2 * Physical memory management
4 * Copyright 2011 Red Hat, Inc. and/or its affiliates
9 * This work is licensed under the terms of the GNU GPL, version 2. See
10 * the COPYING file in the top-level directory.
15 #include "exec-memory.h"
21 unsigned memory_region_transaction_depth = 0;
23 typedef struct AddrRange AddrRange;
26 * Note using signed integers limits us to physical addresses at most
27 * 63 bits wide. They are needed for negative offsetting in aliases
28 * (large MemoryRegion::alias_offset).
35 static AddrRange addrrange_make(int64_t start, int64_t size)
37 return (AddrRange) { start, size };
40 static bool addrrange_equal(AddrRange r1, AddrRange r2)
42 return r1.start == r2.start && r1.size == r2.size;
45 static int64_t addrrange_end(AddrRange r)
47 return r.start + r.size;
50 static AddrRange addrrange_shift(AddrRange range, int64_t delta)
56 static bool addrrange_intersects(AddrRange r1, AddrRange r2)
58 return (r1.start >= r2.start && r1.start < r2.start + r2.size)
59 || (r2.start >= r1.start && r2.start < r1.start + r1.size);
62 static AddrRange addrrange_intersection(AddrRange r1, AddrRange r2)
64 int64_t start = MAX(r1.start, r2.start);
65 /* off-by-one arithmetic to prevent overflow */
66 int64_t end = MIN(addrrange_end(r1) - 1, addrrange_end(r2) - 1);
67 return addrrange_make(start, end - start + 1);
70 struct CoalescedMemoryRange {
72 QTAILQ_ENTRY(CoalescedMemoryRange) link;
75 struct MemoryRegionIoeventfd {
82 static bool memory_region_ioeventfd_before(MemoryRegionIoeventfd a,
83 MemoryRegionIoeventfd b)
85 if (a.addr.start < b.addr.start) {
87 } else if (a.addr.start > b.addr.start) {
89 } else if (a.addr.size < b.addr.size) {
91 } else if (a.addr.size > b.addr.size) {
93 } else if (a.match_data < b.match_data) {
95 } else if (a.match_data > b.match_data) {
97 } else if (a.match_data) {
98 if (a.data < b.data) {
100 } else if (a.data > b.data) {
106 } else if (a.fd > b.fd) {
112 static bool memory_region_ioeventfd_equal(MemoryRegionIoeventfd a,
113 MemoryRegionIoeventfd b)
115 return !memory_region_ioeventfd_before(a, b)
116 && !memory_region_ioeventfd_before(b, a);
119 typedef struct FlatRange FlatRange;
120 typedef struct FlatView FlatView;
122 /* Range of memory in the global map. Addresses are absolute. */
125 target_phys_addr_t offset_in_region;
127 uint8_t dirty_log_mask;
130 /* Flattened global view of current active memory hierarchy. Kept in sorted
136 unsigned nr_allocated;
139 typedef struct AddressSpace AddressSpace;
140 typedef struct AddressSpaceOps AddressSpaceOps;
142 /* A system address space - I/O, memory, etc. */
143 struct AddressSpace {
144 const AddressSpaceOps *ops;
146 FlatView current_map;
148 MemoryRegionIoeventfd *ioeventfds;
151 struct AddressSpaceOps {
152 void (*range_add)(AddressSpace *as, FlatRange *fr);
153 void (*range_del)(AddressSpace *as, FlatRange *fr);
154 void (*log_start)(AddressSpace *as, FlatRange *fr);
155 void (*log_stop)(AddressSpace *as, FlatRange *fr);
156 void (*ioeventfd_add)(AddressSpace *as, MemoryRegionIoeventfd *fd);
157 void (*ioeventfd_del)(AddressSpace *as, MemoryRegionIoeventfd *fd);
160 #define FOR_EACH_FLAT_RANGE(var, view) \
161 for (var = (view)->ranges; var < (view)->ranges + (view)->nr; ++var)
163 static bool flatrange_equal(FlatRange *a, FlatRange *b)
165 return a->mr == b->mr
166 && addrrange_equal(a->addr, b->addr)
167 && a->offset_in_region == b->offset_in_region;
170 static void flatview_init(FlatView *view)
174 view->nr_allocated = 0;
177 /* Insert a range into a given position. Caller is responsible for maintaining
