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1/*
2 * Physical memory management API
3 *
4 * Copyright 2011 Red Hat, Inc. and/or its affiliates
5 *
6 * Authors:
7 * Avi Kivity <avi@redhat.com>
8 *
9 * This work is licensed under the terms of the GNU GPL, version 2. See
10 * the COPYING file in the top-level directory.
11 *
12 */
13
14#ifndef MEMORY_H
15#define MEMORY_H
16
17#ifndef CONFIG_USER_ONLY
18
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19#define DIRTY_MEMORY_VGA 0
20#define DIRTY_MEMORY_CODE 1
21#define DIRTY_MEMORY_MIGRATION 2
22#define DIRTY_MEMORY_NUM 3 /* num of dirty bits */
23
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24#include <stdint.h>
25#include <stdbool.h>
26#include "qemu-common.h"
022c62cb 27#include "exec/cpu-common.h"
ce927ed9 28#ifndef CONFIG_USER_ONLY
022c62cb 29#include "exec/hwaddr.h"
ce927ed9 30#endif
1de7afc9 31#include "qemu/queue.h"
1de7afc9 32#include "qemu/int128.h"
06866575 33#include "qemu/notify.h"
093bc2cd 34
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35#define MAX_PHYS_ADDR_SPACE_BITS 62
36#define MAX_PHYS_ADDR (((hwaddr)1 << MAX_PHYS_ADDR_SPACE_BITS) - 1)
37
093bc2cd 38typedef struct MemoryRegionOps MemoryRegionOps;
74901c3b 39typedef struct MemoryRegionMmio MemoryRegionMmio;
093bc2cd 40
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41struct MemoryRegionMmio {
42 CPUReadMemoryFunc *read[3];
43 CPUWriteMemoryFunc *write[3];
44};
45
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46typedef struct IOMMUTLBEntry IOMMUTLBEntry;
47
48/* See address_space_translate: bit 0 is read, bit 1 is write. */
49typedef enum {
50 IOMMU_NONE = 0,
51 IOMMU_RO = 1,
52 IOMMU_WO = 2,
53 IOMMU_RW = 3,
54} IOMMUAccessFlags;
55
56struct IOMMUTLBEntry {
57 AddressSpace *target_as;
58 hwaddr iova;
59 hwaddr translated_addr;
60 hwaddr addr_mask; /* 0xfff = 4k translation */
61 IOMMUAccessFlags perm;
62};
63
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64/*
65 * Memory region callbacks
66 */
67struct MemoryRegionOps {
68 /* Read from the memory region. @addr is relative to @mr; @size is
69 * in bytes. */
70 uint64_t (*read)(void *opaque,
a8170e5e 71 hwaddr addr,
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72 unsigned size);
73 /* Write to the memory region. @addr is relative to @mr; @size is
74 * in bytes. */
75 void (*write)(void *opaque,
a8170e5e 76 hwaddr addr,
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77 uint64_t data,
78 unsigned size);
79
80 enum device_endian endianness;
81 /* Guest-visible constraints: */
82 struct {
83 /* If nonzero, specify bounds on access sizes beyond which a machine
84 * check is thrown.
85 */
86 unsigned min_access_size;
87 unsigned max_access_size;
88 /* If true, unaligned accesses are supported. Otherwise unaligned
89 * accesses throw machine checks.
90 */
91 bool unaligned;
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92 /*
93 * If present, and returns #false, the transaction is not accepted
94 * by the device (and results in machine dependent behaviour such
95 * as a machine check exception).
96 */
a8170e5e 97 bool (*accepts)(void *opaque, hwaddr addr,
897fa7cf 98 unsigned size, bool is_write);
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99 } valid;
100 /* Internal implementation constraints: */
101 struct {
102 /* If nonzero, specifies the minimum size implemented. Smaller sizes
103 * will be rounded upwards and a partial result will be returned.
104 */
105 unsigned min_access_size;
106 /* If nonzero, specifies the maximum size implemented. Larger sizes
107 * will be done as a series of accesses with smaller sizes.
108 */
109 unsigned max_access_size;
110 /* If true, unaligned accesses are supported. Otherwise all accesses
111 * are converted to (possibly multiple) naturally aligned accesses.
