & 0x1) != 0) outb(0x92, b & 0xfe); outb(0x92, b | 0x1); DELAY(500000); /* wait 0.5 sec to see if that did it */ } printf("No known reset method worked, attempting CPU shutdown\n"); DELAY(1000000); /* wait 1 sec for printf to complete */ /* Wipe the IDT. */ null_idt.rd_limit = 0; null_idt.rd_base = 0; lidt(&null_idt); /* "good night, sweet prince .... " */ breakpoint(); /* NOTREACHED */ while(1); } #ifdef SMP static void cpu_reset_proxy(void) { cpu_reset_proxy_active = 1; while (cpu_reset_proxy_active == 1) ia32_pause(); /* Wait for other cpu to see that we've started */ printf("cpu_reset_proxy: Stopped CPU %d\n", cpu_reset_proxyid); DELAY(1000000); cpu_reset_real(); } #endif void cpu_reset(void) { #ifdef SMP struct monitorbuf *mb; cpuset_t map; u_int cnt; if (smp_started) { map = all_cpus; CPU_CLR(PCPU_GET(cpuid), &map); CPU_ANDNOT(&map, &stopped_cpus); if (!CPU_EMPTY(&map)) { printf("cpu_reset: Stopping other CPUs\n"); stop_cpus(map); } if (PCPU_GET(cpuid) != 0) { cpu_reset_proxyid = PCPU_GET(cpuid); cpustop_restartfunc = cpu_reset_proxy; cpu_reset_proxy_active = 0; printf("cpu_reset: Restarting BSP\n"); /* Restart CPU #0. */ CPU_SETOF(0, &started_cpus); mb = &pcpu_find(0)->pc_monitorbuf; atomic_store_int(&mb->stop_state, MONITOR_STOPSTATE_RUNNING); cnt = 0; while (cpu_reset_proxy_active == 0 && cnt < 10000000) { ia32_pause(); cnt++; /* Wait for BSP to announce restart */ } if (cpu_reset_proxy_active == 0) { printf("cpu_reset: Failed to restart BSP\n"); } else { cpu_reset_proxy_active = 2; while (1) ia32_pause(); /* NOTREACHED */ } } DELAY(1000000); } #endif cpu_reset_real(); /* NOTREACHED */ } bool cpu_mwait_usable(void) { return ((cpu_feature2 & CPUID2_MON) != 0 && ((cpu_mon_mwait_flags & (CPUID5_MON_MWAIT_EXT | CPUID5_MWAIT_INTRBREAK)) == (CPUID5_MON_MWAIT_EXT | CPUID5_MWAIT_INTRBREAK))); } void (*cpu_idle_hook)(sbintime_t) = NULL; /* ACPI idle hook. */ int cpu_amdc1e_bug = 0; /* AMD C1E APIC workaround required. */ static int idle_mwait = 1; /* Use MONITOR/MWAIT for short idle. */ SYSCTL_INT(_machdep, OID_AUTO, idle_mwait, CTLFLAG_RWTUN, &idle_mwait, 0, "Use MONITOR/MWAIT for short idle"); static void cpu_idle_acpi(sbintime_t sbt) { int *state; state = &PCPU_PTR(monitorbuf)->idle_state; atomic_store_int(state, STATE_SLEEPING); /* See comments in cpu_idle_hlt(). */ disable_intr(); if (sched_runnable()) enable_intr(); else if (cpu_idle_hook) cpu_idle_hook(sbt); else acpi_cpu_c1(); atomic_store_int(state, STATE_RUNNING); } static void cpu_idle_hlt(sbintime_t sbt) { int *state; state = &PCPU_PTR(monitorbuf)->idle_state; atomic_store_int(state, STATE_SLEEPING); /* * Since we may be in a critical section from cpu_idle(), if * an interrupt fires during that critical section we may have * a pending preemption. If the CPU halts, then that thread * may not execute until a later interrupt awakens the CPU. * To handle this race, check for a runnable thread after * disabling interrupts and immediately return if one is * found. Also, we must absolutely guarentee that hlt is * the next instruction after sti. This ensures that any * interrupt that fires after the call to disable_intr() will * immediately awaken the CPU from hlt. Finally, please note * that on x86 this works fine because of interrupts enabled only * after the instruction following sti takes place, while IF is set * to 1 immediately, allowing hlt instruction to acknowledge the * interrupt. */ disable_intr(); if (sched_runnable()) enable_intr(); else acpi_cpu_c1(); atomic_store_int(state, STATE_RUNNING); } static void cpu_idle_mwait(sbintime_t sbt) { int *state; state = &PCPU_PTR(monitorbuf)->idle_state; atomic_store_int(state, STATE_MWAIT); /* See comments in cpu_idle_hlt(). */ disable_intr(); if (sched_runnable()) { atomic_store_int(state, STATE_RUNNING); enable_intr(); return; } cpu_monitor(state, 0, 0); if (atomic_load_int(state) == STATE_MWAIT) __asm __volatile("sti; mwait" : : "a" (MWAIT_C1), "c" (0)); else enable_intr(); atomic_store_int(state, STATE_RUNNING); } static void cpu_idle_spin(sbintime_t sbt) { int *state; int i; state = &PCPU_PTR(monitorbuf)->idle_state; atomic_store_int(state, STATE_RUNNING); /* * The sched_runnable() call is racy but as long as there is * a loop missing it one time will have just a little impact if any * (and it is much better than missing the check at all). */ for (i = 0; i < 1000; i++) { if (sched_runnable()) return; cpu_spinwait(); } } void (*cpu_idle_fn)(sbintime_t) = cpu_idle_acpi; void cpu_idle(int busy) { uint64_t msr; sbintime_t sbt = -1; CTR2(KTR_SPARE2, "cpu_idle(%d) at %d", busy, curcpu); #ifdef MP_WATCHDOG ap_watchdog(PCPU_GET(cpuid)); #endif /* If we are busy - try to use fast methods. */ if (busy) { if ((cpu_feature2 & CPUID2_MON) && idle_mwait) { cpu_idle_mwait(busy); goto out; } } /* If we have time - switch timers into idle mode. */ if (!busy) { critical_enter(); sbt = cpu_idleclock(); } /* Apply AMD APIC timer C1E workaround. */ if (cpu_amdc1e_bug && cpu_disable_c3_sleep) { msr = rdmsr(MSR_AMDK8_IPM); if ((msr & (AMDK8_SMIONCMPHALT | AMDK8_C1EONCMPHALT)) != 0) wrmsr(MSR_AMDK8_IPM, msr & ~(AMDK8_SMIONCMPHALT | AMDK8_C1EONCMPHALT)); } /* Call main idle method. */ cpu_idle_fn(sbt); /* Switch timers back into active mode. */ if (!busy) { cpu_activeclock(); critical_exit(); } out: CTR2(KTR_SPARE2, "cpu_idle(%d) at %d done", busy, curcpu); } static int cpu_idle_apl31_workaround; SYSCTL_INT(_machdep, OID_AUTO, idle_apl31, CTLFLAG_RW, &cpu_idle_apl31_workaround, 0, "Apollo Lake APL31 MWAIT bug workaround"); int cpu_idle_wakeup(int cpu) { struct monitorbuf *mb; int *state; mb = &pcpu_find(cpu)->pc_monitorbuf; state = &mb->idle_state; switch (atomic_load_int(state)) { case STATE_SLEEPING: return (0); case STATE_MWAIT: atomic_store_int(state, STATE_RUNNING); return (cpu_idle_apl31_workaround ? 0 : 1); case STATE_RUNNING: return (1); default: panic("bad monitor state"); return (1); } } /* * Ordered by speed/power consumption. */ static struct { void *id_fn; char *id_name; int id_cpuid2_flag; } idle_tbl[] = { { .id_fn = cpu_idle_spin, .id_name = "spin" }, { .id_fn = cpu_idle_mwait, .id_name = "mwait", .id_cpuid2_flag = CPUID2_MON }, { .id_fn = cpu_idle_hlt, .id_name = "hlt" }, { .id_fn = cpu_idle_acpi, .id_name = "acpi" }, }; static int idle_sysctl_available(SYSCTL_HANDLER_ARGS) { char *avail, *p; int error; int i; avail = malloc(256, M_TEMP, M_WAITOK); p = avail; for (i = 0; i < nitems(idle_tbl); i++) { if (idle_tbl[i].id_cpuid2_flag != 0 && (cpu_feature2 & idle_tbl[i].id_cpuid2_flag) == 0) continue; if (strcmp(idle_tbl[i].id_name, "acpi") == 0 && cpu_idle_hook == NULL) continue; p += sprintf(p, "%s%s", p != avail ? ", " : "", idle_tbl[i].id_name); } error = sysctl_handle_string(oidp, avail, 0, req); free(avail, M_TEMP); return (error); } SYSCTL_PROC(_machdep, OID_AUTO, idle_available, CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_NEEDGIANT, 