180 static void flatview_insert(FlatView *view, unsigned pos, FlatRange *range)
182 if (view->nr == view->nr_allocated) {
183 view->nr_allocated = MAX(2 * view->nr, 10);
184 view->ranges = qemu_realloc(view->ranges,
185 view->nr_allocated * sizeof(*view->ranges));
187 memmove(view->ranges + pos + 1, view->ranges + pos,
188 (view->nr - pos) * sizeof(FlatRange));
189 view->ranges[pos] = *range;
193 static void flatview_destroy(FlatView *view)
195 qemu_free(view->ranges);
198 static bool can_merge(FlatRange *r1, FlatRange *r2)
200 return addrrange_end(r1->addr) == r2->addr.start
202 && r1->offset_in_region + r1->addr.size == r2->offset_in_region
203 && r1->dirty_log_mask == r2->dirty_log_mask;
206 /* Attempt to simplify a view by merging ajacent ranges */
207 static void flatview_simplify(FlatView *view)
212 while (i < view->nr) {
215 && can_merge(&view->ranges[j-1], &view->ranges[j])) {
216 view->ranges[i].addr.size += view->ranges[j].addr.size;
220 memmove(&view->ranges[i], &view->ranges[j],
221 (view->nr - j) * sizeof(view->ranges[j]));
226 static void memory_region_prepare_ram_addr(MemoryRegion *mr);
228 static void as_memory_range_add(AddressSpace *as, FlatRange *fr)
230 ram_addr_t phys_offset, region_offset;
232 memory_region_prepare_ram_addr(fr->mr);
234 phys_offset = fr->mr->ram_addr;
235 region_offset = fr->offset_in_region;
236 /* cpu_register_physical_memory_log() wants region_offset for
237 * mmio, but prefers offseting phys_offset for RAM. Humour it.
239 if ((phys_offset & ~TARGET_PAGE_MASK) <= IO_MEM_ROM) {
240 phys_offset += region_offset;
244 cpu_register_physical_memory_log(fr->addr.start,
251 static void as_memory_range_del(AddressSpace *as, FlatRange *fr)
253 if (fr->dirty_log_mask) {
254 cpu_physical_sync_dirty_bitmap(fr->addr.start,
255 fr->addr.start + fr->addr.size);
257 cpu_register_physical_memory(fr->addr.start, fr->addr.size,
261 static void as_memory_log_start(AddressSpace *as, FlatRange *fr)
263 cpu_physical_log_start(fr->addr.start, fr->addr.size);
266 static void as_memory_log_stop(AddressSpace *as, FlatRange *fr)
268 cpu_physical_log_stop(fr->addr.start, fr->addr.size);
271 static void as_memory_ioeventfd_add(AddressSpace *as, MemoryRegionIoeventfd *fd)
275 assert(fd->match_data && fd->addr.size == 4);
277 r = kvm_set_ioeventfd_mmio_long(fd->fd, fd->addr.start, fd->data, true);
283 static void as_memory_ioeventfd_del(AddressSpace *as, MemoryRegionIoeventfd *fd)
287 r = kvm_set_ioeventfd_mmio_long(fd->fd, fd->addr.start, fd->data, false);
293 static const AddressSpaceOps address_space_ops_memory = {
294 .range_add = as_memory_range_add,
295 .range_del = as_memory_range_del,
296 .log_start = as_memory_log_start,
297 .log_stop = as_memory_log_stop,
298 .ioeventfd_add = as_memory_ioeventfd_add,
299 .ioeventfd_del = as_memory_ioeventfd_del,
302 static AddressSpace address_space_memory = {
303 .ops = &address_space_ops_memory,
306 static const MemoryRegionPortio *find_portio(MemoryRegion *mr, uint64_t offset,
307 unsigned width, bool write)
309 const MemoryRegionPortio *mrp;
311 for (mrp = mr->ops->old_portio; mrp->size; ++mrp) {
312 if (offset >= mrp->offset && offset < mrp->offset + mrp->len
313 && width == mrp->size
314 && (write ? (bool)mrp->write : (bool)mrp->read)) {
321 static void memory_region_iorange_read(IORange *iorange,
326 MemoryRegion *mr = container_of(iorange, MemoryRegion, iorange);
328 if (mr->ops->old_portio) {
329 const MemoryRegionPortio *mrp = find_portio(mr, offset, width, false);
331 *data = ((uint64_t)1 << (width * 8)) - 1;