112 */
edc1ba7a 113 bool unaligned;
093bc2cd 114 } impl;
627a0e90 115
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116 /* If .read and .write are not present, old_mmio may be used for
117 * backwards compatibility with old mmio registration
118 */
119 const MemoryRegionMmio old_mmio;
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120};
121
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122typedef struct MemoryRegionIOMMUOps MemoryRegionIOMMUOps;
123
124struct MemoryRegionIOMMUOps {
125 /* Return a TLB entry that contains a given address. */
126 IOMMUTLBEntry (*translate)(MemoryRegion *iommu, hwaddr addr);
127};
128
093bc2cd 129typedef struct CoalescedMemoryRange CoalescedMemoryRange;
3e9d69e7 130typedef struct MemoryRegionIoeventfd MemoryRegionIoeventfd;
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131
132struct MemoryRegion {
133 /* All fields are private - violators will be prosecuted */
134 const MemoryRegionOps *ops;
30951157 135 const MemoryRegionIOMMUOps *iommu_ops;
093bc2cd 136 void *opaque;
2c9b15ca 137 struct Object *owner;
feca4ac1 138 MemoryRegion *container;
08dafab4 139 Int128 size;
a8170e5e 140 hwaddr addr;
545e92e0 141 void (*destructor)(MemoryRegion *mr);
093bc2cd 142 ram_addr_t ram_addr;
b3b00c78 143 bool subpage;
14a3c10a 144 bool terminates;
5f9a5ea1 145 bool romd_mode;
8ea9252a 146 bool ram;
fb1cd6f9 147 bool readonly; /* For RAM regions */
6bba19ba 148 bool enabled;
75c578dc 149 bool rom_device;
1660e72d 150 bool warning_printed; /* For reservations */
d410515e 151 bool flush_coalesced_mmio;
093bc2cd 152 MemoryRegion *alias;
a8170e5e 153 hwaddr alias_offset;
a1ff8ae0 154 int priority;
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155 bool may_overlap;
156 QTAILQ_HEAD(subregions, MemoryRegion) subregions;
157 QTAILQ_ENTRY(MemoryRegion) subregions_link;
158 QTAILQ_HEAD(coalesced_ranges, CoalescedMemoryRange) coalesced;
159 const char *name;
5a583347 160 uint8_t dirty_log_mask;
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161 unsigned ioeventfd_nb;
162 MemoryRegionIoeventfd *ioeventfds;
06866575 163 NotifierList iommu_notify;
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164};
165
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166/**
167 * MemoryListener: callbacks structure for updates to the physical memory map
168 *
169 * Allows a component to adjust to changes in the guest-visible memory map.
170 * Use with memory_listener_register() and memory_listener_unregister().
171 */
172struct MemoryListener {
173 void (*begin)(MemoryListener *listener);
174 void (*commit)(MemoryListener *listener);
175 void (*region_add)(MemoryListener *listener, MemoryRegionSection *section);
176 void (*region_del)(MemoryListener *listener, MemoryRegionSection *section);
177 void (*region_nop)(MemoryListener *listener, MemoryRegionSection *section);
178 void (*log_start)(MemoryListener *listener, MemoryRegionSection *section);
179 void (*log_stop)(MemoryListener *listener, MemoryRegionSection *section);
180 void (*log_sync)(MemoryListener *listener, MemoryRegionSection *section);
181 void (*log_global_start)(MemoryListener *listener);
182 void (*log_global_stop)(MemoryListener *listener);
183 void (*eventfd_add)(MemoryListener *listener, MemoryRegionSection *section,
184 bool match_data, uint64_t data, EventNotifier *e);
185 void (*eventfd_del)(MemoryListener *listener, MemoryRegionSection *section,
186 bool match_data, uint64_t data, EventNotifier *e);
187 void (*coalesced_mmio_add)(MemoryListener *listener, MemoryRegionSection *section,
188 hwaddr addr, hwaddr len);
189 void (*coalesced_mmio_del)(MemoryListener *listener, MemoryRegionSection *section,
190 hwaddr addr, hwaddr len);
191 /* Lower = earlier (during add), later (during del) */
192 unsigned priority;
193 AddressSpace *address_space_filter;
194 QTAILQ_ENTRY(MemoryListener) link;
195};
196
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197/**
198 * AddressSpace: describes a mapping of addresses to #MemoryRegion objects
199 */
200struct AddressSpace {
201 /* All fields are private. */
7dca8043 202 char *name;
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203 MemoryRegion *root;
204 struct FlatView *current_map;
205 int ioeventfd_nb;
206 struct MemoryRegionIoeventfd *ioeventfds;
ac1970fb 207 struct AddressSpaceDispatch *dispatch;
00752703 208 struct AddressSpaceDispatch *next_dispatch;
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209 MemoryListener dispatch_listener;
210
0d673e36 211 QTAILQ_ENTRY(AddressSpace) address_spaces_link;
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212};
213
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214/**
215 * MemoryRegionSection: describes a fragment of a #MemoryRegion
216 *
217 * @mr: the region, or %NULL if empty
7664e80c 218 * @address_space: the address space the region is mapped in
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219 * @offset_within_region: the beginning of the section, relative to @mr's start
220 * @size: the size of the section; will not exceed @mr's boundaries
221 * @offset_within_address_space: the address of the first byte of the section
222 * relative to the region's address space
7a8499e8 223 * @readonly: writes to this section are ignored
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224 */
225struct MemoryRegionSection {
226 MemoryRegion *mr;
f6790af6 227 AddressSpace *address_space;
a8170e5e 228 hwaddr offset_within_region;
052e87b0 229 Int128 size;
a8170e5e 230 hwaddr offset_within_address_space;
7a8499e8 231 bool readonly;
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232};
233
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234/**
235 * memory_region_init: Initialize a memory region
236 *
69ddaf66 237 * The region typically acts as a container for other memory regions. Use
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238 * memory_region_add_subregion() to add subregions.
239 *
240 * @mr: the #MemoryRegion to be initialized
2c9b15ca 241 * @owner: the object that tracks the region's reference count
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242 * @name: used for debugging; not visible to the user or ABI
243 * @size: size of the region; any subregions beyond this size will be clipped
244 */
245void memory_region_init(MemoryRegion *mr,
2c9b15ca 246 struct Object *owner,
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247 const char *name,
248 uint64_t size);
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249
250/**
251 * memory_region_ref: Add 1 to a memory region's reference count
252 *
253 * Whenever memory regions are accessed outside the BQL, they need to be
254 * preserved against hot-unplug. MemoryRegions actually do not have their
255 * own reference count; they piggyback on a QOM object, their "owner".
