p2m.c 35 KB

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  1. /*
  2. * Xen leaves the responsibility for maintaining p2m mappings to the
  3. * guests themselves, but it must also access and update the p2m array
  4. * during suspend/resume when all the pages are reallocated.
  5. *
  6. * The p2m table is logically a flat array, but we implement it as a
  7. * three-level tree to allow the address space to be sparse.
  8. *
  9. * Xen
  10. * |
  11. * p2m_top p2m_top_mfn
  12. * / \ / \
  13. * p2m_mid p2m_mid p2m_mid_mfn p2m_mid_mfn
  14. * / \ / \ / /
  15. * p2m p2m p2m p2m p2m p2m p2m ...
  16. *
  17. * The p2m_mid_mfn pages are mapped by p2m_top_mfn_p.
  18. *
  19. * The p2m_top and p2m_top_mfn levels are limited to 1 page, so the
  20. * maximum representable pseudo-physical address space is:
  21. * P2M_TOP_PER_PAGE * P2M_MID_PER_PAGE * P2M_PER_PAGE pages
  22. *
  23. * P2M_PER_PAGE depends on the architecture, as a mfn is always
  24. * unsigned long (8 bytes on 64-bit, 4 bytes on 32), leading to
  25. * 512 and 1024 entries respectively.
  26. *
  27. * In short, these structures contain the Machine Frame Number (MFN) of the PFN.
  28. *
  29. * However not all entries are filled with MFNs. Specifically for all other
  30. * leaf entries, or for the top root, or middle one, for which there is a void
  31. * entry, we assume it is "missing". So (for example)
  32. * pfn_to_mfn(0x90909090)=INVALID_P2M_ENTRY.
  33. *
  34. * We also have the possibility of setting 1-1 mappings on certain regions, so
  35. * that:
  36. * pfn_to_mfn(0xc0000)=0xc0000
  37. *
  38. * The benefit of this is, that we can assume for non-RAM regions (think
  39. * PCI BARs, or ACPI spaces), we can create mappings easily b/c we
  40. * get the PFN value to match the MFN.
  41. *
  42. * For this to work efficiently we have one new page p2m_identity and
  43. * allocate (via reserved_brk) any other pages we need to cover the sides
  44. * (1GB or 4MB boundary violations). All entries in p2m_identity are set to
  45. * INVALID_P2M_ENTRY type (Xen toolstack only recognizes that and MFNs,
  46. * no other fancy value).
  47. *
  48. * On lookup we spot that the entry points to p2m_identity and return the
  49. * identity value instead of dereferencing and returning INVALID_P2M_ENTRY.
  50. * If the entry points to an allocated page, we just proceed as before and
  51. * return the PFN. If the PFN has IDENTITY_FRAME_BIT set we unmask that in
  52. * appropriate functions (pfn_to_mfn).
  53. *
  54. * The reason for having the IDENTITY_FRAME_BIT instead of just returning the
  55. * PFN is that we could find ourselves where pfn_to_mfn(pfn)==pfn for a
  56. * non-identity pfn. To protect ourselves against we elect to set (and get) the
  57. * IDENTITY_FRAME_BIT on all identity mapped PFNs.
  58. *
  59. * This simplistic diagram is used to explain the more subtle piece of code.
  60. * There is also a digram of the P2M at the end that can help.
  61. * Imagine your E820 looking as so:
  62. *
  63. * 1GB 2GB
  64. * /-------------------+---------\/----\ /----------\ /---+-----\
  65. * | System RAM | Sys RAM ||ACPI| | reserved | | Sys RAM |
  66. * \-------------------+---------/\----/ \----------/ \---+-----/
  67. * ^- 1029MB ^- 2001MB
  68. *
  69. * [1029MB = 263424 (0x40500), 2001MB = 512256 (0x7D100),
  70. * 2048MB = 524288 (0x80000)]
  71. *
  72. * And dom0_mem=max:3GB,1GB is passed in to the guest, meaning memory past 1GB
  73. * is actually not present (would have to kick the balloon driver to put it in).