333 *data = mrp->read(mr->opaque, offset - mrp->offset);
337 *data = mr->ops->read(mr->opaque, offset, width);
340 static void memory_region_iorange_write(IORange *iorange,
345 MemoryRegion *mr = container_of(iorange, MemoryRegion, iorange);
347 if (mr->ops->old_portio) {
348 const MemoryRegionPortio *mrp = find_portio(mr, offset, width, true);
351 mrp->write(mr->opaque, offset - mrp->offset, data);
355 mr->ops->write(mr->opaque, offset, data, width);
358 static const IORangeOps memory_region_iorange_ops = {
359 .read = memory_region_iorange_read,
360 .write = memory_region_iorange_write,
363 static void as_io_range_add(AddressSpace *as, FlatRange *fr)
365 iorange_init(&fr->mr->iorange, &memory_region_iorange_ops,
366 fr->addr.start,fr->addr.size);
367 ioport_register(&fr->mr->iorange);
370 static void as_io_range_del(AddressSpace *as, FlatRange *fr)
372 isa_unassign_ioport(fr->addr.start, fr->addr.size);
375 static void as_io_ioeventfd_add(AddressSpace *as, MemoryRegionIoeventfd *fd)
379 assert(fd->match_data && fd->addr.size == 2);
381 r = kvm_set_ioeventfd_pio_word(fd->fd, fd->addr.start, fd->data, true);
387 static void as_io_ioeventfd_del(AddressSpace *as, MemoryRegionIoeventfd *fd)
391 r = kvm_set_ioeventfd_pio_word(fd->fd, fd->addr.start, fd->data, false);
397 static const AddressSpaceOps address_space_ops_io = {
398 .range_add = as_io_range_add,
399 .range_del = as_io_range_del,
400 .ioeventfd_add = as_io_ioeventfd_add,
401 .ioeventfd_del = as_io_ioeventfd_del,
404 static AddressSpace address_space_io = {
405 .ops = &address_space_ops_io,
408 /* Render a memory region into the global view. Ranges in @view obscure
411 static void render_memory_region(FlatView *view,
413 target_phys_addr_t base,
416 MemoryRegion *subregion;
418 target_phys_addr_t offset_in_region;
426 tmp = addrrange_make(base, mr->size);
428 if (!addrrange_intersects(tmp, clip)) {
432 clip = addrrange_intersection(tmp, clip);
435 base -= mr->alias->addr;
436 base -= mr->alias_offset;
437 render_memory_region(view, mr->alias, base, clip);
441 /* Render subregions in priority order. */
442 QTAILQ_FOREACH(subregion, &mr->subregions, subregions_link) {
443 render_memory_region(view, subregion, base, clip);
446 if (!mr->terminates) {
450 offset_in_region = clip.start - base;
454 /* Render the region itself into any gaps left by the current view. */
455 for (i = 0; i < view->nr && remain; ++i) {
456 if (base >= addrrange_end(view->ranges[i].addr)) {
459 if (base < view->ranges[i].addr.start) {
460 now = MIN(remain, view->ranges[i].addr.start - base);
462 fr.offset_in_region = offset_in_region;
463 fr.addr = addrrange_make(base, now);
464 fr.dirty_log_mask = mr->dirty_log_mask;
465 flatview_insert(view, i, &fr);
468 offset_in_region += now;
471 if (base == view->ranges[i].addr.start) {
472 now = MIN(remain, view->ranges[i].addr.size);
474 offset_in_region += now;
480 fr.offset_in_region = offset_in_region;
481 fr.addr = addrrange_make(base, remain);
482 fr.dirty_log_mask = mr->dirty_log_mask;
483 flatview_insert(view, i, &fr);
487 /* Render a memory topology into a list of disjoint absolute ranges. */
488 static FlatView generate_memory_topology(MemoryRegion *mr)
492 flatview_init(&view);
494 render_memory_region(&view, mr, 0, addrrange_make(0, INT64_MAX));
495 flatview_simplify(&view);
500 static void address_space_add_del_ioeventfds(AddressSpace *as,
501 MemoryRegionIoeventfd *fds_new,
503 MemoryRegionIoeventfd *fds_old,
508 /* Generate a symmetric difference of the old and new fd sets, adding
509 * and deleting as necessary.