256 * This function adds a reference to the owner.
257 *
258 * All MemoryRegions must have an owner if they can disappear, even if the
259 * device they belong to operates exclusively under the BQL. This is because
260 * the region could be returned at any time by memory_region_find, and this
261 * is usually under guest control.
262 *
263 * @mr: the #MemoryRegion
264 */
265void memory_region_ref(MemoryRegion *mr);
266
267/**
268 * memory_region_unref: Remove 1 to a memory region's reference count
269 *
270 * Whenever memory regions are accessed outside the BQL, they need to be
271 * preserved against hot-unplug. MemoryRegions actually do not have their
272 * own reference count; they piggyback on a QOM object, their "owner".
273 * This function removes a reference to the owner and possibly destroys it.
274 *
275 * @mr: the #MemoryRegion
276 */
277void memory_region_unref(MemoryRegion *mr);
278
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279/**
280 * memory_region_init_io: Initialize an I/O memory region.
281 *
69ddaf66 282 * Accesses into the region will cause the callbacks in @ops to be called.
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283 * if @size is nonzero, subregions will be clipped to @size.
284 *
285 * @mr: the #MemoryRegion to be initialized.
2c9b15ca 286 * @owner: the object that tracks the region's reference count
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287 * @ops: a structure containing read and write callbacks to be used when
288 * I/O is performed on the region.
289 * @opaque: passed to to the read and write callbacks of the @ops structure.
290 * @name: used for debugging; not visible to the user or ABI
291 * @size: size of the region.
292 */
293void memory_region_init_io(MemoryRegion *mr,
2c9b15ca 294 struct Object *owner,
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295 const MemoryRegionOps *ops,
296 void *opaque,
297 const char *name,
298 uint64_t size);
299
300/**
301 * memory_region_init_ram: Initialize RAM memory region. Accesses into the
69ddaf66 302 * region will modify memory directly.
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303 *
304 * @mr: the #MemoryRegion to be initialized.
2c9b15ca 305 * @owner: the object that tracks the region's reference count
c5705a77 306 * @name: the name of the region.
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307 * @size: size of the region.
308 */
309void memory_region_init_ram(MemoryRegion *mr,
2c9b15ca 310 struct Object *owner,
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311 const char *name,
312 uint64_t size);
313
314/**
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315 * memory_region_init_ram_ptr: Initialize RAM memory region from a
316 * user-provided pointer. Accesses into the
317 * region will modify memory directly.
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318 *
319 * @mr: the #MemoryRegion to be initialized.
2c9b15ca 320 * @owner: the object that tracks the region's reference count
c5705a77 321 * @name: the name of the region.
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322 * @size: size of the region.
323 * @ptr: memory to be mapped; must contain at least @size bytes.
324 */
325void memory_region_init_ram_ptr(MemoryRegion *mr,
2c9b15ca 326 struct Object *owner,
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327 const char *name,
328 uint64_t size,
329 void *ptr);
330
331/**
332 * memory_region_init_alias: Initialize a memory region that aliases all or a
333 * part of another memory region.
334 *
335 * @mr: the #MemoryRegion to be initialized.
2c9b15ca 336 * @owner: the object that tracks the region's reference count
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337 * @name: used for debugging; not visible to the user or ABI
338 * @orig: the region to be referenced; @mr will be equivalent to
339 * @orig between @offset and @offset + @size - 1.
340 * @offset: start of the section in @orig to be referenced.
341 * @size: size of the region.
342 */
343void memory_region_init_alias(MemoryRegion *mr,
2c9b15ca 344 struct Object *owner,
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345 const char *name,
346 MemoryRegion *orig,
a8170e5e 347 hwaddr offset,
093bc2cd 348 uint64_t size);
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349
350/**
351 * memory_region_init_rom_device: Initialize a ROM memory region. Writes are
352 * handled via callbacks.
353 *
354 * @mr: the #MemoryRegion to be initialized.
2c9b15ca 355 * @owner: the object that tracks the region's reference count
d0a9b5bc 356 * @ops: callbacks for write access handling.
c5705a77 357 * @name: the name of the region.
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358 * @size: size of the region.
359 */
360void memory_region_init_rom_device(MemoryRegion *mr,
2c9b15ca 361 struct Object *owner,
d0a9b5bc 362 const MemoryRegionOps *ops,
75f5941c 363 void *opaque,
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364 const char *name,
365 uint64_t size);
366
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367/**
368 * memory_region_init_reservation: Initialize a memory region that reserves
369 * I/O space.
370 *
371 * A reservation region primariy serves debugging purposes. It claims I/O
372 * space that is not supposed to be handled by QEMU itself. Any access via
373 * the memory API will cause an abort().
374 *
375 * @mr: the #MemoryRegion to be initialized
2c9b15ca 376 * @owner: the object that tracks the region's reference count
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377 * @name: used for debugging; not visible to the user or ABI
378 * @size: size of the region.
379 */
380void memory_region_init_reservation(MemoryRegion *mr,
2c9b15ca 381 struct Object *owner,
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382 const char *name,
383 uint64_t size);
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384
385/**
386 * memory_region_init_iommu: Initialize a memory region that translates
387 * addresses
388 *
389 * An IOMMU region translates addresses and forwards accesses to a target
390 * memory region.