  74. *
  75. * When we are told to set the PFNs for identity mapping (see patch: "xen/setup:
  76. * Set identity mapping for non-RAM E820 and E820 gaps.") we pass in the start
  77. * of the PFN and the end PFN (263424 and 512256 respectively). The first step
  78. * is to reserve_brk a top leaf page if the p2m[1] is missing. The top leaf page
  79. * covers 512^2 of page estate (1GB) and in case the start or end PFN is not
  80. * aligned on 512^2*PAGE_SIZE (1GB) we loop on aligned 1GB PFNs from start pfn
  81. * to end pfn. We reserve_brk top leaf pages if they are missing (means they
  82. * point to p2m_mid_missing).
  83. *
  84. * With the E820 example above, 263424 is not 1GB aligned so we allocate a
  85. * reserve_brk page which will cover the PFNs estate from 0x40000 to 0x80000.
  86. * Each entry in the allocate page is "missing" (points to p2m_missing).
  87. *
  88. * Next stage is to determine if we need to do a more granular boundary check
  89. * on the 4MB (or 2MB depending on architecture) off the start and end pfn's.
  90. * We check if the start pfn and end pfn violate that boundary check, and if
  91. * so reserve_brk a middle (p2m[x][y]) leaf page. This way we have a much finer
  92. * granularity of setting which PFNs are missing and which ones are identity.
  93. * In our example 263424 and 512256 both fail the check so we reserve_brk two
  94. * pages. Populate them with INVALID_P2M_ENTRY (so they both have "missing"
  95. * values) and assign them to p2m[1][2] and p2m[1][488] respectively.
  96. *
  97. * At this point we would at minimum reserve_brk one page, but could be up to
  98. * three. Each call to set_phys_range_identity has at maximum a three page
  99. * cost. If we were to query the P2M at this stage, all those entries from
  100. * start PFN through end PFN (so 1029MB -> 2001MB) would return
  101. * INVALID_P2M_ENTRY ("missing").
  102. *
  103. * The next step is to walk from the start pfn to the end pfn setting
  104. * the IDENTITY_FRAME_BIT on each PFN. This is done in set_phys_range_identity.
  105. * If we find that the middle leaf is pointing to p2m_missing we can swap it
  106. * over to p2m_identity - this way covering 4MB (or 2MB) PFN space. At this
  107. * point we do not need to worry about boundary aligment (so no need to
  108. * reserve_brk a middle page, figure out which PFNs are "missing" and which
  109. * ones are identity), as that has been done earlier. If we find that the
  110. * middle leaf is not occupied by p2m_identity or p2m_missing, we dereference
  111. * that page (which covers 512 PFNs) and set the appropriate PFN with
  112. * IDENTITY_FRAME_BIT. In our example 263424 and 512256 end up there, and we
  113. * set from p2m[1][2][256->511] and p2m[1][488][0->256] with
  114. * IDENTITY_FRAME_BIT set.
  115. *
  116. * All other regions that are void (or not filled) either point to p2m_missing
  117. * (considered missing) or have the default value of INVALID_P2M_ENTRY (also
  118. * considered missing). In our case, p2m[1][2][0->255] and p2m[1][488][257->511]
  119. * contain the INVALID_P2M_ENTRY value and are considered "missing."