513 while (iold < fds_old_nb || inew < fds_new_nb) {
514 if (iold < fds_old_nb
515 && (inew == fds_new_nb
516 || memory_region_ioeventfd_before(fds_old[iold],
518 as->ops->ioeventfd_del(as, &fds_old[iold]);
520 } else if (inew < fds_new_nb
521 && (iold == fds_old_nb
522 || memory_region_ioeventfd_before(fds_new[inew],
524 as->ops->ioeventfd_add(as, &fds_new[inew]);
533 static void address_space_update_ioeventfds(AddressSpace *as)
536 unsigned ioeventfd_nb = 0;
537 MemoryRegionIoeventfd *ioeventfds = NULL;
541 FOR_EACH_FLAT_RANGE(fr, &as->current_map) {
542 for (i = 0; i < fr->mr->ioeventfd_nb; ++i) {
543 tmp = addrrange_shift(fr->mr->ioeventfds[i].addr,
544 fr->addr.start - fr->offset_in_region);
545 if (addrrange_intersects(fr->addr, tmp)) {
547 ioeventfds = qemu_realloc(ioeventfds,
548 ioeventfd_nb * sizeof(*ioeventfds));
549 ioeventfds[ioeventfd_nb-1] = fr->mr->ioeventfds[i];
550 ioeventfds[ioeventfd_nb-1].addr = tmp;
555 address_space_add_del_ioeventfds(as, ioeventfds, ioeventfd_nb,
556 as->ioeventfds, as->ioeventfd_nb);
558 qemu_free(as->ioeventfds);
559 as->ioeventfds = ioeventfds;
560 as->ioeventfd_nb = ioeventfd_nb;
563 static void address_space_update_topology_pass(AddressSpace *as,
569 FlatRange *frold, *frnew;
571 /* Generate a symmetric difference of the old and new memory maps.
572 * Kill ranges in the old map, and instantiate ranges in the new map.
575 while (iold < old_view.nr || inew < new_view.nr) {
576 if (iold < old_view.nr) {
577 frold = &old_view.ranges[iold];
581 if (inew < new_view.nr) {
582 frnew = &new_view.ranges[inew];
589 || frold->addr.start < frnew->addr.start
590 || (frold->addr.start == frnew->addr.start
591 && !flatrange_equal(frold, frnew)))) {
592 /* In old, but (not in new, or in new but attributes changed). */
595 as->ops->range_del(as, frold);
599 } else if (frold && frnew && flatrange_equal(frold, frnew)) {
600 /* In both (logging may have changed) */
603 if (frold->dirty_log_mask && !frnew->dirty_log_mask) {
604 as->ops->log_stop(as, frnew);
605 } else if (frnew->dirty_log_mask && !frold->dirty_log_mask) {
606 as->ops->log_start(as, frnew);
616 as->ops->range_add(as, frnew);
625 static void address_space_update_topology(AddressSpace *as)
627 FlatView old_view = as->current_map;
628 FlatView new_view = generate_memory_topology(as->root);
630 address_space_update_topology_pass(as, old_view, new_view, false);
631 address_space_update_topology_pass(as, old_view, new_view, true);
633 as->current_map = new_view;
634 flatview_destroy(&old_view);
635 address_space_update_ioeventfds(as);
638 static void memory_region_update_topology(void)
640 if (memory_region_transaction_depth) {
644 if (address_space_memory.root) {
645 address_space_update_topology(&address_space_memory);
647 if (address_space_io.root) {
648 address_space_update_topology(&address_space_io);
652 void memory_region_transaction_begin(void)
654 ++memory_region_transaction_depth;
657 void memory_region_transaction_commit(void)
659 assert(memory_region_transaction_depth);
660 --memory_region_transaction_depth;
661 memory_region_update_topology();
664 void memory_region_init(MemoryRegion *mr,
673 mr->terminates = false;
675 mr->may_overlap = false;
677 QTAILQ_INIT(&mr->subregions);
678 memset(&mr->subregions_link, 0, sizeof mr->subregions_link);
679 QTAILQ_INIT(&mr->coalesced);
680 mr->name = qemu_strdup(name);
681 mr->dirty_log_mask = 0;
682 mr->ioeventfd_nb = 0;