391 *
392 * @mr: the #MemoryRegion to be initialized
2c9b15ca 393 * @owner: the object that tracks the region's reference count
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394 * @ops: a function that translates addresses into the @target region
395 * @name: used for debugging; not visible to the user or ABI
396 * @size: size of the region.
397 */
398void memory_region_init_iommu(MemoryRegion *mr,
2c9b15ca 399 struct Object *owner,
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400 const MemoryRegionIOMMUOps *ops,
401 const char *name,
402 uint64_t size);
403
093bc2cd 404/**
69ddaf66 405 * memory_region_destroy: Destroy a memory region and reclaim all resources.
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406 *
407 * @mr: the region to be destroyed. May not currently be a subregion
408 * (see memory_region_add_subregion()) or referenced in an alias
409 * (see memory_region_init_alias()).
410 */
411void memory_region_destroy(MemoryRegion *mr);
412
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413/**
414 * memory_region_owner: get a memory region's owner.
415 *
416 * @mr: the memory region being queried.
417 */
418struct Object *memory_region_owner(MemoryRegion *mr);
419
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420/**
421 * memory_region_size: get a memory region's size.
422 *
423 * @mr: the memory region being queried.
424 */
425uint64_t memory_region_size(MemoryRegion *mr);
426
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427/**
428 * memory_region_is_ram: check whether a memory region is random access
429 *
430 * Returns %true is a memory region is random access.
431 *
432 * @mr: the memory region being queried
433 */
434bool memory_region_is_ram(MemoryRegion *mr);
435
fd062573 436/**
5f9a5ea1 437 * memory_region_is_romd: check whether a memory region is in ROMD mode
fd062573 438 *
5f9a5ea1 439 * Returns %true if a memory region is a ROM device and currently set to allow
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440 * direct reads.
441 *
442 * @mr: the memory region being queried
443 */
444static inline bool memory_region_is_romd(MemoryRegion *mr)
445{
5f9a5ea1 446 return mr->rom_device && mr->romd_mode;
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447}
448
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449/**
450 * memory_region_is_iommu: check whether a memory region is an iommu
451 *
452 * Returns %true is a memory region is an iommu.
453 *
454 * @mr: the memory region being queried
455 */
456bool memory_region_is_iommu(MemoryRegion *mr);
457
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458/**
459 * memory_region_notify_iommu: notify a change in an IOMMU translation entry.
460 *
461 * @mr: the memory region that was changed
462 * @entry: the new entry in the IOMMU translation table. The entry
463 * replaces all old entries for the same virtual I/O address range.
464 * Deleted entries have .@perm == 0.
465 */
466void memory_region_notify_iommu(MemoryRegion *mr,
467 IOMMUTLBEntry entry);
468
469/**
470 * memory_region_register_iommu_notifier: register a notifier for changes to
471 * IOMMU translation entries.
472 *
473 * @mr: the memory region to observe
474 * @n: the notifier to be added; the notifier receives a pointer to an
475 * #IOMMUTLBEntry as the opaque value; the pointer ceases to be
476 * valid on exit from the notifier.
477 */
478void memory_region_register_iommu_notifier(MemoryRegion *mr, Notifier *n);
479
480/**
481 * memory_region_unregister_iommu_notifier: unregister a notifier for
482 * changes to IOMMU translation entries.
483 *
484 * @n: the notifier to be removed.
485 */
486void memory_region_unregister_iommu_notifier(Notifier *n);
487
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488/**
489 * memory_region_name: get a memory region's name
490 *
491 * Returns the string that was used to initialize the memory region.
492 *
493 * @mr: the memory region being queried
494 */
495const char *memory_region_name(MemoryRegion *mr);
496
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497/**
498 * memory_region_is_logging: return whether a memory region is logging writes
499 *
500 * Returns %true if the memory region is logging writes
501 *
502 * @mr: the memory region being queried
503 */
504bool memory_region_is_logging(MemoryRegion *mr);
505
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506/**
507 * memory_region_is_rom: check whether a memory region is ROM
508 *
509 * Returns %true is a memory region is read-only memory.
510 *
511 * @mr: the memory region being queried
512 */
513bool memory_region_is_rom(MemoryRegion *mr);
514
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515/**
516 * memory_region_get_ram_ptr: Get a pointer into a RAM memory region.
517 *
518 * Returns a host pointer to a RAM memory region (created with
519 * memory_region_init_ram() or memory_region_init_ram_ptr()). Use with
520 * care.
521 *
522 * @mr: the memory region being queried.
523 */
524void *memory_region_get_ram_ptr(MemoryRegion *mr);
525
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526/**
527 * memory_region_set_log: Turn dirty logging on or off for a region.
528 *
529 * Turns dirty logging on or off for a specified client (display, migration).
530 * Only meaningful for RAM regions.
531 *
532 * @mr: the memory region being updated.
533 * @log: whether dirty logging is to be enabled or disabled.
534 * @client: the user of the logging information; %DIRTY_MEMORY_MIGRATION or
535 * %DIRTY_MEMORY_VGA.
536 */
537void memory_region_set_log(MemoryRegion *mr, bool log, unsigned client);
538
539/**
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540 * memory_region_get_dirty: Check whether a range of bytes is dirty
541 * for a specified client.