0, 0, idle_sysctl_available, "A", "list of available idle functions"); static bool cpu_idle_selector(const char *new_idle_name) { int i; for (i = 0; i < nitems(idle_tbl); i++) { if (idle_tbl[i].id_cpuid2_flag != 0 && (cpu_feature2 & idle_tbl[i].id_cpuid2_flag) == 0) continue; if (strcmp(idle_tbl[i].id_name, "acpi") == 0 && cpu_idle_hook == NULL) continue; if (strcmp(idle_tbl[i].id_name, new_idle_name)) continue; cpu_idle_fn = idle_tbl[i].id_fn; if (bootverbose) printf("CPU idle set to %s\n", idle_tbl[i].id_name); return (true); } return (false); } static int cpu_idle_sysctl(SYSCTL_HANDLER_ARGS) { char buf[16], *p; int error, i; p = "unknown"; for (i = 0; i < nitems(idle_tbl); i++) { if (idle_tbl[i].id_fn == cpu_idle_fn) { p = idle_tbl[i].id_name; break; } } strncpy(buf, p, sizeof(buf)); error = sysctl_handle_string(oidp, buf, sizeof(buf), req); if (error != 0 || req->newptr == NULL) return (error); return (cpu_idle_selector(buf) ? 0 : EINVAL); } SYSCTL_PROC(_machdep, OID_AUTO, idle, CTLTYPE_STRING | CTLFLAG_RW | CTLFLAG_NEEDGIANT, 0, 0, cpu_idle_sysctl, "A", "currently selected idle function"); static void cpu_idle_tun(void *unused __unused) { char tunvar[16]; if (TUNABLE_STR_FETCH("machdep.idle", tunvar, sizeof(tunvar))) cpu_idle_selector(tunvar); else if (cpu_vendor_id == CPU_VENDOR_AMD && CPUID_TO_FAMILY(cpu_id) == 0x17 && CPUID_TO_MODEL(cpu_id) == 0x1) { /* Ryzen erratas 1057, 1109. */ cpu_idle_selector("hlt"); idle_mwait = 0; mwait_cpustop_broken = true; } if (cpu_vendor_id == CPU_VENDOR_INTEL && cpu_id == 0x506c9) { /* * Apollo Lake errata APL31 (public errata APL30). * Stores to the armed address range may not trigger * MWAIT to resume execution. OS needs to use * interrupts to wake processors from MWAIT-induced * sleep states. */ cpu_idle_apl31_workaround = 1; mwait_cpustop_broken = true; } TUNABLE_INT_FETCH("machdep.idle_apl31", &cpu_idle_apl31_workaround); } SYSINIT(cpu_idle_tun, SI_SUB_CPU, SI_ORDER_MIDDLE, cpu_idle_tun, NULL); static int panic_on_nmi = 0xff; SYSCTL_INT(_machdep, OID_AUTO, panic_on_nmi, CTLFLAG_RWTUN, &panic_on_nmi, 0, "Panic on NMI: 1 = H/W failure; 2 = unknown; 0xff = all"); int nmi_is_broadcast = 1; SYSCTL_INT(_machdep, OID_AUTO, nmi_is_broadcast, CTLFLAG_RWTUN, &nmi_is_broadcast, 0, "Chipset NMI is broadcast"); int (*apei_nmi)(void); void nmi_call_kdb(u_int cpu, u_int type, struct trapframe *frame) { bool claimed = false; #ifdef DEV_ISA /* machine/parity/power fail/"kitchen sink" faults */ if (isa_nmi(frame->tf_err)) { claimed = true; if ((panic_on_nmi & 1) != 0) panic("NMI indicates hardware failure"); } #endif /* DEV_ISA */ /* ACPI Platform Error Interfaces callback. */ if (apei_nmi != NULL && (*apei_nmi)()) claimed = true; /* * NMIs can be useful for debugging. They can be hooked up to a * pushbutton, usually on an ISA, PCI, or PCIe card. They can also be * generated by an IPMI BMC, either manually or in response to a * watchdog timeout. For example, see the "power diag" command in * ports/sysutils/ipmitool. They can also be generated by a * hypervisor; see "bhyvectl --inject-nmi". */ #ifdef KDB if (!claimed && (panic_on_nmi & 2) != 0) { if (debugger_on_panic) { printf("NMI/cpu%d ... going to debugger\n", cpu); claimed = kdb_trap(type, 0, frame); } } #endif /* KDB */ if (!claimed && panic_on_nmi != 0) panic("NMI"); } void nmi_handle_intr(u_int type, struct