683 mr->ioeventfds = NULL;
686 static bool memory_region_access_valid(MemoryRegion *mr,
687 target_phys_addr_t addr,
690 if (!mr->ops->valid.unaligned && (addr & (size - 1))) {
694 /* Treat zero as compatibility all valid */
695 if (!mr->ops->valid.max_access_size) {
699 if (size > mr->ops->valid.max_access_size
700 || size < mr->ops->valid.min_access_size) {
706 static uint32_t memory_region_read_thunk_n(void *_mr,
707 target_phys_addr_t addr,
710 MemoryRegion *mr = _mr;
711 unsigned access_size, access_size_min, access_size_max;
712 uint64_t access_mask;
713 uint32_t data = 0, tmp;
716 if (!memory_region_access_valid(mr, addr, size)) {
717 return -1U; /* FIXME: better signalling */
720 if (!mr->ops->read) {
721 return mr->ops->old_mmio.read[bitops_ffsl(size)](mr->opaque, addr);
724 /* FIXME: support unaligned access */
726 access_size_min = mr->ops->impl.min_access_size;
727 if (!access_size_min) {
730 access_size_max = mr->ops->impl.max_access_size;
731 if (!access_size_max) {
734 access_size = MAX(MIN(size, access_size_max), access_size_min);
735 access_mask = -1ULL >> (64 - access_size * 8);
737 for (i = 0; i < size; i += access_size) {
738 /* FIXME: big-endian support */
739 tmp = mr->ops->read(mr->opaque, addr + i, access_size);
740 data |= (tmp & access_mask) << (i * 8);
746 static void memory_region_write_thunk_n(void *_mr,
747 target_phys_addr_t addr,
751 MemoryRegion *mr = _mr;
752 unsigned access_size, access_size_min, access_size_max;
753 uint64_t access_mask;
756 if (!memory_region_access_valid(mr, addr, size)) {
757 return; /* FIXME: better signalling */
760 if (!mr->ops->write) {
761 mr->ops->old_mmio.write[bitops_ffsl(size)](mr->opaque, addr, data);
765 /* FIXME: support unaligned access */
767 access_size_min = mr->ops->impl.min_access_size;
768 if (!access_size_min) {
771 access_size_max = mr->ops->impl.max_access_size;
772 if (!access_size_max) {
775 access_size = MAX(MIN(size, access_size_max), access_size_min);
776 access_mask = -1ULL >> (64 - access_size * 8);
778 for (i = 0; i < size; i += access_size) {
779 /* FIXME: big-endian support */
780 mr->ops->write(mr->opaque, addr + i, (data >> (i * 8)) & access_mask,
785 static uint32_t memory_region_read_thunk_b(void *mr, target_phys_addr_t addr)
787 return memory_region_read_thunk_n(mr, addr, 1);
790 static uint32_t memory_region_read_thunk_w(void *mr, target_phys_addr_t addr)
792 return memory_region_read_thunk_n(mr, addr, 2);
795 static uint32_t memory_region_read_thunk_l(void *mr, target_phys_addr_t addr)
797 return memory_region_read_thunk_n(mr, addr, 4);
800 static void memory_region_write_thunk_b(void *mr, target_phys_addr_t addr,
803 memory_region_write_thunk_n(mr, addr, 1, data);
806 static void memory_region_write_thunk_w(void *mr, target_phys_addr_t addr,
809 memory_region_write_thunk_n(mr, addr, 2, data);
812 static void memory_region_write_thunk_l(void *mr, target_phys_addr_t addr,
815 memory_region_write_thunk_n(mr, addr, 4, data);
818 static CPUReadMemoryFunc * const memory_region_read_thunk[] = {
819 memory_region_read_thunk_b,
820 memory_region_read_thunk_w,
821 memory_region_read_thunk_l,
824 static CPUWriteMemoryFunc * const memory_region_write_thunk[] = {
825 memory_region_write_thunk_b,
826 memory_region_write_thunk_w,
827 memory_region_write_thunk_l,
830 static void memory_region_prepare_ram_addr(MemoryRegion *mr)
832 if (mr->backend_registered) {