093bc2cd 542 *
cd7a45c9 543 * Checks whether a range of bytes has been written to since the last
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544 * call to memory_region_reset_dirty() with the same @client. Dirty logging
545 * must be enabled.
546 *
547 * @mr: the memory region being queried.
548 * @addr: the address (relative to the start of the region) being queried.
cd7a45c9 549 * @size: the size of the range being queried.
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550 * @client: the user of the logging information; %DIRTY_MEMORY_MIGRATION or
551 * %DIRTY_MEMORY_VGA.
552 */
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553bool memory_region_get_dirty(MemoryRegion *mr, hwaddr addr,
554 hwaddr size, unsigned client);
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555
556/**
fd4aa979 557 * memory_region_set_dirty: Mark a range of bytes as dirty in a memory region.
093bc2cd 558 *
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559 * Marks a range of bytes as dirty, after it has been dirtied outside
560 * guest code.
093bc2cd 561 *
fd4aa979 562 * @mr: the memory region being dirtied.
093bc2cd 563 * @addr: the address (relative to the start of the region) being dirtied.
fd4aa979 564 * @size: size of the range being dirtied.
093bc2cd 565 */
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566void memory_region_set_dirty(MemoryRegion *mr, hwaddr addr,
567 hwaddr size);
093bc2cd 568
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569/**
570 * memory_region_test_and_clear_dirty: Check whether a range of bytes is dirty
571 * for a specified client. It clears them.
572 *
573 * Checks whether a range of bytes has been written to since the last
574 * call to memory_region_reset_dirty() with the same @client. Dirty logging
575 * must be enabled.
576 *
577 * @mr: the memory region being queried.
578 * @addr: the address (relative to the start of the region) being queried.
579 * @size: the size of the range being queried.
580 * @client: the user of the logging information; %DIRTY_MEMORY_MIGRATION or
581 * %DIRTY_MEMORY_VGA.
582 */
583bool memory_region_test_and_clear_dirty(MemoryRegion *mr, hwaddr addr,
584 hwaddr size, unsigned client);
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585/**
586 * memory_region_sync_dirty_bitmap: Synchronize a region's dirty bitmap with
587 * any external TLBs (e.g. kvm)
588 *
589 * Flushes dirty information from accelerators such as kvm and vhost-net
590 * and makes it available to users of the memory API.
591 *
592 * @mr: the region being flushed.
593 */
594void memory_region_sync_dirty_bitmap(MemoryRegion *mr);
595
596/**
597 * memory_region_reset_dirty: Mark a range of pages as clean, for a specified
598 * client.
599 *
600 * Marks a range of pages as no longer dirty.
601 *
602 * @mr: the region being updated.
603 * @addr: the start of the subrange being cleaned.
604 * @size: the size of the subrange being cleaned.
605 * @client: the user of the logging information; %DIRTY_MEMORY_MIGRATION or
606 * %DIRTY_MEMORY_VGA.
607 */
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608void memory_region_reset_dirty(MemoryRegion *mr, hwaddr addr,
609 hwaddr size, unsigned client);
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610
611/**
612 * memory_region_set_readonly: Turn a memory region read-only (or read-write)
613 *
614 * Allows a memory region to be marked as read-only (turning it into a ROM).
615 * only useful on RAM regions.
616 *
617 * @mr: the region being updated.
618 * @readonly: whether rhe region is to be ROM or RAM.
619 */
620void memory_region_set_readonly(MemoryRegion *mr, bool readonly);
621
d0a9b5bc 622/**
5f9a5ea1 623 * memory_region_rom_device_set_romd: enable/disable ROMD mode
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624 *
625 * Allows a ROM device (initialized with memory_region_init_rom_device() to
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626 * set to ROMD mode (default) or MMIO mode. When it is in ROMD mode, the
627 * device is mapped to guest memory and satisfies read access directly.
628 * When in MMIO mode, reads are forwarded to the #MemoryRegion.read function.
629 * Writes are always handled by the #MemoryRegion.write function.
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630 *
631 * @mr: the memory region to be updated
5f9a5ea1 632 * @romd_mode: %true to put the region into ROMD mode
d0a9b5bc 633 */
5f9a5ea1 634void memory_region_rom_device_set_romd(MemoryRegion *mr, bool romd_mode);
d0a9b5bc 635
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636/**
637 * memory_region_set_coalescing: Enable memory coalescing for the region.
638 *
639 * Enabled writes to a region to be queued for later processing. MMIO ->write
640 * callbacks may be delayed until a non-coalesced MMIO is issued.
641 * Only useful for IO regions. Roughly similar to write-combining hardware.
642 *
643 * @mr: the memory region to be write coalesced
644 */
645void memory_region_set_coalescing(MemoryRegion *mr);
646
647/**
648 * memory_region_add_coalescing: Enable memory coalescing for a sub-range of
649 * a region.
650 *
651 * Like memory_region_set_coalescing(), but works on a sub-range of a region.
652 * Multiple calls can be issued coalesced disjoint ranges.
653 *
654 * @mr: the memory region to be updated.
655 * @offset: the start of the range within the region to be coalesced.
656 * @size: the size of the subrange to be coalesced.
657 */
658void memory_region_add_coalescing(MemoryRegion *mr,
a8170e5e 659 hwaddr offset,
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660 uint64_t size);
661
662/**
663 * memory_region_clear_coalescing: Disable MMIO coalescing for the region.