trapframe *frame) { #ifdef SMP if (nmi_is_broadcast) { nmi_call_kdb_smp(type, frame); return; } #endif nmi_call_kdb(PCPU_GET(cpuid), type, frame); } static int hw_ibrs_active; int hw_ibrs_ibpb_active; int hw_ibrs_disable = 1; SYSCTL_INT(_hw, OID_AUTO, ibrs_active, CTLFLAG_RD, &hw_ibrs_active, 0, "Indirect Branch Restricted Speculation active"); SYSCTL_NODE(_machdep_mitigations, OID_AUTO, ibrs, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "Indirect Branch Restricted Speculation active"); SYSCTL_INT(_machdep_mitigations_ibrs, OID_AUTO, active, CTLFLAG_RD, &hw_ibrs_active, 0, "Indirect Branch Restricted Speculation active"); void hw_ibrs_recalculate(bool for_all_cpus) { if ((cpu_ia32_arch_caps & IA32_ARCH_CAP_IBRS_ALL) != 0) { x86_msr_op(MSR_IA32_SPEC_CTRL, (for_all_cpus ? - MSR_OP_RENDEZVOUS : MSR_OP_LOCAL) | + MSR_OP_RENDEZVOUS_ALL : MSR_OP_LOCAL) | (hw_ibrs_disable != 0 ? MSR_OP_ANDNOT : MSR_OP_OR), - IA32_SPEC_CTRL_IBRS); + IA32_SPEC_CTRL_IBRS, NULL); hw_ibrs_active = hw_ibrs_disable == 0; hw_ibrs_ibpb_active = 0; } else { hw_ibrs_active = hw_ibrs_ibpb_active = (cpu_stdext_feature3 & CPUID_STDEXT3_IBPB) != 0 && !hw_ibrs_disable; } } static int hw_ibrs_disable_handler(SYSCTL_HANDLER_ARGS) { int error, val; val = hw_ibrs_disable; error = sysctl_handle_int(oidp, &val, 0, req); if (error != 0 || req->newptr == NULL) return (error); hw_ibrs_disable = val != 0; hw_ibrs_recalculate(true); return (0); } SYSCTL_PROC(_hw, OID_AUTO, ibrs_disable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, hw_ibrs_disable_handler, "I", "Disable Indirect Branch Restricted Speculation"); SYSCTL_PROC(_machdep_mitigations_ibrs, OID_AUTO, disable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, hw_ibrs_disable_handler, "I", "Disable Indirect Branch Restricted Speculation"); int hw_ssb_active; int hw_ssb_disable; SYSCTL_INT(_hw, OID_AUTO, spec_store_bypass_disable_active, CTLFLAG_RD, &hw_ssb_active, 0, "Speculative Store Bypass Disable active"); SYSCTL_NODE(_machdep_mitigations, OID_AUTO, ssb, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "Speculative Store Bypass Disable active"); SYSCTL_INT(_machdep_mitigations_ssb, OID_AUTO, active, CTLFLAG_RD, &hw_ssb_active, 0, "Speculative Store Bypass Disable active"); static void hw_ssb_set(bool enable, bool for_all_cpus) { if ((cpu_stdext_feature3 & CPUID_STDEXT3_SSBD) == 0) { hw_ssb_active = 0; return; } hw_ssb_active = enable; x86_msr_op(MSR_IA32_SPEC_CTRL, (enable ? MSR_OP_OR : MSR_OP_ANDNOT) | - (for_all_cpus ? MSR_OP_SCHED : MSR_OP_LOCAL), IA32_SPEC_CTRL_SSBD); + (for_all_cpus ? MSR_OP_SCHED_ALL : MSR_OP_LOCAL), + IA32_SPEC_CTRL_SSBD, NULL); } void hw_ssb_recalculate(bool all_cpus) { switch (hw_ssb_disable) { default: hw_ssb_disable = 0; /* FALLTHROUGH */ case 0: /* off */ hw_ssb_set(false, all_cpus); break; case 1: /* on */ hw_ssb_set(true, all_cpus); break; case 2: /* auto */ hw_ssb_set((cpu_ia32_arch_caps & IA32_ARCH_CAP_SSB_NO) != 0 ? false : true, all_cpus); break; } } static int hw_ssb_disable_handler(SYSCTL_HANDLER_ARGS) { int error, val; val = hw_ssb_disable; error = sysctl_handle_int(oidp, &val, 0, req); if (error != 0 || req->newptr == NULL) return (error); hw_ssb_disable = val; hw_ssb_recalculate(true); return (0); } SYSCTL_PROC(_hw, OID_AUTO, spec_store_bypass_disable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, hw_ssb_disable_handler, "I", "Speculative Store Bypass Disable (0 - off, 1 - on, 2 - auto)"); SYSCTL_PROC(_machdep_mitigations_ssb, OID_AUTO, disable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, hw_ssb_disable_handler, "I", "Speculative Store Bypass Disable (0 - off, 1 - on, 2 - auto)"); int hw_mds_disable; /* * Handler for Microarchitectural Data Sampling issues. Really not a * pointer to C function: on amd64 the code must not change any CPU * architectural state except possibly %rflags. Also, it is always * called with interrupts disabled. */ void mds_handler_void(void); void mds_handler_verw(void); void mds_handler_ivb(void); void mds_handler_bdw(void); void mds_handler_skl_sse(void); void mds_handler_skl_avx(void); void mds_handler_skl_avx512(void); void mds_handler_silvermont(void); void (*mds_handler)(void) = mds_handler_void; static int sysctl_hw_mds_disable_state_handler(SYSCTL_HANDLER_ARGS) { const char *state; if (mds_handler == mds_handler_void) state = "inactive"; else if (mds_handler == mds_handler_verw) state = "VERW"; else if (mds_handler == mds_handler_ivb) state = "software IvyBridge"; else if (mds_handler == mds_handler_bdw) state = "software Broadwell"; else if (mds_handler == mds_handler_skl_sse) state = "software Skylake SSE"; else if (mds_handler == mds_handler_skl_avx) state = "software Skylake AVX"; else if (mds_handler == mds_handler_skl_avx512) state = "software Skylake AVX512"; else if (mds_handler == mds_handler_silvermont) state = "software Silvermont"; else state = "unknown"; return (SYSCTL_OUT(req, state, strlen(state))); } SYSCTL_PROC(_hw, OID_AUTO, mds_disable_state, CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0, sysctl_hw_mds_disable_state_handler, "A", "Microarchitectural Data Sampling Mitigation state"); SYSCTL_NODE(_machdep_mitigations, OID_AUTO, mds, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "Microarchitectural Data Sampling Mitigation state"); SYSCTL_PROC(_machdep_mitigations_mds, OID_AUTO, state, CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0, sysctl_hw_mds_disable_state_handler, "A", "Microarchitectural Data Sampling Mitigation state"); _Static_assert(__offsetof(struct pcpu, pc_mds_tmp) % 64 == 0, "MDS AVX512"); void hw_mds_recalculate(void) { struct pcpu *pc; vm_offset_t b64; u_long xcr0; int i; /* * Allow user to force VERW variant even if MD_CLEAR is not * reported. For instance, hypervisor might unknowingly * filter the cap out. * For the similar reasons, and for testing, allow to enable * mitigation even when MDS_NO cap is set. */ if (cpu_vendor_id != CPU_VENDOR_INTEL || hw_mds_disable == 0 || ((cpu_ia32_arch_caps & IA32_ARCH_CAP_MDS_NO) != 0 && hw_mds_disable == 3)) { mds_handler = mds_handler_void; } else if (((cpu_stdext_feature3 & CPUID_STDEXT3_MD_CLEAR) != 0 && hw_mds_disable == 3) || hw_mds_disable == 1) { mds_handler = mds_handler_verw; } else if (CPUID_TO_FAMILY(cpu_id) == 0x6 && (CPUID_TO_MODEL(cpu_id) == 0x2e || CPUID_TO_MODEL(cpu_id) == 0x1e || CPUID_TO_MODEL(cpu_id) == 0x1f || CPUID_TO_MODEL(cpu_id) == 0x1a || CPUID_TO_MODEL(cpu_id) == 0x2f || CPUID_TO_MODEL(cpu_id) == 0x25 || CPUID_TO_MODEL(cpu_id) == 0x2c || CPUID_TO_MODEL(cpu_id) == 0x2d || CPUID_TO_MODEL(cpu_id) == 0x2a || CPUID_TO_MODEL(cpu_id) == 0x3e || CPUID_TO_MODEL(cpu_id) == 0x3a) && (hw_mds_disable == 2 || hw_mds_disable == 3)) { /* * Nehalem, SandyBridge, IvyBridge */ CPU_FOREACH(i) { pc = pcpu_find(i); if (pc->pc_mds_buf == NULL) { pc->pc_mds_buf = malloc_domainset(672, M_TEMP, DOMAINSET_PREF(pc->pc_domain), M_WAITOK); bzero(pc->pc_mds_buf, 16); } } mds_handler = mds_handler_ivb; } else if (CPUID_TO_FAMILY(cpu_id) == 0x6 && (CPUID_TO_MODEL(cpu_id) == 0x3f || CPUID_TO_MODEL(cpu_id) == 0x3c || CPUID_TO_MODEL(cpu_id) == 0x45 || CPUID_TO_MODEL(cpu_id) == 0x46 || CPUID_TO_MODEL(cpu_id) == 0x56 || CPUID_TO_MODEL(cpu_id) == 0x4f || CPUID_TO_MODEL(cpu_id) == 0x47 || CPUID_TO_MODEL(cpu_id) == 0x3d) && (hw_mds_disable == 2 || hw_mds_disable == 3)) { /* * Haswell, Broadwell */ CPU_FOREACH(i) { pc = pcpu_find(i); if (pc->pc_mds_buf == NULL) { pc->pc_mds_buf = malloc_domainset(1536, M_TEMP, DOMAINSET_PREF(pc->pc_domain), M_WAITOK); bzero(pc->pc_mds_buf, 16); } } mds_handler = mds_handler_bdw; } else if (CPUID_TO_FAMILY(cpu_id) == 0x6 && ((CPUID_TO_MODEL(cpu_id) == 0x55 && (cpu_id & CPUID_STEPPING) <= 5) || CPUID_TO_MODEL(cpu_id) == 0x4e || CPUID_TO_MODEL(cpu_id) == 0x5e || (CPUID_TO_MODEL(cpu_id) == 0x8e && (cpu_id & CPUID_STEPPING) <= 0xb) || (CPUID_TO_MODEL(cpu_id) == 0x9e && (cpu_id & CPUID_STEPPING) <= 0xc)) && (hw_mds_disable == 2 || hw_mds_disable == 3)) { /* * Skylake, KabyLake, CoffeeLake, WhiskeyLake, * CascadeLake */ CPU_FOREACH(i) { pc = pcpu_find(i); if (pc->pc_mds_buf == NULL) { pc->pc_mds_buf = malloc_domainset(6 * 1024, M_TEMP, DOMAINSET_PREF(pc->pc_domain), M_WAITOK); b64 = (vm_offset_t)malloc_domainset(64 + 63, M_TEMP, DOMAINSET_PREF(pc->pc_domain), M_WAITOK); pc->pc_mds_buf64 = (void *)roundup2(b64, 64); bzero(pc->pc_mds_buf64, 64); } } xcr0 = rxcr(0); if ((xcr0 & XFEATURE_ENABLED_ZMM_HI256) != 0 && (cpu_stdext_feature & CPUID_STDEXT_AVX512DQ) != 0) mds_handler = mds_handler_skl_avx512; else if ((xcr0 & XFEATURE_ENABLED_AVX) != 0 && (cpu_feature2 & CPUID2_AVX) != 0) mds_handler = mds_handler_skl_avx; else mds_handler = mds_handler_skl_sse; } else if (CPUID_TO_FAMILY(cpu_id) == 0x6 && ((CPUID_TO_MODEL(cpu_id) == 0x37 || CPUID_TO_MODEL(cpu_id) == 0x4a || CPUID_TO_MODEL(cpu_id) == 0x4c || CPUID_TO_MODEL(cpu_id) == 0x4d || CPUID_TO_MODEL(cpu_id) == 0x5a || CPUID_TO_MODEL(cpu_id) == 0x5d || CPUID_TO_MODEL(cpu_id) == 0x6e || CPUID_TO_MODEL(cpu_id) == 0x65 || CPUID_TO_MODEL(cpu_id) == 0x75 || CPUID_TO_MODEL(cpu_id) == 0x1c || CPUID_TO_MODEL(cpu_id) == 0x26 || CPUID_TO_MODEL(cpu_id) == 0x27 || CPUID_TO_MODEL(cpu_id) == 0x35 || CPUID_TO_MODEL(cpu_id) == 0x36 || CPUID_TO_MODEL(cpu_id) == 0x7a))) { /* Silvermont, Airmont */ CPU_FOREACH(i) { pc = pcpu_find(i); if (pc->pc_mds_buf == NULL) pc->pc_mds_buf = malloc(256, M_TEMP, M_WAITOK); } mds_handler = mds_handler_silvermont; } else { hw_mds_disable = 0; mds_handler = mds_handler_void; } } static void hw_mds_recalculate_boot(void *arg __unused) { hw_mds_recalculate(); } SYSINIT(mds_recalc, SI_SUB_SMP, SI_ORDER_ANY, hw_mds_recalculate_boot, NULL); static int sysctl_mds_disable_handler(SYSCTL_HANDLER_ARGS) { int error, val; val = hw_mds_disable; error = sysctl_handle_int(oidp, &val, 0, req); if (error != 0 || req->newptr == NULL) return (error); if (val < 0 || val > 3) return (EINVAL); hw_mds_disable = val; hw_mds_recalculate(); return (0); } SYSCTL_PROC(_hw, OID_AUTO, mds_disable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, sysctl_mds_disable_handler, "I", "Microarchitectural Data Sampling Mitigation " "(0 - off, 1 - on VERW, 2 - on SW, 3 - on AUTO)"); SYSCTL_PROC(_machdep_mitigations_mds, OID_AUTO, disable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, sysctl_mds_disable_handler, "I", "Microarchitectural