836 mr->ram_addr = cpu_register_io_memory(memory_region_read_thunk,
837 memory_region_write_thunk,
839 mr->ops->endianness);
840 mr->backend_registered = true;
843 void memory_region_init_io(MemoryRegion *mr,
844 const MemoryRegionOps *ops,
849 memory_region_init(mr, name, size);
852 mr->terminates = true;
853 mr->backend_registered = false;
856 void memory_region_init_ram(MemoryRegion *mr,
861 memory_region_init(mr, name, size);
862 mr->terminates = true;
863 mr->ram_addr = qemu_ram_alloc(dev, name, size);
864 mr->backend_registered = true;
867 void memory_region_init_ram_ptr(MemoryRegion *mr,
873 memory_region_init(mr, name, size);
874 mr->terminates = true;
875 mr->ram_addr = qemu_ram_alloc_from_ptr(dev, name, size, ptr);
876 mr->backend_registered = true;
879 void memory_region_init_alias(MemoryRegion *mr,
882 target_phys_addr_t offset,
885 memory_region_init(mr, name, size);
887 mr->alias_offset = offset;
890 void memory_region_destroy(MemoryRegion *mr)
892 assert(QTAILQ_EMPTY(&mr->subregions));
893 memory_region_clear_coalescing(mr);
894 qemu_free((char *)mr->name);
895 qemu_free(mr->ioeventfds);
898 uint64_t memory_region_size(MemoryRegion *mr)
903 void memory_region_set_offset(MemoryRegion *mr, target_phys_addr_t offset)
908 void memory_region_set_log(MemoryRegion *mr, bool log, unsigned client)
910 uint8_t mask = 1 << client;
912 mr->dirty_log_mask = (mr->dirty_log_mask & ~mask) | (log * mask);
913 memory_region_update_topology();
916 bool memory_region_get_dirty(MemoryRegion *mr, target_phys_addr_t addr,
919 assert(mr->terminates);
920 return cpu_physical_memory_get_dirty(mr->ram_addr + addr, 1 << client);
923 void memory_region_set_dirty(MemoryRegion *mr, target_phys_addr_t addr)
925 assert(mr->terminates);
926 return cpu_physical_memory_set_dirty(mr->ram_addr + addr);
929 void memory_region_sync_dirty_bitmap(MemoryRegion *mr)
933 FOR_EACH_FLAT_RANGE(fr, &address_space_memory.current_map) {
935 cpu_physical_sync_dirty_bitmap(fr->addr.start,
936 fr->addr.start + fr->addr.size);
941 void memory_region_set_readonly(MemoryRegion *mr, bool readonly)
946 void memory_region_reset_dirty(MemoryRegion *mr, target_phys_addr_t addr,
947 target_phys_addr_t size, unsigned client)
949 assert(mr->terminates);
950 cpu_physical_memory_reset_dirty(mr->ram_addr + addr,
951 mr->ram_addr + addr + size,
955 void *memory_region_get_ram_ptr(MemoryRegion *mr)
958 return memory_region_get_ram_ptr(mr->alias) + mr->alias_offset;
961 assert(mr->terminates);
963 return qemu_get_ram_ptr(mr->ram_addr);
966 static void memory_region_update_coalesced_range(MemoryRegion *mr)
969 CoalescedMemoryRange *cmr;
972 FOR_EACH_FLAT_RANGE(fr, &address_space_memory.current_map) {
974 qemu_unregister_coalesced_mmio(fr->addr.start, fr->addr.size);
975 QTAILQ_FOREACH(cmr, &mr->coalesced, link) {
976 tmp = addrrange_shift(cmr->addr,
977 fr->addr.start - fr->offset_in_region);
978 if (!addrrange_intersects(tmp, fr->addr)) {
981 tmp = addrrange_intersection(tmp, fr->addr);
982 qemu_register_coalesced_mmio(tmp.start, tmp.size);
988 void memory_region_set_coalescing(MemoryRegion *mr)
990 memory_region_clear_coalescing(mr);
991 memory_region_add_coalescing(mr, 0, mr->size);
994 void memory_region_add_coalescing(MemoryRegion *mr,
995 target_phys_addr_t offset,
998 CoalescedMemoryRange *cmr = qemu_malloc(sizeof(*cmr));
1000 cmr->addr = addrrange_make(offset, size);
1001 QTAILQ_INSERT_TAIL(&mr->coalesced, cmr, link);