664 *
665 * Disables any coalescing caused by memory_region_set_coalescing() or
666 * memory_region_add_coalescing(). Roughly equivalent to uncacheble memory
667 * hardware.
668 *
669 * @mr: the memory region to be updated.
670 */
671void memory_region_clear_coalescing(MemoryRegion *mr);
672
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673/**
674 * memory_region_set_flush_coalesced: Enforce memory coalescing flush before
675 * accesses.
676 *
677 * Ensure that pending coalesced MMIO request are flushed before the memory
678 * region is accessed. This property is automatically enabled for all regions
679 * passed to memory_region_set_coalescing() and memory_region_add_coalescing().
680 *
681 * @mr: the memory region to be updated.
682 */
683void memory_region_set_flush_coalesced(MemoryRegion *mr);
684
685/**
686 * memory_region_clear_flush_coalesced: Disable memory coalescing flush before
687 * accesses.
688 *
689 * Clear the automatic coalesced MMIO flushing enabled via
690 * memory_region_set_flush_coalesced. Note that this service has no effect on
691 * memory regions that have MMIO coalescing enabled for themselves. For them,
692 * automatic flushing will stop once coalescing is disabled.
693 *
694 * @mr: the memory region to be updated.
695 */
696void memory_region_clear_flush_coalesced(MemoryRegion *mr);
697
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698/**
699 * memory_region_add_eventfd: Request an eventfd to be triggered when a word
700 * is written to a location.
701 *
702 * Marks a word in an IO region (initialized with memory_region_init_io())
703 * as a trigger for an eventfd event. The I/O callback will not be called.
69ddaf66 704 * The caller must be prepared to handle failure (that is, take the required
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705 * action if the callback _is_ called).
706 *
707 * @mr: the memory region being updated.
708 * @addr: the address within @mr that is to be monitored
709 * @size: the size of the access to trigger the eventfd
710 * @match_data: whether to match against @data, instead of just @addr
711 * @data: the data to match against the guest write
712 * @fd: the eventfd to be triggered when @addr, @size, and @data all match.
713 **/
714void memory_region_add_eventfd(MemoryRegion *mr,
a8170e5e 715 hwaddr addr,
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716 unsigned size,
717 bool match_data,
718 uint64_t data,
753d5e14 719 EventNotifier *e);
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720
721/**
69ddaf66 722 * memory_region_del_eventfd: Cancel an eventfd.
3e9d69e7 723 *
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ASRJ
724 * Cancels an eventfd trigger requested by a previous
725 * memory_region_add_eventfd() call.
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726 *
727 * @mr: the memory region being updated.
728 * @addr: the address within @mr that is to be monitored
729 * @size: the size of the access to trigger the eventfd
730 * @match_data: whether to match against @data, instead of just @addr
731 * @data: the data to match against the guest write
732 * @fd: the eventfd to be triggered when @addr, @size, and @data all match.
733 */
734void memory_region_del_eventfd(MemoryRegion *mr,
a8170e5e 735 hwaddr addr,
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736 unsigned size,
737 bool match_data,
738 uint64_t data,
753d5e14
PB
739 EventNotifier *e);
740
093bc2cd 741/**
69ddaf66 742 * memory_region_add_subregion: Add a subregion to a container.
093bc2cd 743 *
69ddaf66 744 * Adds a subregion at @offset. The subregion may not overlap with other
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745 * subregions (except for those explicitly marked as overlapping). A region
746 * may only be added once as a subregion (unless removed with
747 * memory_region_del_subregion()); use memory_region_init_alias() if you
748 * want a region to be a subregion in multiple locations.
749 *
750 * @mr: the region to contain the new subregion; must be a container
751 * initialized with memory_region_init().
752 * @offset: the offset relative to @mr where @subregion is added.
753 * @subregion: the subregion to be added.
754 */
755void memory_region_add_subregion(MemoryRegion *mr,
a8170e5e 756 hwaddr offset,
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757 MemoryRegion *subregion);
758/**
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759 * memory_region_add_subregion_overlap: Add a subregion to a container
760 * with overlap.
093bc2cd 761 *
69ddaf66 762 * Adds a subregion at @offset. The subregion may overlap with other
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763 * subregions. Conflicts are resolved by having a higher @priority hide a
764 * lower @priority. Subregions without priority are taken as @priority 0.
765 * A region may only be added once as a subregion (unless removed with
766 * memory_region_del_subregion()); use memory_region_init_alias() if you
767 * want a region to be a subregion in multiple locations.
768 *
769 * @mr: the region to contain the new subregion; must be a container
770 * initialized with memory_region_init().
771 * @offset: the offset relative to @mr where @subregion is added.
772 * @subregion: the subregion to be added.
773 * @priority: used for resolving overlaps; highest priority wins.
774 */
775void memory_region_add_subregion_overlap(MemoryRegion *mr,
a8170e5e 776 hwaddr offset,
093bc2cd 777 MemoryRegion *subregion,
a1ff8ae0 778 int priority);
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779
780/**
781 * memory_region_get_ram_addr: Get the ram address associated with a memory
782 * region
783 *
dabdf394 784 * DO NOT USE THIS FUNCTION. This is a temporary workaround while the Xen
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785 * code is being reworked.