Data Sampling Mitigation " "(0 - off, 1 - on VERW, 2 - on SW, 3 - on AUTO)"); /* * Intel Transactional Memory Asynchronous Abort Mitigation * CVE-2019-11135 */ int x86_taa_enable; int x86_taa_state; enum { TAA_NONE = 0, /* No mitigation enabled */ TAA_TSX_DISABLE = 1, /* Disable TSX via MSR */ TAA_VERW = 2, /* Use VERW mitigation */ TAA_AUTO = 3, /* Automatically select the mitigation */ /* The states below are not selectable by the operator */ TAA_TAA_UC = 4, /* Mitigation present in microcode */ TAA_NOT_PRESENT = 5 /* TSX is not present */ }; static void taa_set(bool enable, bool all) { x86_msr_op(MSR_IA32_TSX_CTRL, (enable ? MSR_OP_OR : MSR_OP_ANDNOT) | - (all ? MSR_OP_RENDEZVOUS : MSR_OP_LOCAL), - IA32_TSX_CTRL_RTM_DISABLE | IA32_TSX_CTRL_TSX_CPUID_CLEAR); + (all ? MSR_OP_RENDEZVOUS_ALL : MSR_OP_LOCAL), + IA32_TSX_CTRL_RTM_DISABLE | IA32_TSX_CTRL_TSX_CPUID_CLEAR, + NULL); } void x86_taa_recalculate(void) { static int taa_saved_mds_disable = 0; int taa_need = 0, taa_state = 0; int mds_disable = 0, need_mds_recalc = 0; /* Check CPUID.07h.EBX.HLE and RTM for the presence of TSX */ if ((cpu_stdext_feature & CPUID_STDEXT_HLE) == 0 || (cpu_stdext_feature & CPUID_STDEXT_RTM) == 0) { /* TSX is not present */ x86_taa_state = TAA_NOT_PRESENT; return; } /* Check to see what mitigation options the CPU gives us */ if (cpu_ia32_arch_caps & IA32_ARCH_CAP_TAA_NO) { /* CPU is not suseptible to TAA */ taa_need = TAA_TAA_UC; } else if (cpu_ia32_arch_caps & IA32_ARCH_CAP_TSX_CTRL) { /* * CPU can turn off TSX. This is the next best option * if TAA_NO hardware mitigation isn't present */ taa_need = TAA_TSX_DISABLE; } else { /* No TSX/TAA specific remedies are available. */ if (x86_taa_enable == TAA_TSX_DISABLE) { if (bootverbose) printf("TSX control not available\n"); return; } else taa_need = TAA_VERW; } /* Can we automatically take action, or are we being forced? */ if (x86_taa_enable == TAA_AUTO) taa_state = taa_need; else taa_state = x86_taa_enable; /* No state change, nothing to do */ if (taa_state == x86_taa_state) { if (bootverbose) printf("No TSX change made\n"); return; } /* Does the MSR need to be turned on or off? */ if (taa_state == TAA_TSX_DISABLE) taa_set(true, true); else if (x86_taa_state == TAA_TSX_DISABLE) taa_set(false, true); /* Does MDS need to be set to turn on VERW? */ if (taa_state == TAA_VERW) { taa_saved_mds_disable = hw_mds_disable; mds_disable = hw_mds_disable = 1; need_mds_recalc = 1; } else if (x86_taa_state == TAA_VERW) { mds_disable = hw_mds_disable = taa_saved_mds_disable; need_mds_recalc = 1; } if (need_mds_recalc) { hw_mds_recalculate(); if (mds_disable != hw_mds_disable) { if (bootverbose) printf("Cannot change MDS state for TAA\n"); /* Don't update our state */ return; } } x86_taa_state = taa_state; return; } static void taa_recalculate_boot(void * arg __unused) { x86_taa_recalculate(); } SYSINIT(taa_recalc, SI_SUB_SMP, SI_ORDER_ANY, taa_recalculate_boot, NULL); SYSCTL_NODE(_machdep_mitigations, OID_AUTO, taa, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "TSX Asynchronous Abort Mitigation"); static int sysctl_taa_handler(SYSCTL_HANDLER_ARGS) { int error, val; val = x86_taa_enable; error = sysctl_handle_int(oidp, &val, 0, req); if (error != 0 || req->newptr == NULL) return (error); if (val < TAA_NONE || val > TAA_AUTO) return (EINVAL); x86_taa_enable = val; x86_taa_recalculate(); return (0); } SYSCTL_PROC(_machdep_mitigations_taa, OID_AUTO, enable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, sysctl_taa_handler, "I", "TAA Mitigation enablement control " "(0 - off, 1 - disable TSX, 2 - VERW, 3 - on AUTO)"); static int sysctl_taa_state_handler(SYSCTL_HANDLER_ARGS) { const char *state; switch (x86_taa_state) { case TAA_NONE: state = "inactive"; break; case TAA_TSX_DISABLE: state = "TSX disabled"; break; case TAA_VERW: state = "VERW"; break; case TAA_TAA_UC: state = "Mitigated in microcode"; break; case TAA_NOT_PRESENT: state = "TSX not present"; break; default: state = "unknown"; } return (SYSCTL_OUT(req, state, strlen(state))); } SYSCTL_PROC(_machdep_mitigations_taa, OID_AUTO, state, CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0, sysctl_taa_state_handler, "A", "TAA Mitigation state"); int __read_frequently cpu_flush_rsb_ctxsw; SYSCTL_INT(_machdep_mitigations, OID_AUTO, flush_rsb_ctxsw, CTLFLAG_RW | CTLFLAG_NOFETCH, &cpu_flush_rsb_ctxsw, 0, "Flush Return Stack Buffer on context switch"); SYSCTL_NODE(_machdep_mitigations, OID_AUTO, rngds, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, "MCU Optimization, disable RDSEED mitigation"); int x86_rngds_mitg_enable = 1; void x86_rngds_mitg_recalculate(bool all_cpus) { if ((cpu_stdext_feature3 & CPUID_STDEXT3_MCUOPT) == 0) return; x86_msr_op(MSR_IA32_MCU_OPT_CTRL, (x86_rngds_mitg_enable ? MSR_OP_OR : MSR_OP_ANDNOT) | - (all_cpus ? MSR_OP_RENDEZVOUS : MSR_OP_LOCAL), - IA32_RNGDS_MITG_DIS); + (all_cpus ? MSR_OP_RENDEZVOUS_ALL : MSR_OP_LOCAL), + IA32_RNGDS_MITG_DIS, NULL); } static int sysctl_rngds_mitg_enable_handler(SYSCTL_HANDLER_ARGS) { int error, val; val = x86_rngds_mitg_enable; error = sysctl_handle_int(oidp, &val, 0, req); if (error != 0 || req->newptr == NULL) return (error); x86_rngds_mitg_enable = val; x86_rngds_mitg_recalculate(true); return (0); } SYSCTL_PROC(_machdep_mitigations_rngds, OID_AUTO, enable, CTLTYPE_INT | CTLFLAG_RWTUN | CTLFLAG_NOFETCH | CTLFLAG_MPSAFE, NULL, 0, sysctl_rngds_mitg_enable_handler, "I", "MCU Optimization, disabling RDSEED mitigation control " "(0 - mitigation disabled (RDSEED optimized), 1 - mitigation enabled)"); static int sysctl_rngds_state_handler(SYSCTL_HANDLER_ARGS) { const char *state; if ((cpu_stdext_feature3 & CPUID_STDEXT3_MCUOPT) == 0) { state = "Not applicable"; } else if (x86_rngds_mitg_enable == 0) { state = "RDSEED not serialized"; } else { state = "Mitigated"; } return (SYSCTL_OUT(req, state, strlen(state))); } SYSCTL_PROC(_machdep_mitigations_rngds, OID_AUTO, state, CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0, sysctl_rngds_state_handler, "A", "MCU Optimization state"); /* * Enable and restore kernel text write permissions. * Callers must ensure that disable_wp()/restore_wp() are executed * without rescheduling on the same core. */ bool disable_wp(void) { u_int cr0; cr0 = rcr0(); if ((cr0 & CR0_WP) == 0) return (false); load_cr0(cr0 & ~CR0_WP); return (true); } void restore_wp(bool old_wp) { if (old_wp) load_cr0(rcr0() | CR0_WP); } bool acpi_get_fadt_bootflags(uint16_t *flagsp) { #ifdef DEV_ACPI ACPI_TABLE_FADT *fadt; vm_paddr_t physaddr; physaddr = acpi_find_table(ACPI_SIG_FADT); if (physaddr == 0) return (false); fadt = acpi_map_table(physaddr, ACPI_SIG_FADT); if (fadt == NULL) return (false); *flagsp = fadt->BootFlags; acpi_unmap_table(fadt); return (true); #else return (false); #endif }