1002 memory_region_update_coalesced_range(mr);
1005 void memory_region_clear_coalescing(MemoryRegion *mr)
1007 CoalescedMemoryRange *cmr;
1009 while (!QTAILQ_EMPTY(&mr->coalesced)) {
1010 cmr = QTAILQ_FIRST(&mr->coalesced);
1011 QTAILQ_REMOVE(&mr->coalesced, cmr, link);
1014 memory_region_update_coalesced_range(mr);
1017 void memory_region_add_eventfd(MemoryRegion *mr,
1018 target_phys_addr_t addr,
1024 MemoryRegionIoeventfd mrfd = {
1027 .match_data = match_data,
1033 for (i = 0; i < mr->ioeventfd_nb; ++i) {
1034 if (memory_region_ioeventfd_before(mrfd, mr->ioeventfds[i])) {
1039 mr->ioeventfds = qemu_realloc(mr->ioeventfds,
1040 sizeof(*mr->ioeventfds) * mr->ioeventfd_nb);
1041 memmove(&mr->ioeventfds[i+1], &mr->ioeventfds[i],
1042 sizeof(*mr->ioeventfds) * (mr->ioeventfd_nb-1 - i));
1043 mr->ioeventfds[i] = mrfd;
1044 memory_region_update_topology();
1047 void memory_region_del_eventfd(MemoryRegion *mr,
1048 target_phys_addr_t addr,
1054 MemoryRegionIoeventfd mrfd = {
1057 .match_data = match_data,
1063 for (i = 0; i < mr->ioeventfd_nb; ++i) {
1064 if (memory_region_ioeventfd_equal(mrfd, mr->ioeventfds[i])) {
1068 assert(i != mr->ioeventfd_nb);
1069 memmove(&mr->ioeventfds[i], &mr->ioeventfds[i+1],
1070 sizeof(*mr->ioeventfds) * (mr->ioeventfd_nb - (i+1)));
1072 mr->ioeventfds = qemu_realloc(mr->ioeventfds,
1073 sizeof(*mr->ioeventfds)*mr->ioeventfd_nb + 1);
1074 memory_region_update_topology();
1077 static void memory_region_add_subregion_common(MemoryRegion *mr,
1078 target_phys_addr_t offset,
1079 MemoryRegion *subregion)
1081 MemoryRegion *other;
1083 assert(!subregion->parent);
1084 subregion->parent = mr;
1085 subregion->addr = offset;
1086 QTAILQ_FOREACH(other, &mr->subregions, subregions_link) {
1087 if (subregion->may_overlap || other->may_overlap) {
1090 if (offset >= other->offset + other->size
1091 || offset + subregion->size <= other->offset) {
1094 printf("warning: subregion collision %llx/%llx vs %llx/%llx\n",
1095 (unsigned long long)offset,
1096 (unsigned long long)subregion->size,
1097 (unsigned long long)other->offset,
1098 (unsigned long long)other->size);
1100 QTAILQ_FOREACH(other, &mr->subregions, subregions_link) {
1101 if (subregion->priority >= other->priority) {
1102 QTAILQ_INSERT_BEFORE(other, subregion, subregions_link);
1106 QTAILQ_INSERT_TAIL(&mr->subregions, subregion, subregions_link);
1108 memory_region_update_topology();
1112 void memory_region_add_subregion(MemoryRegion *mr,
1113 target_phys_addr_t offset,
1114 MemoryRegion *subregion)
1116 subregion->may_overlap = false;
1117 subregion->priority = 0;
1118 memory_region_add_subregion_common(mr, offset, subregion);
1121 void memory_region_add_subregion_overlap(MemoryRegion *mr,
1122 target_phys_addr_t offset,
1123 MemoryRegion *subregion,
1126 subregion->may_overlap = true;
1127 subregion->priority = priority;
1128 memory_region_add_subregion_common(mr, offset, subregion);
1131 void memory_region_del_subregion(MemoryRegion *mr,
1132 MemoryRegion *subregion)
1134 assert(subregion->parent == mr);
1135 subregion->parent = NULL;
1136 QTAILQ_REMOVE(&mr->subregions, subregion, subregions_link);
1137 memory_region_update_topology();
1140 void set_system_memory_map(MemoryRegion *mr)
1142 address_space_memory.root = mr;
1143 memory_region_update_topology();
1146 void set_system_io_map(MemoryRegion *mr)
1148 address_space_io.root = mr;
1149 memory_region_update_topology();