786 */
787ram_addr_t memory_region_get_ram_addr(MemoryRegion *mr);
788
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789/**
790 * memory_region_del_subregion: Remove a subregion.
791 *
792 * Removes a subregion from its container.
793 *
794 * @mr: the container to be updated.
795 * @subregion: the region being removed; must be a current subregion of @mr.
796 */
797void memory_region_del_subregion(MemoryRegion *mr,
798 MemoryRegion *subregion);
799
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800/*
801 * memory_region_set_enabled: dynamically enable or disable a region
802 *
803 * Enables or disables a memory region. A disabled memory region
804 * ignores all accesses to itself and its subregions. It does not
805 * obscure sibling subregions with lower priority - it simply behaves as
806 * if it was removed from the hierarchy.
807 *
808 * Regions default to being enabled.
809 *
810 * @mr: the region to be updated
811 * @enabled: whether to enable or disable the region
812 */
813void memory_region_set_enabled(MemoryRegion *mr, bool enabled);
814
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815/*
816 * memory_region_set_address: dynamically update the address of a region
817 *
feca4ac1 818 * Dynamically updates the address of a region, relative to its container.
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819 * May be used on regions are currently part of a memory hierarchy.
820 *
821 * @mr: the region to be updated
feca4ac1 822 * @addr: new address, relative to container region
2282e1af 823 */
a8170e5e 824void memory_region_set_address(MemoryRegion *mr, hwaddr addr);
2282e1af 825
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826/*
827 * memory_region_set_alias_offset: dynamically update a memory alias's offset
828 *
829 * Dynamically updates the offset into the target region that an alias points
830 * to, as if the fourth argument to memory_region_init_alias() has changed.
831 *
832 * @mr: the #MemoryRegion to be updated; should be an alias.
833 * @offset: the new offset into the target memory region
834 */
835void memory_region_set_alias_offset(MemoryRegion *mr,
a8170e5e 836 hwaddr offset);
4703359e 837
3ce10901 838/**
feca4ac1
PB
839 * memory_region_present: checks if an address relative to a @container
840 * translates into #MemoryRegion within @container
3ce10901 841 *
feca4ac1 842 * Answer whether a #MemoryRegion within @container covers the address
3ce10901
PB
843 * @addr.
844 *
feca4ac1
PB
845 * @container: a #MemoryRegion within which @addr is a relative address
846 * @addr: the area within @container to be searched
3ce10901 847 */
feca4ac1 848bool memory_region_present(MemoryRegion *container, hwaddr addr);
3ce10901 849
e2177955 850/**
73034e9e
PB
851 * memory_region_find: translate an address/size relative to a
852 * MemoryRegion into a #MemoryRegionSection.
e2177955 853 *
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PB
854 * Locates the first #MemoryRegion within @mr that overlaps the range
855 * given by @addr and @size.
e2177955
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856 *
857 * Returns a #MemoryRegionSection that describes a contiguous overlap.
858 * It will have the following characteristics:
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859 * .@size = 0 iff no overlap was found
860 * .@mr is non-%NULL iff an overlap was found
861 *
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PB
862 * Remember that in the return value the @offset_within_region is
863 * relative to the returned region (in the .@mr field), not to the
864 * @mr argument.
865 *
866 * Similarly, the .@offset_within_address_space is relative to the
867 * address space that contains both regions, the passed and the
868 * returned one. However, in the special case where the @mr argument
feca4ac1 869 * has no container (and thus is the root of the address space), the
73034e9e
PB
870 * following will hold:
871 * .@offset_within_address_space >= @addr
872 * .@offset_within_address_space + .@size <= @addr + @size
873 *
874 * @mr: a MemoryRegion within which @addr is a relative address
875 * @addr: start of the area within @as to be searched
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876 * @size: size of the area to be searched
877 */
73034e9e 878MemoryRegionSection memory_region_find(MemoryRegion *mr,
a8170e5e 879 hwaddr addr, uint64_t size);
e2177955 880
86e775c6 881/**
1d671369 882 * address_space_sync_dirty_bitmap: synchronize the dirty log for all memory
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883 *
884 * Synchronizes the dirty page log for an entire address space.
1d671369 885 * @as: the address space that contains the memory being synchronized
86e775c6 886 */
1d671369 887void address_space_sync_dirty_bitmap(AddressSpace *as);
86e775c6 888
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889/**
890 * memory_region_transaction_begin: Start a transaction.
891 *
892 * During a transaction, changes will be accumulated and made visible
dabdf394 893 * only when the transaction ends (is committed).
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894 */
895void memory_region_transaction_begin(void);
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896
897/**
898 * memory_region_transaction_commit: Commit a transaction and make changes
899 * visible to the guest.
