Index: head/sys/vm/vm_phys.c =================================================================== --- head/sys/vm/vm_phys.c (revision 279981) +++ head/sys/vm/vm_phys.c (revision 279982) @@ -1,1253 +1,1251 @@ /*- * Copyright (c) 2002-2006 Rice University * Copyright (c) 2007 Alan L. Cox * All rights reserved. * * This software was developed for the FreeBSD Project by Alan L. Cox, * Olivier Crameri, Peter Druschel, Sitaram Iyer, and Juan Navarro. * * 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 COPYRIGHT HOLDERS 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 COPYRIGHT * HOLDERS 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. */ /* * Physical memory system implementation * * Any external functions defined by this module are only to be used by the * virtual memory system. */ #include __FBSDID("$FreeBSD$"); #include "opt_ddb.h" #include "opt_vm.h" #include #include #include #include #include #include #if MAXMEMDOM > 1 #include #endif #include #include #include #include #include #include #include #include #include #include #include #include #include _Static_assert(sizeof(long) * NBBY >= VM_PHYSSEG_MAX, "Too many physsegs."); struct mem_affinity *mem_affinity; int vm_ndomains = 1; struct vm_phys_seg vm_phys_segs[VM_PHYSSEG_MAX]; int vm_phys_nsegs; struct vm_phys_fictitious_seg; static int vm_phys_fictitious_cmp(struct vm_phys_fictitious_seg *, struct vm_phys_fictitious_seg *); RB_HEAD(fict_tree, vm_phys_fictitious_seg) vm_phys_fictitious_tree = RB_INITIALIZER(_vm_phys_fictitious_tree); struct vm_phys_fictitious_seg { RB_ENTRY(vm_phys_fictitious_seg) node; /* Memory region data */ vm_paddr_t start; vm_paddr_t end; vm_page_t first_page; }; RB_GENERATE_STATIC(fict_tree, vm_phys_fictitious_seg, node, vm_phys_fictitious_cmp); static struct rwlock vm_phys_fictitious_reg_lock; MALLOC_DEFINE(M_FICT_PAGES, "vm_fictitious", "Fictitious VM pages"); static struct vm_freelist vm_phys_free_queues[MAXMEMDOM][VM_NFREELIST][VM_NFREEPOOL][VM_NFREEORDER]; static int vm_nfreelists; /* * Provides the mapping from VM_FREELIST_* to free list indices (flind). */ static int vm_freelist_to_flind[VM_NFREELIST]; CTASSERT(VM_FREELIST_DEFAULT == 0); #ifdef VM_FREELIST_ISADMA #define VM_ISADMA_BOUNDARY 16777216 #endif #ifdef VM_FREELIST_DMA32 #define VM_DMA32_BOUNDARY ((vm_paddr_t)1 << 32) #endif /* * Enforce the assumptions made by vm_phys_add_seg() and vm_phys_init() about * the ordering of the free list boundaries. */ #if defined(VM_ISADMA_BOUNDARY) && defined(VM_LOWMEM_BOUNDARY) CTASSERT(VM_ISADMA_BOUNDARY < VM_LOWMEM_BOUNDARY); #endif #if defined(VM_LOWMEM_BOUNDARY) && defined(VM_DMA32_BOUNDARY) CTASSERT(VM_LOWMEM_BOUNDARY < VM_DMA32_BOUNDARY); #endif static int cnt_prezero; SYSCTL_INT(_vm_stats_misc, OID_AUTO, cnt_prezero, CTLFLAG_RD, &cnt_prezero, 0, "The number of physical pages prezeroed at idle time"); static int sysctl_vm_phys_free(SYSCTL_HANDLER_ARGS); SYSCTL_OID(_vm, OID_AUTO, phys_free, CTLTYPE_STRING | CTLFLAG_RD, NULL, 0, sysctl_vm_phys_free, "A", "Phys Free Info"); static int sysctl_vm_phys_segs(SYSCTL_HANDLER_ARGS); SYSCTL_OID(_vm, OID_AUTO, phys_segs, CTLTYPE_STRING | CTLFLAG_RD, NULL, 0, sysctl_vm_phys_segs, "A", "Phys Seg Info"); SYSCTL_INT(_vm, OID_AUTO, ndomains, CTLFLAG_RD, &vm_ndomains, 0, "Number of physical memory domains available."); static vm_page_t vm_phys_alloc_domain_pages(int domain, int flind, int pool, int order); static void _vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end, int domain); static void vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end); static int vm_phys_paddr_to_segind(vm_paddr_t pa); static void vm_phys_split_pages(vm_page_t m, int oind, struct vm_freelist *fl, int order); /* * Red-black tree helpers for vm fictitious range management. */ static inline int vm_phys_fictitious_in_range(struct vm_phys_fictitious_seg *p, struct vm_phys_fictitious_seg *range) { KASSERT(range->start != 0 && range->end != 0, ("Invalid range passed on search for vm_fictitious page")); if (p->start >= range->end) return (1); if (p->start < range->start) return (-1); return (0); } static int vm_phys_fictitious_cmp(struct vm_phys_fictitious_seg *p1, struct vm_phys_fictitious_seg *p2) { /* Check if this is a search for a page */ if (p1->end == 0) return (vm_phys_fictitious_in_range(p1, p2)); KASSERT(p2->end != 0, ("Invalid range passed as second parameter to vm fictitious comparison")); /* Searching to add a new range */ if (p1->end <= p2->start) return (-1); if (p1->start >= p2->end) return (1); panic("Trying to add overlapping vm fictitious ranges:\n" "[%#jx:%#jx] and [%#jx:%#jx]", (uintmax_t)p1->start, (uintmax_t)p1->end, (uintmax_t)p2->start, (uintmax_t)p2->end); } static __inline int vm_rr_selectdomain(void) { #if MAXMEMDOM > 1 struct thread *td; td = curthread; td->td_dom_rr_idx++; td->td_dom_rr_idx %= vm_ndomains; return (td->td_dom_rr_idx); #else return (0); #endif } boolean_t vm_phys_domain_intersects(long mask, vm_paddr_t low, vm_paddr_t high) { struct vm_phys_seg *s; int idx; while ((idx = ffsl(mask)) != 0) { idx--; /* ffsl counts from 1 */ mask &= ~(1UL << idx); s = &vm_phys_segs[idx]; if (low < s->end && high > s->start) return (TRUE); } return (FALSE); } /* * Outputs the state of the physical memory allocator, specifically, * the amount of physical memory in each free list. */ static int sysctl_vm_phys_free(SYSCTL_HANDLER_ARGS) { struct sbuf sbuf; struct vm_freelist *fl; int dom, error, flind, oind, pind; error = sysctl_wire_old_buffer(req, 0); if (error != 0) return (error); sbuf_new_for_sysctl(&sbuf, NULL, 128 * vm_ndomains, req); for (dom = 0; dom < vm_ndomains; dom++) { sbuf_printf(&sbuf,"\nDOMAIN %d:\n", dom); for (flind = 0; flind < vm_nfreelists; flind++) { sbuf_printf(&sbuf, "\nFREE LIST %d:\n" "\n ORDER (SIZE) | NUMBER" "\n ", flind); for (pind = 0; pind < VM_NFREEPOOL; pind++) sbuf_printf(&sbuf, " | POOL %d", pind); sbuf_printf(&sbuf, "\n-- "); for (pind = 0; pind < VM_NFREEPOOL; pind++) sbuf_printf(&sbuf, "-- -- "); sbuf_printf(&sbuf, "--\n"); for (oind = VM_NFREEORDER - 1; oind >= 0; oind--) { sbuf_printf(&sbuf, " %2d (%6dK)", oind, 1 << (PAGE_SHIFT - 10 + oind)); for (pind = 0; pind < VM_NFREEPOOL; pind++) { fl = vm_phys_free_queues[dom][flind][pind]; sbuf_printf(&sbuf, " | %6d", fl[oind].lcnt); } sbuf_printf(&sbuf, "\n"); } } } - sbuf_putc(&sbuf, 0); /* nullterm */ error = sbuf_finish(&sbuf); sbuf_delete(&sbuf); return (error); } /* * Outputs the set of physical memory segments. */ static int sysctl_vm_phys_segs(SYSCTL_HANDLER_ARGS) { struct sbuf sbuf; struct vm_phys_seg *seg; int error, segind; error = sysctl_wire_old_buffer(req, 0); if (error != 0) return (error); sbuf_new_for_sysctl(&sbuf, NULL, 128, req); for (segind = 0; segind < vm_phys_nsegs; segind++) { sbuf_printf(&sbuf, "\nSEGMENT %d:\n\n", segind); seg = &vm_phys_segs[segind]; sbuf_printf(&sbuf, "start: %#jx\n", (uintmax_t)seg->start); sbuf_printf(&sbuf, "end: %#jx\n", (uintmax_t)seg->end); sbuf_printf(&sbuf, "domain: %d\n", seg->domain); sbuf_printf(&sbuf, "free list: %p\n", seg->free_queues); } - sbuf_putc(&sbuf, 0); /* nullterm */ error = sbuf_finish(&sbuf); sbuf_delete(&sbuf); return (error); } static void vm_freelist_add(struct vm_freelist *fl, vm_page_t m, int order, int tail) { m->order = order; if (tail) TAILQ_INSERT_TAIL(&fl[order].pl, m, plinks.q); else TAILQ_INSERT_HEAD(&fl[order].pl, m, plinks.q); fl[order].lcnt++; } static void vm_freelist_rem(struct vm_freelist *fl, vm_page_t m, int order) { TAILQ_REMOVE(&fl[order].pl, m, plinks.q); fl[order].lcnt--; m->order = VM_NFREEORDER; } /* * Create a physical memory segment. */ static void _vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end, int domain) { struct vm_phys_seg *seg; KASSERT(vm_phys_nsegs < VM_PHYSSEG_MAX, ("vm_phys_create_seg: increase VM_PHYSSEG_MAX")); KASSERT(domain < vm_ndomains, ("vm_phys_create_seg: invalid domain provided")); seg = &vm_phys_segs[vm_phys_nsegs++]; while (seg > vm_phys_segs && (seg - 1)->start >= end) { *seg = *(seg - 1); seg--; } seg->start = start; seg->end = end; seg->domain = domain; } static void vm_phys_create_seg(vm_paddr_t start, vm_paddr_t end) { int i; if (mem_affinity == NULL) { _vm_phys_create_seg(start, end, 0); return; } for (i = 0;; i++) { if (mem_affinity[i].end == 0) panic("Reached end of affinity info"); if (mem_affinity[i].end <= start) continue; if (mem_affinity[i].start > start) panic("No affinity info for start %jx", (uintmax_t)start); if (mem_affinity[i].end >= end) { _vm_phys_create_seg(start, end, mem_affinity[i].domain); break; } _vm_phys_create_seg(start, mem_affinity[i].end, mem_affinity[i].domain); start = mem_affinity[i].end; } } /* * Add a physical memory segment. */ void vm_phys_add_seg(vm_paddr_t start, vm_paddr_t end) { vm_paddr_t paddr; KASSERT((start & PAGE_MASK) == 0, ("vm_phys_define_seg: start is not page aligned")); KASSERT((end & PAGE_MASK) == 0, ("vm_phys_define_seg: end is not page aligned")); /* * Split the physical memory segment if it spans two or more free * list boundaries. */ paddr = start; #ifdef VM_FREELIST_ISADMA if (paddr < VM_ISADMA_BOUNDARY && end > VM_ISADMA_BOUNDARY) { vm_phys_create_seg(paddr, VM_ISADMA_BOUNDARY); paddr = VM_ISADMA_BOUNDARY; } #endif #ifdef VM_FREELIST_LOWMEM if (paddr < VM_LOWMEM_BOUNDARY && end > VM_LOWMEM_BOUNDARY) { vm_phys_create_seg(paddr, VM_LOWMEM_BOUNDARY); paddr = VM_LOWMEM_BOUNDARY; } #endif #ifdef VM_FREELIST_DMA32 if (paddr < VM_DMA32_BOUNDARY && end > VM_DMA32_BOUNDARY) { vm_phys_create_seg(paddr, VM_DMA32_BOUNDARY); paddr = VM_DMA32_BOUNDARY; } #endif vm_phys_create_seg(paddr, end); } /* * Initialize the physical memory allocator. * * Requires that vm_page_array is initialized! */ void vm_phys_init(void) { struct vm_freelist *fl; struct vm_phys_seg *seg; u_long npages; int dom, flind, freelist, oind, pind, segind; /* * Compute the number of free lists, and generate the mapping from the * manifest constants VM_FREELIST_* to the free list indices. * * Initially, the entries of vm_freelist_to_flind[] are set to either * 0 or 1 to indicate which free lists should be created. */ npages = 0; for (segind = vm_phys_nsegs - 1; segind >= 0; segind--) { seg = &vm_phys_segs[segind]; #ifdef VM_FREELIST_ISADMA if (seg->end <= VM_ISADMA_BOUNDARY) vm_freelist_to_flind[VM_FREELIST_ISADMA] = 1; else #endif #ifdef VM_FREELIST_LOWMEM if (seg->end <= VM_LOWMEM_BOUNDARY) vm_freelist_to_flind[VM_FREELIST_LOWMEM] = 1; else #endif #ifdef VM_FREELIST_DMA32 if ( #ifdef VM_DMA32_NPAGES_THRESHOLD /* * Create the DMA32 free list only if the amount of * physical memory above physical address 4G exceeds the * given threshold. */ npages > VM_DMA32_NPAGES_THRESHOLD && #endif seg->end <= VM_DMA32_BOUNDARY) vm_freelist_to_flind[VM_FREELIST_DMA32] = 1; else #endif { npages += atop(seg->end - seg->start); vm_freelist_to_flind[VM_FREELIST_DEFAULT] = 1; } } /* Change each entry into a running total of the free lists. */ for (freelist = 1; freelist < VM_NFREELIST; freelist++) { vm_freelist_to_flind[freelist] += vm_freelist_to_flind[freelist - 1]; } vm_nfreelists = vm_freelist_to_flind[VM_NFREELIST - 1]; KASSERT(vm_nfreelists > 0, ("vm_phys_init: no free lists")); /* Change each entry into a free list index. */ for (freelist = 0; freelist < VM_NFREELIST; freelist++) vm_freelist_to_flind[freelist]--; /* * Initialize the first_page and free_queues fields of each physical * memory segment. */ #ifdef VM_PHYSSEG_SPARSE npages = 0; #endif for (segind = 0; segind < vm_phys_nsegs; segind++) { seg = &vm_phys_segs[segind]; #ifdef VM_PHYSSEG_SPARSE seg->first_page = &vm_page_array[npages]; npages += atop(seg->end - seg->start); #else seg->first_page = PHYS_TO_VM_PAGE(seg->start); #endif #ifdef VM_FREELIST_ISADMA if (seg->end <= VM_ISADMA_BOUNDARY) { flind = vm_freelist_to_flind[VM_FREELIST_ISADMA]; KASSERT(flind >= 0, ("vm_phys_init: ISADMA flind < 0")); } else #endif #ifdef VM_FREELIST_LOWMEM if (seg->end <= VM_LOWMEM_BOUNDARY) { flind = vm_freelist_to_flind[VM_FREELIST_LOWMEM]; KASSERT(flind >= 0, ("vm_phys_init: LOWMEM flind < 0")); } else #endif #ifdef VM_FREELIST_DMA32 if (seg->end <= VM_DMA32_BOUNDARY) { flind = vm_freelist_to_flind[VM_FREELIST_DMA32]; KASSERT(flind >= 0, ("vm_phys_init: DMA32 flind < 0")); } else #endif { flind = vm_freelist_to_flind[VM_FREELIST_DEFAULT]; KASSERT(flind >= 0, ("vm_phys_init: DEFAULT flind < 0")); } seg->free_queues = &vm_phys_free_queues[seg->domain][flind]; } /* * Initialize the free queues. */ for (dom = 0; dom < vm_ndomains; dom++) { for (flind = 0; flind < vm_nfreelists; flind++) { for (pind = 0; pind < VM_NFREEPOOL; pind++) { fl = vm_phys_free_queues[dom][flind][pind]; for (oind = 0; oind < VM_NFREEORDER; oind++) TAILQ_INIT(&fl[oind].pl); } } } rw_init(&vm_phys_fictitious_reg_lock, "vmfctr"); } /* * Split a contiguous, power of two-sized set of physical pages. */ static __inline void vm_phys_split_pages(vm_page_t m, int oind, struct vm_freelist *fl, int order) { vm_page_t m_buddy; while (oind > order) { oind--; m_buddy = &m[1 << oind]; KASSERT(m_buddy->order == VM_NFREEORDER, ("vm_phys_split_pages: page %p has unexpected order %d", m_buddy, m_buddy->order)); vm_freelist_add(fl, m_buddy, oind, 0); } } /* * Initialize a physical page and add it to the free lists. */ void vm_phys_add_page(vm_paddr_t pa) { vm_page_t m; struct vm_domain *vmd; vm_cnt.v_page_count++; m = vm_phys_paddr_to_vm_page(pa); m->phys_addr = pa; m->queue = PQ_NONE; m->segind = vm_phys_paddr_to_segind(pa); vmd = vm_phys_domain(m); vmd->vmd_page_count++; vmd->vmd_segs |= 1UL << m->segind; KASSERT(m->order == VM_NFREEORDER, ("vm_phys_add_page: page %p has unexpected order %d", m, m->order)); m->pool = VM_FREEPOOL_DEFAULT; pmap_page_init(m); mtx_lock(&vm_page_queue_free_mtx); vm_phys_freecnt_adj(m, 1); vm_phys_free_pages(m, 0); mtx_unlock(&vm_page_queue_free_mtx); } /* * Allocate a contiguous, power of two-sized set of physical pages * from the free lists. * * The free page queues must be locked. */ vm_page_t vm_phys_alloc_pages(int pool, int order) { vm_page_t m; int dom, domain, flind; KASSERT(pool < VM_NFREEPOOL, ("vm_phys_alloc_pages: pool %d is out of range", pool)); KASSERT(order < VM_NFREEORDER, ("vm_phys_alloc_pages: order %d is out of range", order)); for (dom = 0; dom < vm_ndomains; dom++) { domain = vm_rr_selectdomain(); for (flind = 0; flind < vm_nfreelists; flind++) { m = vm_phys_alloc_domain_pages(domain, flind, pool, order); if (m != NULL) return (m); } } return (NULL); } /* * Allocate a contiguous, power of two-sized set of physical pages from the * specified free list. The free list must be specified using one of the * manifest constants VM_FREELIST_*. * * The free page queues must be locked. */ vm_page_t vm_phys_alloc_freelist_pages(int freelist, int pool, int order) { vm_page_t m; int dom, domain; KASSERT(freelist < VM_NFREELIST, ("vm_phys_alloc_freelist_pages: freelist %d is out of range", freelist)); KASSERT(pool < VM_NFREEPOOL, ("vm_phys_alloc_freelist_pages: pool %d is out of range", pool)); KASSERT(order < VM_NFREEORDER, ("vm_phys_alloc_freelist_pages: order %d is out of range", order)); for (dom = 0; dom < vm_ndomains; dom++) { domain = vm_rr_selectdomain(); m = vm_phys_alloc_domain_pages(domain, vm_freelist_to_flind[freelist], pool, order); if (m != NULL) return (m); } return (NULL); } static vm_page_t vm_phys_alloc_domain_pages(int domain, int flind, int pool, int order) { struct vm_freelist *fl; struct vm_freelist *alt; int oind, pind; vm_page_t m; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); fl = &vm_phys_free_queues[domain][flind][pool][0]; for (oind = order; oind < VM_NFREEORDER; oind++) { m = TAILQ_FIRST(&fl[oind].pl); if (m != NULL) { vm_freelist_rem(fl, m, oind); vm_phys_split_pages(m, oind, fl, order); return (m); } } /* * The given pool was empty. Find the largest * contiguous, power-of-two-sized set of pages in any * pool. Transfer these pages to the given pool, and * use them to satisfy the allocation. */ for (oind = VM_NFREEORDER - 1; oind >= order; oind--) { for (pind = 0; pind < VM_NFREEPOOL; pind++) { alt = &vm_phys_free_queues[domain][flind][pind][0]; m = TAILQ_FIRST(&alt[oind].pl); if (m != NULL) { vm_freelist_rem(alt, m, oind); vm_phys_set_pool(pool, m, oind); vm_phys_split_pages(m, oind, fl, order); return (m); } } } return (NULL); } /* * Find the vm_page corresponding to the given physical address. */ vm_page_t vm_phys_paddr_to_vm_page(vm_paddr_t pa) { struct vm_phys_seg *seg; int segind; for (segind = 0; segind < vm_phys_nsegs; segind++) { seg = &vm_phys_segs[segind]; if (pa >= seg->start && pa < seg->end) return (&seg->first_page[atop(pa - seg->start)]); } return (NULL); } vm_page_t vm_phys_fictitious_to_vm_page(vm_paddr_t pa) { struct vm_phys_fictitious_seg tmp, *seg; vm_page_t m; m = NULL; tmp.start = pa; tmp.end = 0; rw_rlock(&vm_phys_fictitious_reg_lock); seg = RB_FIND(fict_tree, &vm_phys_fictitious_tree, &tmp); rw_runlock(&vm_phys_fictitious_reg_lock); if (seg == NULL) return (NULL); m = &seg->first_page[atop(pa - seg->start)]; KASSERT((m->flags & PG_FICTITIOUS) != 0, ("%p not fictitious", m)); return (m); } static inline void vm_phys_fictitious_init_range(vm_page_t range, vm_paddr_t start, long page_count, vm_memattr_t memattr) { long i; for (i = 0; i < page_count; i++) { vm_page_initfake(&range[i], start + PAGE_SIZE * i, memattr); range[i].oflags &= ~VPO_UNMANAGED; range[i].busy_lock = VPB_UNBUSIED; } } int vm_phys_fictitious_reg_range(vm_paddr_t start, vm_paddr_t end, vm_memattr_t memattr) { struct vm_phys_fictitious_seg *seg; vm_page_t fp; long page_count; #ifdef VM_PHYSSEG_DENSE long pi, pe; long dpage_count; #endif KASSERT(start < end, ("Start of segment isn't less than end (start: %jx end: %jx)", (uintmax_t)start, (uintmax_t)end)); page_count = (end - start) / PAGE_SIZE; #ifdef VM_PHYSSEG_DENSE pi = atop(start); pe = atop(end); if (pi >= first_page && (pi - first_page) < vm_page_array_size) { fp = &vm_page_array[pi - first_page]; if ((pe - first_page) > vm_page_array_size) { /* * We have a segment that starts inside * of vm_page_array, but ends outside of it. * * Use vm_page_array pages for those that are * inside of the vm_page_array range, and * allocate the remaining ones. */ dpage_count = vm_page_array_size - (pi - first_page); vm_phys_fictitious_init_range(fp, start, dpage_count, memattr); page_count -= dpage_count; start += ptoa(dpage_count); goto alloc; } /* * We can allocate the full range from vm_page_array, * so there's no need to register the range in the tree. */ vm_phys_fictitious_init_range(fp, start, page_count, memattr); return (0); } else if (pe > first_page && (pe - first_page) < vm_page_array_size) { /* * We have a segment that ends inside of vm_page_array, * but starts outside of it. */ fp = &vm_page_array[0]; dpage_count = pe - first_page; vm_phys_fictitious_init_range(fp, ptoa(first_page), dpage_count, memattr); end -= ptoa(dpage_count); page_count -= dpage_count; goto alloc; } else if (pi < first_page && pe > (first_page + vm_page_array_size)) { /* * Trying to register a fictitious range that expands before * and after vm_page_array. */ return (EINVAL); } else { alloc: #endif fp = malloc(page_count * sizeof(struct vm_page), M_FICT_PAGES, M_WAITOK | M_ZERO); #ifdef VM_PHYSSEG_DENSE } #endif vm_phys_fictitious_init_range(fp, start, page_count, memattr); seg = malloc(sizeof(*seg), M_FICT_PAGES, M_WAITOK | M_ZERO); seg->start = start; seg->end = end; seg->first_page = fp; rw_wlock(&vm_phys_fictitious_reg_lock); RB_INSERT(fict_tree, &vm_phys_fictitious_tree, seg); rw_wunlock(&vm_phys_fictitious_reg_lock); return (0); } void vm_phys_fictitious_unreg_range(vm_paddr_t start, vm_paddr_t end) { struct vm_phys_fictitious_seg *seg, tmp; #ifdef VM_PHYSSEG_DENSE long pi, pe; #endif KASSERT(start < end, ("Start of segment isn't less than end (start: %jx end: %jx)", (uintmax_t)start, (uintmax_t)end)); #ifdef VM_PHYSSEG_DENSE pi = atop(start); pe = atop(end); if (pi >= first_page && (pi - first_page) < vm_page_array_size) { if ((pe - first_page) <= vm_page_array_size) { /* * This segment was allocated using vm_page_array * only, there's nothing to do since those pages * were never added to the tree. */ return; } /* * We have a segment that starts inside * of vm_page_array, but ends outside of it. * * Calculate how many pages were added to the * tree and free them. */ start = ptoa(first_page + vm_page_array_size); } else if (pe > first_page && (pe - first_page) < vm_page_array_size) { /* * We have a segment that ends inside of vm_page_array, * but starts outside of it. */ end = ptoa(first_page); } else if (pi < first_page && pe > (first_page + vm_page_array_size)) { /* Since it's not possible to register such a range, panic. */ panic( "Unregistering not registered fictitious range [%#jx:%#jx]", (uintmax_t)start, (uintmax_t)end); } #endif tmp.start = start; tmp.end = 0; rw_wlock(&vm_phys_fictitious_reg_lock); seg = RB_FIND(fict_tree, &vm_phys_fictitious_tree, &tmp); if (seg->start != start || seg->end != end) { rw_wunlock(&vm_phys_fictitious_reg_lock); panic( "Unregistering not registered fictitious range [%#jx:%#jx]", (uintmax_t)start, (uintmax_t)end); } RB_REMOVE(fict_tree, &vm_phys_fictitious_tree, seg); rw_wunlock(&vm_phys_fictitious_reg_lock); free(seg->first_page, M_FICT_PAGES); free(seg, M_FICT_PAGES); } /* * Find the segment containing the given physical address. */ static int vm_phys_paddr_to_segind(vm_paddr_t pa) { struct vm_phys_seg *seg; int segind; for (segind = 0; segind < vm_phys_nsegs; segind++) { seg = &vm_phys_segs[segind]; if (pa >= seg->start && pa < seg->end) return (segind); } panic("vm_phys_paddr_to_segind: paddr %#jx is not in any segment" , (uintmax_t)pa); } /* * Free a contiguous, power of two-sized set of physical pages. * * The free page queues must be locked. */ void vm_phys_free_pages(vm_page_t m, int order) { struct vm_freelist *fl; struct vm_phys_seg *seg; vm_paddr_t pa; vm_page_t m_buddy; KASSERT(m->order == VM_NFREEORDER, ("vm_phys_free_pages: page %p has unexpected order %d", m, m->order)); KASSERT(m->pool < VM_NFREEPOOL, ("vm_phys_free_pages: page %p has unexpected pool %d", m, m->pool)); KASSERT(order < VM_NFREEORDER, ("vm_phys_free_pages: order %d is out of range", order)); mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); seg = &vm_phys_segs[m->segind]; if (order < VM_NFREEORDER - 1) { pa = VM_PAGE_TO_PHYS(m); do { pa ^= ((vm_paddr_t)1 << (PAGE_SHIFT + order)); if (pa < seg->start || pa >= seg->end) break; m_buddy = &seg->first_page[atop(pa - seg->start)]; if (m_buddy->order != order) break; fl = (*seg->free_queues)[m_buddy->pool]; vm_freelist_rem(fl, m_buddy, order); if (m_buddy->pool != m->pool) vm_phys_set_pool(m->pool, m_buddy, order); order++; pa &= ~(((vm_paddr_t)1 << (PAGE_SHIFT + order)) - 1); m = &seg->first_page[atop(pa - seg->start)]; } while (order < VM_NFREEORDER - 1); } fl = (*seg->free_queues)[m->pool]; vm_freelist_add(fl, m, order, 1); } /* * Free a contiguous, arbitrarily sized set of physical pages. * * The free page queues must be locked. */ void vm_phys_free_contig(vm_page_t m, u_long npages) { u_int n; int order; /* * Avoid unnecessary coalescing by freeing the pages in the largest * possible power-of-two-sized subsets. */ mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); for (;; npages -= n) { /* * Unsigned "min" is used here so that "order" is assigned * "VM_NFREEORDER - 1" when "m"'s physical address is zero * or the low-order bits of its physical address are zero * because the size of a physical address exceeds the size of * a long. */ order = min(ffsl(VM_PAGE_TO_PHYS(m) >> PAGE_SHIFT) - 1, VM_NFREEORDER - 1); n = 1 << order; if (npages < n) break; vm_phys_free_pages(m, order); m += n; } /* The residual "npages" is less than "1 << (VM_NFREEORDER - 1)". */ for (; npages > 0; npages -= n) { order = flsl(npages) - 1; n = 1 << order; vm_phys_free_pages(m, order); m += n; } } /* * Set the pool for a contiguous, power of two-sized set of physical pages. */ void vm_phys_set_pool(int pool, vm_page_t m, int order) { vm_page_t m_tmp; for (m_tmp = m; m_tmp < &m[1 << order]; m_tmp++) m_tmp->pool = pool; } /* * Search for the given physical page "m" in the free lists. If the search * succeeds, remove "m" from the free lists and return TRUE. Otherwise, return * FALSE, indicating that "m" is not in the free lists. * * The free page queues must be locked. */ boolean_t vm_phys_unfree_page(vm_page_t m) { struct vm_freelist *fl; struct vm_phys_seg *seg; vm_paddr_t pa, pa_half; vm_page_t m_set, m_tmp; int order; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); /* * First, find the contiguous, power of two-sized set of free * physical pages containing the given physical page "m" and * assign it to "m_set". */ seg = &vm_phys_segs[m->segind]; for (m_set = m, order = 0; m_set->order == VM_NFREEORDER && order < VM_NFREEORDER - 1; ) { order++; pa = m->phys_addr & (~(vm_paddr_t)0 << (PAGE_SHIFT + order)); if (pa >= seg->start) m_set = &seg->first_page[atop(pa - seg->start)]; else return (FALSE); } if (m_set->order < order) return (FALSE); if (m_set->order == VM_NFREEORDER) return (FALSE); KASSERT(m_set->order < VM_NFREEORDER, ("vm_phys_unfree_page: page %p has unexpected order %d", m_set, m_set->order)); /* * Next, remove "m_set" from the free lists. Finally, extract * "m" from "m_set" using an iterative algorithm: While "m_set" * is larger than a page, shrink "m_set" by returning the half * of "m_set" that does not contain "m" to the free lists. */ fl = (*seg->free_queues)[m_set->pool]; order = m_set->order; vm_freelist_rem(fl, m_set, order); while (order > 0) { order--; pa_half = m_set->phys_addr ^ (1 << (PAGE_SHIFT + order)); if (m->phys_addr < pa_half) m_tmp = &seg->first_page[atop(pa_half - seg->start)]; else { m_tmp = m_set; m_set = &seg->first_page[atop(pa_half - seg->start)]; } vm_freelist_add(fl, m_tmp, order, 0); } KASSERT(m_set == m, ("vm_phys_unfree_page: fatal inconsistency")); return (TRUE); } /* * Try to zero one physical page. Used by an idle priority thread. */ boolean_t vm_phys_zero_pages_idle(void) { static struct vm_freelist *fl; static int flind, oind, pind; vm_page_t m, m_tmp; int domain; domain = vm_rr_selectdomain(); fl = vm_phys_free_queues[domain][0][0]; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); for (;;) { TAILQ_FOREACH_REVERSE(m, &fl[oind].pl, pglist, plinks.q) { for (m_tmp = m; m_tmp < &m[1 << oind]; m_tmp++) { if ((m_tmp->flags & (PG_CACHED | PG_ZERO)) == 0) { vm_phys_unfree_page(m_tmp); vm_phys_freecnt_adj(m, -1); mtx_unlock(&vm_page_queue_free_mtx); pmap_zero_page_idle(m_tmp); m_tmp->flags |= PG_ZERO; mtx_lock(&vm_page_queue_free_mtx); vm_phys_freecnt_adj(m, 1); vm_phys_free_pages(m_tmp, 0); vm_page_zero_count++; cnt_prezero++; return (TRUE); } } } oind++; if (oind == VM_NFREEORDER) { oind = 0; pind++; if (pind == VM_NFREEPOOL) { pind = 0; flind++; if (flind == vm_nfreelists) flind = 0; } fl = vm_phys_free_queues[domain][flind][pind]; } } } /* * Allocate a contiguous set of physical pages of the given size * "npages" from the free lists. All of the physical pages must be at * or above the given physical address "low" and below the given * physical address "high". The given value "alignment" determines the * alignment of the first physical page in the set. If the given value * "boundary" is non-zero, then the set of physical pages cannot cross * any physical address boundary that is a multiple of that value. Both * "alignment" and "boundary" must be a power of two. */ vm_page_t vm_phys_alloc_contig(u_long npages, vm_paddr_t low, vm_paddr_t high, u_long alignment, vm_paddr_t boundary) { struct vm_freelist *fl; struct vm_phys_seg *seg; vm_paddr_t pa, pa_last, size; vm_page_t m, m_ret; u_long npages_end; int dom, domain, flind, oind, order, pind; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); size = npages << PAGE_SHIFT; KASSERT(size != 0, ("vm_phys_alloc_contig: size must not be 0")); KASSERT((alignment & (alignment - 1)) == 0, ("vm_phys_alloc_contig: alignment must be a power of 2")); KASSERT((boundary & (boundary - 1)) == 0, ("vm_phys_alloc_contig: boundary must be a power of 2")); /* Compute the queue that is the best fit for npages. */ for (order = 0; (1 << order) < npages; order++); dom = 0; restartdom: domain = vm_rr_selectdomain(); for (flind = 0; flind < vm_nfreelists; flind++) { for (oind = min(order, VM_NFREEORDER - 1); oind < VM_NFREEORDER; oind++) { for (pind = 0; pind < VM_NFREEPOOL; pind++) { fl = &vm_phys_free_queues[domain][flind][pind][0]; TAILQ_FOREACH(m_ret, &fl[oind].pl, plinks.q) { /* * A free list may contain physical pages * from one or more segments. */ seg = &vm_phys_segs[m_ret->segind]; if (seg->start > high || low >= seg->end) continue; /* * Is the size of this allocation request * larger than the largest block size? */ if (order >= VM_NFREEORDER) { /* * Determine if a sufficient number * of subsequent blocks to satisfy * the allocation request are free. */ pa = VM_PAGE_TO_PHYS(m_ret); pa_last = pa + size; for (;;) { pa += 1 << (PAGE_SHIFT + VM_NFREEORDER - 1); if (pa >= pa_last) break; if (pa < seg->start || pa >= seg->end) break; m = &seg->first_page[atop(pa - seg->start)]; if (m->order != VM_NFREEORDER - 1) break; } /* If not, continue to the next block. */ if (pa < pa_last) continue; } /* * Determine if the blocks are within the given range, * satisfy the given alignment, and do not cross the * given boundary. */ pa = VM_PAGE_TO_PHYS(m_ret); if (pa >= low && pa + size <= high && (pa & (alignment - 1)) == 0 && ((pa ^ (pa + size - 1)) & ~(boundary - 1)) == 0) goto done; } } } } if (++dom < vm_ndomains) goto restartdom; return (NULL); done: for (m = m_ret; m < &m_ret[npages]; m = &m[1 << oind]) { fl = (*seg->free_queues)[m->pool]; vm_freelist_rem(fl, m, m->order); } if (m_ret->pool != VM_FREEPOOL_DEFAULT) vm_phys_set_pool(VM_FREEPOOL_DEFAULT, m_ret, oind); fl = (*seg->free_queues)[m_ret->pool]; vm_phys_split_pages(m_ret, oind, fl, order); /* Return excess pages to the free lists. */ npages_end = roundup2(npages, 1 << imin(oind, order)); if (npages < npages_end) vm_phys_free_contig(&m_ret[npages], npages_end - npages); return (m_ret); } #ifdef DDB /* * Show the number of physical pages in each of the free