  120. *
  121. * This is what the p2m ends up looking (for the E820 above) with this
  122. * fabulous drawing:
  123. *
  124. * p2m /--------------\
  125. * /-----\ | &mfn_list[0],| /-----------------\
  126. * | 0 |------>| &mfn_list[1],| /---------------\ | ~0, ~0, .. |
  127. * |-----| | ..., ~0, ~0 | | ~0, ~0, [x]---+----->| IDENTITY [@256] |
  128. * | 1 |---\ \--------------/ | [p2m_identity]+\ | IDENTITY [@257] |
  129. * |-----| \ | [p2m_identity]+\\ | .... |
  130. * | 2 |--\ \-------------------->| ... | \\ \----------------/
  131. * |-----| \ \---------------/ \\
  132. * | 3 |\ \ \\ p2m_identity
  133. * |-----| \ \-------------------->/---------------\ /-----------------\
  134. * | .. +->+ | [p2m_identity]+-->| ~0, ~0, ~0, ... |
  135. * \-----/ / | [p2m_identity]+-->| ..., ~0 |
  136. * / /---------------\ | .... | \-----------------/
  137. * / | IDENTITY[@0] | /-+-[x], ~0, ~0.. |
  138. * / | IDENTITY[@256]|<----/ \---------------/
  139. * / | ~0, ~0, .... |
  140. * | \---------------/
  141. * |
  142. * p2m_mid_missing p2m_missing
  143. * /-----------------\ /------------\
  144. * | [p2m_missing] +---->| ~0, ~0, ~0 |
  145. * | [p2m_missing] +---->| ..., ~0 |
  146. * \-----------------/ \------------/
  147. *
  148. * where ~0 is INVALID_P2M_ENTRY. IDENTITY is (PFN | IDENTITY_BIT)
  149. */
  150. #include <linux/init.h>
  151. #include <linux/module.h>
  152. #include <linux/list.h>
  153. #include <linux/hash.h>
  154. #include <linux/sched.h>
  155. #include <linux/seq_file.h>
  156. #include <asm/cache.h>
  157. #include <asm/setup.h>
  158. #include <asm/xen/page.h>
  159. #include <asm/xen/hypercall.h>
  160. #include <asm/xen/hypervisor.h>
  161. #include <xen/grant_table.h>
  162. #include "multicalls.h"
  163. #include "xen-ops.h"
  164. static void __init m2p_override_init(void);
  165. unsigned long xen_max_p2m_pfn __read_mostly;
  166. #define P2M_PER_PAGE (PAGE_SIZE / sizeof(unsigned long))
  167. #define P2M_MID_PER_PAGE (PAGE_SIZE / sizeof(unsigned long *))
  168. #define P2M_TOP_PER_PAGE (PAGE_SIZE / sizeof(unsigned long **))
  169. #define MAX_P2M_PFN (P2M_TOP_PER_PAGE * P2M_MID_PER_PAGE * P2M_PER_PAGE)
  170. /* Placeholders for holes in the address space */
  171. static RESERVE_BRK_ARRAY(unsigned long, p2m_missing, P2M_PER_PAGE);
  172. static RESERVE_BRK_ARRAY(unsigned long *, p2m_mid_missing, P2M_MID_PER_PAGE);
  173. static RESERVE_BRK_ARRAY(unsigned long, p2m_mid_missing_mfn, P2M_MID_PER_PAGE);
  174. static RESERVE_BRK_ARRAY(unsigned long **, p2m_top, P2M_TOP_PER_PAGE);
  175. static RESERVE_BRK_ARRAY(unsigned long, p2m_top_mfn, P2M_TOP_PER_PAGE);
  176. static RESERVE_BRK_ARRAY(unsigned long *, p2m_top_mfn_p, P2M_TOP_PER_PAGE);
  177. static RESERVE_BRK_ARRAY(unsigned long, p2m_identity, P2M_PER_PAGE);
  178. RESERVE_BRK(p2m_mid, PAGE_SIZE * (MAX_DOMAIN_PAGES / (P2M_PER_PAGE * P2M_MID_PER_PAGE)));
  179. RESERVE_BRK(p2m_mid_mfn, PAGE_SIZE * (MAX_DOMAIN_PAGES / (P2M_PER_PAGE * P2M_MID_PER_PAGE)));
  180. /* We might hit two boundary violations at the start and end, at max each
  181. * boundary violation will require three middle nodes. */
  182. RESERVE_BRK(p2m_mid_identity, PAGE_SIZE * 2 * 3);
  183. /* When we populate back during bootup, the amount of pages can vary. The
  184. * max we have is seen is 395979, but that does not mean it can't be more.