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900 */
901void memory_region_transaction_commit(void);
902
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903/**
904 * memory_listener_register: register callbacks to be called when memory
905 * sections are mapped or unmapped into an address
906 * space
907 *
908 * @listener: an object containing the callbacks to be called
7376e582 909 * @filter: if non-%NULL, only regions in this address space will be observed
7664e80c 910 */
f6790af6 911void memory_listener_register(MemoryListener *listener, AddressSpace *filter);
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912
913/**
914 * memory_listener_unregister: undo the effect of memory_listener_register()
915 *
916 * @listener: an object containing the callbacks to be removed
917 */
918void memory_listener_unregister(MemoryListener *listener);
919
920/**
921 * memory_global_dirty_log_start: begin dirty logging for all regions
922 */
923void memory_global_dirty_log_start(void);
924
925/**
1a7e8cae 926 * memory_global_dirty_log_stop: end dirty logging for all regions
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927 */
928void memory_global_dirty_log_stop(void);
929
314e2987
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930void mtree_info(fprintf_function mon_printf, void *f);
931
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932/**
933 * address_space_init: initializes an address space
934 *
935 * @as: an uninitialized #AddressSpace
936 * @root: a #MemoryRegion that routes addesses for the address space
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937 * @name: an address space name. The name is only used for debugging
938 * output.
9ad2bbc1 939 */
7dca8043 940void address_space_init(AddressSpace *as, MemoryRegion *root, const char *name);
9ad2bbc1 941
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942
943/**
944 * address_space_destroy: destroy an address space
945 *
946 * Releases all resources associated with an address space. After an address space
947 * is destroyed, its root memory region (given by address_space_init()) may be destroyed
948 * as well.
949 *
950 * @as: address space to be destroyed
951 */
952void address_space_destroy(AddressSpace *as);
953
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954/**
955 * address_space_rw: read from or write to an address space.
956 *
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957 * Return true if the operation hit any unassigned memory or encountered an
958 * IOMMU fault.
fd8aaa76 959 *
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960 * @as: #AddressSpace to be accessed
961 * @addr: address within that address space
962 * @buf: buffer with the data transferred
963 * @is_write: indicates the transfer direction
964 */
fd8aaa76 965bool address_space_rw(AddressSpace *as, hwaddr addr, uint8_t *buf,
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966 int len, bool is_write);
967
968/**
969 * address_space_write: write to address space.
970 *
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971 * Return true if the operation hit any unassigned memory or encountered an
972 * IOMMU fault.
fd8aaa76 973 *
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974 * @as: #AddressSpace to be accessed
975 * @addr: address within that address space
976 * @buf: buffer with the data transferred
977 */
fd8aaa76 978bool address_space_write(AddressSpace *as, hwaddr addr,
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979 const uint8_t *buf, int len);
980
981/**
982 * address_space_read: read from an address space.
983 *
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984 * Return true if the operation hit any unassigned memory or encountered an
985 * IOMMU fault.
fd8aaa76 986 *
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987 * @as: #AddressSpace to be accessed
988 * @addr: address within that address space
989 * @buf: buffer with the data transferred
990 */
fd8aaa76 991bool address_space_read(AddressSpace *as, hwaddr addr, uint8_t *buf, int len);
ac1970fb 992
149f54b5 993/* address_space_translate: translate an address range into an address space
5c8a00ce 994 * into a MemoryRegion and an address range into that section
149f54b5
PB
995 *
996 * @as: #AddressSpace to be accessed
997 * @addr: address within that address space
998 * @xlat: pointer to address within the returned memory region section's
999 * #MemoryRegion.
1000 * @len: pointer to length
1001 * @is_write: indicates the transfer direction
1002 */
5c8a00ce
PB
1003MemoryRegion *address_space_translate(AddressSpace *as, hwaddr addr,
1004 hwaddr *xlat, hwaddr *len,
1005 bool is_write);
149f54b5 1006
51644ab7
PB
1007/* address_space_access_valid: check for validity of accessing an address
1008 * space range
1009 *
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1010 * Check whether memory is assigned to the given address space range, and
1011 * access is permitted by any IOMMU regions that are active for the address
1012 * space.
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1013 *
1014 * For now, addr and len should be aligned to a page size. This limitation
1015 * will be lifted in the future.
1016 *
1017 * @as: #AddressSpace to be accessed
1018 * @addr: address within that address space
1019 * @len: length of the area to be checked
1020 * @is_write: indicates the transfer direction
1021 */
1022bool address_space_access_valid(AddressSpace *as, hwaddr addr, int len, bool is_write);
1023
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1024/* address_space_map: map a physical memory region into a host virtual address
1025 *
1026 * May map a subset of the requested range, given by and returned in @plen.
1027 * May return %NULL if resources needed to perform the mapping are exhausted.
1028 * Use only for reads OR writes - not for read-modify-write operations.
1029 * Use cpu_register_map_client() to know when retrying the map operation is
1030 * likely to succeed.
1031 *
1032 * @as: #AddressSpace to be accessed
1033 * @addr: address within that address space
1034 * @plen: pointer to length of buffer; updated on return
1035 * @is_write: indicates the transfer direction
1036 */
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1037void *address_space_map(AddressSpace *as, hwaddr addr,
1038 hwaddr *plen, bool is_write);
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1039
1040/* address_space_unmap: Unmaps a memory region previously mapped by address_space_map()
1041 *
1042 * Will also mark the memory as dirty if @is_write == %true. @access_len gives
1043 * the amount of memory that was actually read or written by the caller.
1044 *
1045 * @as: #AddressSpace used
1046 * @addr: address within that address space
1047 * @len: buffer length as returned by address_space_map()
1048 * @access_len: amount of data actually transferred
1049 * @is_write: indicates the transfer direction
1050 */
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1051void address_space_unmap(AddressSpace *as, void *buffer, hwaddr len,
1052 int is_write, hwaddr access_len);
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1053
1054
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1055#endif
1056
1057#endif