lists. */ DB_SHOW_COMMAND(freepages, db_show_freepages) { struct vm_freelist *fl; int flind, oind, pind, dom; for (dom = 0; dom < vm_ndomains; dom++) { db_printf("DOMAIN: %d\n", dom); for (flind = 0; flind < vm_nfreelists; flind++) { db_printf("FREE LIST %d:\n" "\n ORDER (SIZE) | NUMBER" "\n ", flind); for (pind = 0; pind < VM_NFREEPOOL; pind++) db_printf(" | POOL %d", pind); db_printf("\n-- "); for (pind = 0; pind < VM_NFREEPOOL; pind++) db_printf("-- -- "); db_printf("--\n"); for (oind = VM_NFREEORDER - 1; oind >= 0; oind--) { db_printf(" %2.2d (%6.6dK)", oind, 1 << (PAGE_SHIFT - 10 + oind)); for (pind = 0; pind < VM_NFREEPOOL; pind++) { fl = vm_phys_free_queues[dom][flind][pind]; db_printf(" | %6.6d", fl[oind].lcnt); } db_printf("\n"); } db_printf("\n"); } db_printf("\n"); } } #endif Index: head/sys/vm/vm_reserv.c =================================================================== --- head/sys/vm/vm_reserv.c (revision 279981) +++ head/sys/vm/vm_reserv.c (revision 279982) @@ -1,1073 +1,1072 @@ /*- * Copyright (c) 2002-2006 Rice University * Copyright (c) 2007-2011 Alan L. Cox * All rights reserved. * * This software was developed for the FreeBSD Project by Alan L. Cox, * Olivier Crameri, Peter Druschel, Sitaram Iyer, and Juan Navarro. * * 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 COPYRIGHT HOLDERS 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 COPYRIGHT * HOLDERS 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. */ /* * Superpage reservation management module * * Any external functions defined by this module are only to be used by the * virtual memory system. */ #include __FBSDID("$FreeBSD$"); #include "opt_vm.h" #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include /* * The reservation system supports the speculative allocation of large physical * pages ("superpages"). Speculative allocation enables the fully-automatic * utilization of superpages by the virtual memory system. In other words, no * programmatic directives are required to use superpages. */ #if VM_NRESERVLEVEL > 0 /* * The number of small pages that are contained in a level 0 reservation */ #define VM_LEVEL_0_NPAGES (1 << VM_LEVEL_0_ORDER) /* * The number of bits by which a physical address is shifted to obtain the * reservation number */ #define VM_LEVEL_0_SHIFT (VM_LEVEL_0_ORDER + PAGE_SHIFT) /* * The size of a level 0 reservation in bytes */ #define VM_LEVEL_0_SIZE (1 << VM_LEVEL_0_SHIFT) /* * Computes the index of the small page underlying the given (object, pindex) * within the reservation's array of small pages. */ #define VM_RESERV_INDEX(object, pindex) \ (((object)->pg_color + (pindex)) & (VM_LEVEL_0_NPAGES - 1)) /* * The size of a population map entry */ typedef u_long popmap_t; /* * The number of bits in a population map entry */ #define NBPOPMAP (NBBY * sizeof(popmap_t)) /* * The number of population map entries in a reservation */ #define NPOPMAP howmany(VM_LEVEL_0_NPAGES, NBPOPMAP) /* * Clear a bit in the population map. */ static __inline void popmap_clear(popmap_t popmap[], int i) { popmap[i / NBPOPMAP] &= ~(1UL << (i % NBPOPMAP)); } /* * Set a bit in the population map. */ static __inline void popmap_set(popmap_t popmap[], int i) { popmap[i / NBPOPMAP] |= 1UL << (i % NBPOPMAP); } /* * Is a bit in the population map clear? */ static __inline boolean_t popmap_is_clear(popmap_t popmap[], int i) { return ((popmap[i / NBPOPMAP] & (1UL << (i % NBPOPMAP))) == 0); } /* * Is a bit in the population map set? */ static __inline boolean_t popmap_is_set(popmap_t popmap[], int i) { return ((popmap[i / NBPOPMAP] & (1UL << (i % NBPOPMAP))) != 0); } /* * The reservation structure * * A reservation structure is constructed whenever a large physical page is * speculatively allocated to an object. The reservation provides the small * physical pages for the range [pindex, pindex + VM_LEVEL_0_NPAGES) of offsets * within that object. The reservation's "popcnt" tracks the number of these * small physical pages that are in use at any given time. When and if the * reservation is not fully utilized, it appears in the queue of partially- * populated reservations. The reservation always appears on the containing * object's list of reservations. * * A partially-populated reservation can be broken and reclaimed at any time. */ struct vm_reserv { TAILQ_ENTRY(vm_reserv) partpopq; LIST_ENTRY(vm_reserv) objq; vm_object_t object; /* containing object */ vm_pindex_t pindex; /* offset within object */ vm_page_t pages; /* first page of a superpage */ int popcnt; /* # of pages in use */ char inpartpopq; popmap_t popmap[NPOPMAP]; /* bit vector of used pages */ }; /* * The reservation array * * This array is analoguous in function to vm_page_array. It differs in the * respect that it may contain a greater number of useful reservation * structures than there are (physical) superpages. These "invalid" * reservation structures exist to trade-off space for time in the * implementation of vm_reserv_from_page(). Invalid reservation structures are * distinguishable from "valid" reservation structures by inspecting the * reservation's "pages" field. Invalid reservation structures have a NULL * "pages" field. * * vm_reserv_from_page() maps a small (physical) page to an element of this * array by computing a physical reservation number from the page's physical * address. The physical reservation number is used as the array index. * * An "active" reservation is a valid reservation structure that has a non-NULL * "object" field and a non-zero "popcnt" field. In other words, every active * reservation belongs to a particular object. Moreover, every active * reservation has an entry in the containing object's list of reservations. */ static vm_reserv_t vm_reserv_array; /* * The partially-populated reservation queue * * This queue enables the fast recovery of an unused cached or free small page * from a partially-populated reservation. The reservation at the head of * this queue is the least-recently-changed, partially-populated reservation. * * Access to this queue is synchronized by the free page queue lock. */ static TAILQ_HEAD(, vm_reserv) vm_rvq_partpop = TAILQ_HEAD_INITIALIZER(vm_rvq_partpop); static SYSCTL_NODE(_vm, OID_AUTO, reserv, CTLFLAG_RD, 0, "Reservation Info"); static long vm_reserv_broken; SYSCTL_LONG(_vm_reserv, OID_AUTO, broken, CTLFLAG_RD, &vm_reserv_broken, 0, "Cumulative number of broken reservations"); static long vm_reserv_freed; SYSCTL_LONG(_vm_reserv, OID_AUTO, freed, CTLFLAG_RD, &vm_reserv_freed, 0, "Cumulative number of freed reservations"); static int sysctl_vm_reserv_partpopq(SYSCTL_HANDLER_ARGS); SYSCTL_OID(_vm_reserv, OID_AUTO, partpopq, CTLTYPE_STRING | CTLFLAG_RD, NULL, 0, sysctl_vm_reserv_partpopq, "A", "Partially-populated reservation queues"); static long vm_reserv_reclaimed; SYSCTL_LONG(_vm_reserv, OID_AUTO, reclaimed, CTLFLAG_RD, &vm_reserv_reclaimed, 0, "Cumulative number of reclaimed reservations"); static void vm_reserv_break(vm_reserv_t rv, vm_page_t m); static void vm_reserv_depopulate(vm_reserv_t rv, int index); static vm_reserv_t vm_reserv_from_page(vm_page_t m); static boolean_t vm_reserv_has_pindex(vm_reserv_t rv, vm_pindex_t pindex); static void vm_reserv_populate(vm_reserv_t rv, int index); static void vm_reserv_reclaim(vm_reserv_t rv); /* * Describes the current state of the partially-populated reservation queue. */ static int sysctl_vm_reserv_partpopq(SYSCTL_HANDLER_ARGS) { struct sbuf sbuf; vm_reserv_t rv; int counter, error, level, unused_pages; error = sysctl_wire_old_buffer(req, 0); if (error != 0) return (error); sbuf_new_for_sysctl(&sbuf, NULL, 128, req); sbuf_printf(&sbuf, "\nLEVEL SIZE NUMBER\n\n"); for (level = -1; level <= VM_NRESERVLEVEL - 2; level++) { counter = 0; unused_pages = 0; mtx_lock(&vm_page_queue_free_mtx); TAILQ_FOREACH(rv, &vm_rvq_partpop/*[level]*/, partpopq) { counter++; unused_pages += VM_LEVEL_0_NPAGES - rv->popcnt; } mtx_unlock(&vm_page_queue_free_mtx); sbuf_printf(&sbuf, "%5d: %6dK, %6d\n", level, unused_pages * ((int)PAGE_SIZE / 1024), counter); } - sbuf_putc(&sbuf, 0); /* nullterm */ error = sbuf_finish(&sbuf); sbuf_delete(&sbuf); return (error); } /* * Reduces the given reservation's population count. If the population count * becomes zero, the reservation is destroyed. Additionally, moves the * reservation to the tail of the partially-populated reservation queue if the * population count is non-zero. * * The free page queue lock must be held. */ static void vm_reserv_depopulate(vm_reserv_t rv, int index) { mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); KASSERT(rv->object != NULL, ("vm_reserv_depopulate: reserv %p is free", rv)); KASSERT(popmap_is_set(rv->popmap, index), ("vm_reserv_depopulate: reserv %p's popmap[%d] is clear", rv, index)); KASSERT(rv->popcnt > 0, ("vm_reserv_depopulate: reserv %p's popcnt is corrupted", rv)); if (rv->inpartpopq) { TAILQ_REMOVE(&vm_rvq_partpop, rv, partpopq); rv->inpartpopq = FALSE; } else { KASSERT(rv->pages->psind == 1, ("vm_reserv_depopulate: reserv %p is already demoted", rv)); rv->pages->psind = 0; } popmap_clear(rv->popmap, index); rv->popcnt--; if (rv->popcnt == 0) { LIST_REMOVE(rv, objq); rv->object = NULL; vm_phys_free_pages(rv->pages, VM_LEVEL_0_ORDER); vm_reserv_freed++; } else { rv->inpartpopq = TRUE; TAILQ_INSERT_TAIL(&vm_rvq_partpop, rv, partpopq); } } /* * Returns the reservation to which the given page might belong. */ static __inline vm_reserv_t vm_reserv_from_page(vm_page_t m) { return (&vm_reserv_array[VM_PAGE_TO_PHYS(m) >> VM_LEVEL_0_SHIFT]); } /* * Returns TRUE if the given reservation contains the given page index and * FALSE otherwise. */ static __inline boolean_t vm_reserv_has_pindex(vm_reserv_t rv, vm_pindex_t pindex) { return (((pindex - rv->pindex) & ~(VM_LEVEL_0_NPAGES - 1)) == 0); } /* * Increases the given reservation's population count. Moves the reservation * to the tail of the partially-populated reservation queue. * * The free page queue must be locked. */ static void vm_reserv_populate(vm_reserv_t rv, int index) { mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); KASSERT(rv->object != NULL, ("vm_reserv_populate: reserv %p is free", rv)); KASSERT(popmap_is_clear(rv->popmap, index), ("vm_reserv_populate: reserv %p's popmap[%d] is set", rv, index)); KASSERT(rv->popcnt < VM_LEVEL_0_NPAGES, ("vm_reserv_populate: reserv %p is already full", rv)); KASSERT(rv->pages->psind == 0, ("vm_reserv_populate: reserv %p is already promoted", rv)); if (rv->inpartpopq) { TAILQ_REMOVE(&vm_rvq_partpop, rv, partpopq); rv->inpartpopq = FALSE; } popmap_set(rv->popmap, index); rv->popcnt++; if (rv->popcnt < VM_LEVEL_0_NPAGES) { rv->inpartpopq = TRUE; TAILQ_INSERT_TAIL(&vm_rvq_partpop, rv, partpopq); } else rv->pages->psind = 1; } /* * Allocates a contiguous set of physical pages of the given size "npages" * from existing or newly created reservations. All of the physical pages * must be at or above the given physical address "low" and below the given * physical address "high". The given value "alignment" determines the * alignment of the first physical page in the set. If the given value * "boundary" is non-zero, then the set of physical pages cannot cross any * physical address boundary that is a multiple of that value. Both * "alignment" and "boundary" must be a power of two. * * The object and free page queue must be locked. */ vm_page_t vm_reserv_alloc_contig(vm_object_t object, vm_pindex_t pindex, u_long npages, vm_paddr_t low, vm_paddr_t high, u_long alignment, vm_paddr_t boundary) { vm_paddr_t pa, size; vm_page_t m, m_ret, mpred, msucc; vm_pindex_t first, leftcap, rightcap; vm_reserv_t rv; u_long allocpages, maxpages, minpages; int i, index, n; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); VM_OBJECT_ASSERT_WLOCKED(object); KASSERT(npages != 0, ("vm_reserv_alloc_contig: npages is 0")); /* * Is a reservation fundamentally impossible? */ if (pindex < VM_RESERV_INDEX(object, pindex) || pindex + npages > object->size) return (NULL); /* * All reservations of a particular size have the same alignment. * Assuming that the first page is allocated from a reservation, the * least significant bits of its physical address can be determined * from its offset from the beginning of the reservation and the size * of the reservation. * * Could the specified index within a reservation of the smallest * possible size satisfy the alignment and boundary requirements? */ pa = VM_RESERV_INDEX(object, pindex) << PAGE_SHIFT; if ((pa & (alignment - 1)) != 0) return (NULL); size = npages << PAGE_SHIFT; if (((pa ^ (pa + size - 1)) & ~(boundary - 1)) != 0) return (NULL); /* * Look for an existing reservation. */ mpred = vm_radix_lookup_le(&object->rtree, pindex); if (mpred != NULL) { KASSERT(mpred->pindex < pindex, ("vm_reserv_alloc_contig: pindex already allocated")); rv = vm_reserv_from_page(mpred); if (rv->object == object && vm_reserv_has_pindex(rv, pindex)) goto found; msucc = TAILQ_NEXT(mpred, listq); } else msucc = TAILQ_FIRST(&object->memq); if (msucc != NULL) { KASSERT(msucc->pindex > pindex, ("vm_reserv_alloc_contig: pindex already allocated")); rv = vm_reserv_from_page(msucc); if (rv->object == object && vm_reserv_has_pindex(rv, pindex)) goto found; } /* * Could at least one reservation fit between the first index to the * left that can be used ("leftcap") and the first index to the right * that cannot be used ("rightcap")? */ first = pindex - VM_RESERV_INDEX(object, pindex); if (mpred != NULL) { if ((rv = vm_reserv_from_page(mpred))->object != object) leftcap = mpred->pindex + 1; else leftcap = rv->pindex + VM_LEVEL_0_NPAGES; if (leftcap > first) return (NULL); } minpages = VM_RESERV_INDEX(object, pindex) + npages; maxpages = roundup2(minpages, VM_LEVEL_0_NPAGES); allocpages = maxpages; if (msucc != NULL) { if ((rv = vm_reserv_from_page(msucc))->object != object) rightcap = msucc->pindex; else rightcap = rv->pindex; if (first + maxpages > rightcap) { if (maxpages == VM_LEVEL_0_NPAGES) return (NULL); /* * At least one reservation will fit between "leftcap" * and "rightcap". However, a reservation for the * last of the requested pages will not fit. Reduce * the size of the upcoming allocation accordingly. */ allocpages = minpages; } } /* * Would the last new reservation extend past the end of the object? */ if (first + maxpages > object->size) { /* * Don't allocate the last new reservation if the object is a * vnode or backed by another object that is a vnode. */ if (object->type == OBJT_VNODE || (object->backing_object != NULL && object->backing_object->type == OBJT_VNODE)) { if (maxpages == VM_LEVEL_0_NPAGES) return (NULL); allocpages = minpages; } /* Speculate that the object may grow. */ } /* * Allocate the physical pages. The alignment and boundary specified * for this allocation may be different from the alignment and * boundary specified for the requested pages. For instance, the * specified index may not be the first page within the first new * reservation. */ m = vm_phys_alloc_contig(allocpages, low, high, ulmax(alignment, VM_LEVEL_0_SIZE), boundary > VM_LEVEL_0_SIZE ? boundary : 0); if (m == NULL) return (NULL); /* * The allocated physical pages always begin at a reservation * boundary, but they do not always end at a reservation boundary. * Initialize every reservation that is completely covered by the * allocated physical pages. */ m_ret = NULL; index = VM_RESERV_INDEX(object, pindex); do { rv = vm_reserv_from_page(m); KASSERT(rv->pages == m, ("vm_reserv_alloc_contig: reserv %p's pages is corrupted", rv)); KASSERT(rv->object == NULL, ("vm_reserv_alloc_contig: reserv %p isn't free", rv)); LIST_INSERT_HEAD(&object->rvq, rv, objq); rv->object = object; rv->pindex = first; KASSERT(rv->popcnt == 0, ("vm_reserv_alloc_contig: reserv %p's popcnt is corrupted", rv)); KASSERT(!rv->inpartpopq, ("vm_reserv_alloc_contig: reserv %p's inpartpopq is TRUE", rv)); for (i = 0; i < NPOPMAP; i++) KASSERT(rv->popmap[i] == 0, ("vm_reserv_alloc_contig: reserv %p's popmap is corrupted", rv)); n = ulmin(VM_LEVEL_0_NPAGES - index, npages); for (i = 0; i < n; i++) vm_reserv_populate(rv, index + i); npages -= n; if (m_ret == NULL) { m_ret = &rv->pages[index]; index = 0; } m += VM_LEVEL_0_NPAGES; first += VM_LEVEL_0_NPAGES; allocpages -= VM_LEVEL_0_NPAGES; } while (allocpages >= VM_LEVEL_0_NPAGES); return (m_ret); /* * Found a matching reservation. */ found: index = VM_RESERV_INDEX(object, pindex); /* Does the allocation fit within the reservation? */ if (index + npages > VM_LEVEL_0_NPAGES) return (NULL); m = &rv->pages[index]; pa = VM_PAGE_TO_PHYS(m); if (pa < low || pa + size > high || (pa & (alignment - 1)) != 0 || ((pa ^ (pa + size - 1)) & ~(boundary - 1)) != 0) return (NULL); /* Handle vm_page_rename(m, new_object, ...). */ for (i = 0; i < npages; i++) if (popmap_is_set(rv->popmap, index + i)) return (NULL); for (i = 0; i < npages; i++) vm_reserv_populate(rv, index + i); return (m); } /* * Allocates a page from an existing or newly-created reservation. * * The page "mpred" must immediately precede the offset "pindex" within the * specified object. * * The object and free page queue must be locked. */ vm_page_t vm_reserv_alloc_page(vm_object_t object, vm_pindex_t pindex, vm_page_t mpred) { vm_page_t m, msucc; vm_pindex_t first, leftcap, rightcap; vm_reserv_t rv; int i, index; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); VM_OBJECT_ASSERT_WLOCKED(object); /* * Is a reservation fundamentally impossible? */ if (pindex < VM_RESERV_INDEX(object, pindex) || pindex >= object->size) return (NULL); /* * Look for an existing reservation. */ if (mpred != NULL) { KASSERT(mpred->object == object, ("vm_reserv_alloc_page: object doesn't contain mpred")); KASSERT(mpred->pindex < pindex, ("vm_reserv_alloc_page: mpred doesn't precede pindex")); rv = vm_reserv_from_page(mpred); if (rv->object == object && vm_reserv_has_pindex(rv, pindex)) goto found; msucc = TAILQ_NEXT(mpred, listq); } else msucc = TAILQ_FIRST(&object->memq); if (msucc != NULL) { KASSERT(msucc->pindex > pindex, ("vm_reserv_alloc_page: msucc doesn't succeed pindex")); rv = vm_reserv_from_page(msucc); if (rv->object == object && vm_reserv_has_pindex(rv, pindex)) goto found; } /* * Could a reservation fit between the first index to the left that * can be used and the first index to the right that cannot be used? */ first = pindex - VM_RESERV_INDEX(object, pindex); if (mpred != NULL) { if ((rv = vm_reserv_from_page(mpred))->object != object) leftcap = mpred->pindex + 1; else leftcap = rv->pindex + VM_LEVEL_0_NPAGES; if (leftcap > first) return (NULL); } if (msucc != NULL) { if ((rv = vm_reserv_from_page(msucc))->object != object) rightcap = msucc->pindex; else rightcap = rv->pindex; if (first + VM_LEVEL_0_NPAGES > rightcap) return (NULL); } /* * Would a new reservation extend past the end of the object? */ if (first + VM_LEVEL_0_NPAGES > object->size) { /* * Don't allocate a new reservation if the object is a vnode or * backed by another object that is a vnode. */ if (object->type == OBJT_VNODE || (object->backing_object != NULL && object->backing_object->type == OBJT_VNODE)) return (NULL); /* Speculate that the object may grow. */ } /* * Allocate and populate the new reservation. */ m = vm_phys_alloc_pages(VM_FREEPOOL_DEFAULT, VM_LEVEL_0_ORDER); if (m == NULL) return (NULL); rv = vm_reserv_from_page(m); KASSERT(rv->pages == m, ("vm_reserv_alloc_page: reserv %p's pages is corrupted", rv)); KASSERT(rv->object == NULL, ("vm_reserv_alloc_page: reserv %p isn't free", rv)); LIST_INSERT_HEAD(&object->rvq, rv, objq); rv->object = object; rv->pindex = first; KASSERT(rv->popcnt == 0, ("vm_reserv_alloc_page: reserv %p's popcnt is corrupted", rv)); KASSERT(!rv->inpartpopq, ("vm_reserv_alloc_page: reserv %p's inpartpopq is TRUE", rv)); for (i = 0; i < NPOPMAP; i++) KASSERT(rv->popmap[i] == 0, ("vm_reserv_alloc_page: reserv %p's popmap is corrupted", rv)); index = VM_RESERV_INDEX(object, pindex); vm_reserv_populate(rv, index); return (&rv->pages[index]); /* * Found a matching reservation. */ found: index = VM_RESERV_INDEX(object, pindex); m = &rv->pages[index]; /* Handle vm_page_rename(m, new_object, ...). */ if (popmap_is_set(rv->popmap, index)) return (NULL); vm_reserv_populate(rv, index); return (m); } /* * Breaks the given reservation. Except for the specified cached or free * page, all cached and free pages in the reservation are returned to the * physical memory allocator. The reservation's population count and map are * reset to their initial state. * * The given reservation must not be in the partially-populated reservation * queue. The free page queue lock must be held. */ static void vm_reserv_break(vm_reserv_t rv, vm_page_t m) { int begin_zeroes, hi, i, lo; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); KASSERT(rv->object != NULL, ("vm_reserv_break: reserv %p is free", rv)); KASSERT(!rv->inpartpopq, ("vm_reserv_break: reserv %p's inpartpopq is TRUE", rv)); LIST_REMOVE(rv, objq); rv->object = NULL; if (m != NULL) { /* * Since the reservation is being broken, there is no harm in * abusing the population map to stop "m" from being returned * to the physical memory allocator. */ i = m - rv->pages; KASSERT(popmap_is_clear(rv->popmap, i), ("vm_reserv_break: reserv %p's popmap is corrupted", rv)); popmap_set(rv->popmap, i); rv->popcnt++; } i = hi = 0; do { /* Find the next 0 bit. Any previous 0 bits are < "hi". */ lo = ffsl(~(((1UL << hi) - 1) | rv->popmap[i])); if (lo == 0) { /* Redundantly clears bits < "hi". */ rv->popmap[i] = 0; rv->popcnt -= NBPOPMAP - hi; while (++i < NPOPMAP) { lo = ffsl(~rv->popmap[i]); if (lo == 0) { rv->popmap[i] = 0; rv->popcnt -= NBPOPMAP; } else break; } if (i == NPOPMAP) break; hi = 0; } KASSERT(lo > 0, ("vm_reserv_break: lo is %d", lo)); /* Convert from ffsl() to ordinary bit numbering. */ lo--; if (lo > 0) { /* Redundantly clears bits < "hi". */ rv->popmap[i] &= ~((1UL << lo) - 1); rv->popcnt -= lo - hi; } begin_zeroes = NBPOPMAP * i + lo; /* Find the next 1 bit. */ do hi = ffsl(rv->popmap[i]); while (hi == 0 && ++i < NPOPMAP); if (i != NPOPMAP) /* Convert from ffsl() to ordinary bit numbering. */ hi--; vm_phys_free_contig(&rv->pages[begin_zeroes], NBPOPMAP * i + hi - begin_zeroes); } while (i < NPOPMAP); KASSERT(rv->popcnt == 0, ("vm_reserv_break: reserv %p's popcnt is corrupted", rv)); vm_reserv_broken++; } /* * Breaks all reservations belonging to the given object. */ void vm_reserv_break_all(vm_object_t object) { vm_reserv_t rv; mtx_lock(&vm_page_queue_free_mtx); while ((rv = LIST_FIRST(&object->rvq)) != NULL) { KASSERT(rv->object == object, ("vm_reserv_break_all: reserv %p is corrupted", rv)); if (rv->inpartpopq) { TAILQ_REMOVE(&vm_rvq_partpop, rv, partpopq); rv->inpartpopq = FALSE; } vm_reserv_break(rv, NULL); } mtx_unlock(&vm_page_queue_free_mtx); } /* * Frees the given page if it belongs to a reservation. Returns TRUE if the * page is freed and FALSE otherwise. * * The free page queue lock must be held. */ boolean_t vm_reserv_free_page(vm_page_t m) { vm_reserv_t rv; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); rv = vm_reserv_from_page(m); if (rv->object == NULL) return (FALSE); if ((m->flags & PG_CACHED) != 0 && m->pool != VM_FREEPOOL_CACHE) vm_phys_set_pool(VM_FREEPOOL_CACHE, rv->pages, VM_LEVEL_0_ORDER); vm_reserv_depopulate(rv, m - rv->pages); return (TRUE); } /* * Initializes the reservation management system. Specifically, initializes * the reservation array. * * Requires that vm_page_array and first_page are initialized! */ void vm_reserv_init(void) { vm_paddr_t paddr; struct vm_phys_seg *seg; int segind; /* * Initialize the reservation array. Specifically, initialize the * "pages" field for every element that has an underlying superpage. */ for (segind = 0; segind < vm_phys_nsegs; segind++) { seg = &vm_phys_segs[segind]; paddr = roundup2(seg->start, VM_LEVEL_0_SIZE); while (paddr + VM_LEVEL_0_SIZE <= seg->end) { vm_reserv_array[paddr >> VM_LEVEL_0_SHIFT].pages = PHYS_TO_VM_PAGE(paddr); paddr += VM_LEVEL_0_SIZE; } } } /* * Returns a reservation level if the given page belongs to a fully-populated * reservation and -1 otherwise. */ int vm_reserv_level_iffullpop(vm_page_t m) { vm_reserv_t rv; rv = vm_reserv_from_page(m); return (rv->popcnt == VM_LEVEL_0_NPAGES ? 0 : -1); } /* * Prepare for the reactivation of a cached page. * * First, suppose that the given page "m" was allocated individually, i.e., not * as part of a reservation, and cached. Then, suppose a reservation * containing "m" is allocated by the same object. Although "m" and the * reservation belong to the same object, "m"'s pindex may not match the * reservation's. * * The free page queue must be locked. */ boolean_t vm_reserv_reactivate_page(vm_page_t m) { vm_reserv_t rv; int index; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); rv = vm_reserv_from_page(m); if (rv->object == NULL) return (FALSE); KASSERT((m->flags & PG_CACHED) != 0, ("vm_reserv_reactivate_page: page %p is not cached", m)); if (m->object == rv->object && m->pindex - rv->pindex == (index = VM_RESERV_INDEX(m->object, m->pindex))) vm_reserv_populate(rv, index); else { KASSERT(rv->inpartpopq, ("vm_reserv_reactivate_page: reserv %p's inpartpopq is FALSE", rv)); TAILQ_REMOVE(&vm_rvq_partpop, rv, partpopq); rv->inpartpopq = FALSE; /* Don't release "m" to the physical memory allocator. */ vm_reserv_break(rv, m); } return (TRUE); } /* * Breaks the given partially-populated reservation, releasing its cached and * free pages to the physical memory allocator. * * The free page queue lock must be held. */ static void vm_reserv_reclaim(vm_reserv_t rv) { mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); KASSERT(rv->inpartpopq, ("vm_reserv_reclaim: reserv %p's inpartpopq is FALSE", rv)); TAILQ_REMOVE(&vm_rvq_partpop, rv, partpopq); rv->inpartpopq = FALSE; vm_reserv_break(rv, NULL); vm_reserv_reclaimed++; } /* * Breaks the reservation at the head of the partially-populated reservation * queue, releasing its cached and free pages to the physical memory * allocator. Returns TRUE if a reservation is broken and FALSE otherwise. * * The free page queue lock must be held. */ boolean_t vm_reserv_reclaim_inactive(void) { vm_reserv_t rv; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); if ((rv = TAILQ_FIRST(&vm_rvq_partpop)) != NULL) { vm_reserv_reclaim(rv); return (TRUE); } return (FALSE); } /* * Searches the partially-populated reservation queue for the least recently * active reservation with unused pages, i.e., cached or free, that satisfy the * given request for contiguous physical memory. If a satisfactory reservation * is found, it is broken. Returns TRUE if a reservation is broken and FALSE * otherwise. * * The free page queue lock must be held. */ boolean_t vm_reserv_reclaim_contig(u_long npages, vm_paddr_t low, vm_paddr_t high, u_long alignment, vm_paddr_t boundary) { vm_paddr_t pa, size; vm_reserv_t rv; int hi, i, lo, next_free; mtx_assert(&vm_page_queue_free_mtx, MA_OWNED); if (npages > VM_LEVEL_0_NPAGES - 1) return (FALSE); size = npages << PAGE_SHIFT; TAILQ_FOREACH(rv, &vm_rvq_partpop, partpopq) { pa = VM_PAGE_TO_PHYS(&rv->pages[VM_LEVEL_0_NPAGES - 1]); if (pa + PAGE_SIZE - size < low) { /* This entire reservation is too low; go to next. */ continue; } pa = VM_PAGE_TO_PHYS(&rv->pages[0]); if (pa + size > high) { /* This entire reservation is too high; go to next. */ continue; } if (pa < low) { /* Start the search for free pages at "low". */ i = (low - pa) / NBPOPMAP; hi = (low - pa) % NBPOPMAP; } else i = hi = 0; do { /* Find the next free page. */ lo = ffsl(~(((1UL << hi) - 1) | rv->popmap[i])); while (lo == 0 && ++i < NPOPMAP) lo = ffsl(~rv->popmap[i]); if (i == NPOPMAP) break; /* Convert from ffsl() to ordinary bit numbering. */ lo--; next_free = NBPOPMAP * i + lo; pa = VM_PAGE_TO_PHYS(&rv->pages[next_free]); KASSERT(pa >= low, ("vm_reserv_reclaim_contig: pa is too low")); if (pa + size > high) { /* The rest of this reservation is too high. */ break; } else if ((pa & (alignment - 1)) != 0 || ((pa ^ (pa + size - 1)) & ~(boundary - 1)) != 0) { /* Continue with this reservation. */ hi = lo; continue; } /* Find the next used page. */ hi = ffsl(rv->popmap[i] & ~((1UL << lo) - 1)); while (hi == 0 && ++i < NPOPMAP) { if ((NBPOPMAP * i - next_free) * PAGE_SIZE >= size) { vm_reserv_reclaim(rv); return (TRUE); } hi = ffsl(rv->popmap[i]); } /* Convert from ffsl() to ordinary bit numbering. */ if (i != NPOPMAP) hi--; if ((NBPOPMAP * i + hi - next_free) * PAGE_SIZE >= size) { vm_reserv_reclaim(rv); return (TRUE); } } while (i < NPOPMAP); } return (FALSE); } /* * Transfers the reservation underlying the given page to a new object. * * The object must be locked. */ void vm_reserv_rename(vm_page_t m, vm_object_t new_object, vm_object_t old_object, vm_pindex_t old_object_offset) { vm_reserv_t rv; VM_OBJECT_ASSERT_WLOCKED(new_object); rv = vm_reserv_from_page(m); if (rv->object == old_object) { mtx_lock(&vm_page_queue_free_mtx); if (rv->object == old_object) { LIST_REMOVE(rv, objq); LIST_INSERT_HEAD(&new_object->rvq, rv, objq); rv->object = new_object; rv->pindex -= old_object_offset; } mtx_unlock(&vm_page_queue_free_mtx); } } /* * Allocates the virtual and physical memory required by the reservation * management system's data structures, in particular, the reservation array. */ vm_paddr_t vm_reserv_startup(vm_offset_t *vaddr, vm_paddr_t end, vm_paddr_t high_water) { vm_paddr_t new_end; size_t size; /* * Calculate the size (in bytes) of the reservation array. Round up * from "high_water" because every small page is mapped to an element * in the reservation array based on its physical address. Thus, the * number of elements in the reservation array can be greater than the * number of superpages. */ size = howmany(high_water, VM_LEVEL_0_SIZE) * sizeof(struct vm_reserv); /* * Allocate and map the physical memory for the reservation array. The * next available virtual address is returned by reference. */ new_end = end - round_page(size); vm_reserv_array = (void *)(uintptr_t)pmap_map(vaddr, new_end, end, VM_PROT_READ | VM_PROT_WRITE); bzero(vm_reserv_array, size); /* * Return the next available physical address. */ return (new_end); } #endif /* VM_NRESERVLEVEL > 0 */