  185. * Some machines can have 3GB I/O holes even. With early_can_reuse_p2m_middle
  186. * it can re-use Xen provided mfn_list array, so we only need to allocate at
  187. * most three P2M top nodes. */
  188. RESERVE_BRK(p2m_populated, PAGE_SIZE * 3);
  189. static inline unsigned p2m_top_index(unsigned long pfn)
  190. {
  191. BUG_ON(pfn >= MAX_P2M_PFN);
  192. return pfn / (P2M_MID_PER_PAGE * P2M_PER_PAGE);
  193. }
  194. static inline unsigned p2m_mid_index(unsigned long pfn)
  195. {
  196. return (pfn / P2M_PER_PAGE) % P2M_MID_PER_PAGE;
  197. }
  198. static inline unsigned p2m_index(unsigned long pfn)
  199. {
  200. return pfn % P2M_PER_PAGE;
  201. }
  202. static void p2m_top_init(unsigned long ***top)
  203. {
  204. unsigned i;
  205. for (i = 0; i < P2M_TOP_PER_PAGE; i++)
  206. top[i] = p2m_mid_missing;
  207. }
  208. static void p2m_top_mfn_init(unsigned long *top)
  209. {
  210. unsigned i;
  211. for (i = 0; i < P2M_TOP_PER_PAGE; i++)
  212. top[i] = virt_to_mfn(p2m_mid_missing_mfn);
  213. }
  214. static void p2m_top_mfn_p_init(unsigned long **top)
  215. {
  216. unsigned i;
  217. for (i = 0; i < P2M_TOP_PER_PAGE; i++)
  218. top[i] = p2m_mid_missing_mfn;
  219. }
  220. static void p2m_mid_init(unsigned long **mid)
  221. {
  222. unsigned i;
  223. for (i = 0; i < P2M_MID_PER_PAGE; i++)
  224. mid[i] = p2m_missing;
  225. }
  226. static void p2m_mid_mfn_init(unsigned long *mid)
  227. {
  228. unsigned i;
  229. for (i = 0; i < P2M_MID_PER_PAGE; i++)
  230. mid[i] = virt_to_mfn(p2m_missing);
  231. }
  232. static void p2m_init(unsigned long *p2m)
  233. {
  234. unsigned i;
  235. for (i = 0; i < P2M_MID_PER_PAGE; i++)
  236. p2m[i] = INVALID_P2M_ENTRY;
  237. }
  238. /*
  239. * Build the parallel p2m_top_mfn and p2m_mid_mfn structures
  240. *
  241. * This is called both at boot time, and after resuming from suspend:
  242. * - At boot time we're called very early, and must use extend_brk()
  243. * to allocate memory.
  244. *
  245. * - After resume we're called from within stop_machine, but the mfn
  246. * tree should alreay be completely allocated.
  247. */
  248. void __ref xen_build_mfn_list_list(void)
  249. {
  250. unsigned long pfn;
  251. /* Pre-initialize p2m_top_mfn to be completely missing */
  252. if (p2m_top_mfn == NULL) {
  253. p2m_mid_missing_mfn = extend_brk(PAGE_SIZE, PAGE_SIZE);
  254. p2m_mid_mfn_init(p2m_mid_missing_mfn);
  255. p2m_top_mfn_p = extend_brk(PAGE_SIZE, PAGE_SIZE);
  256. p2m_top_mfn_p_init(p2m_top_mfn_p);
  257. p2m_top_mfn = extend_brk(PAGE_SIZE, PAGE_SIZE);
  258. p2m_top_mfn_init(p2m_top_mfn);
  259. } else {
  260. /* Reinitialise, mfn's all change after migration */
  261. p2m_mid_mfn_init(p2m_mid_missing_mfn);
  262. }
  263. for (pfn = 0; pfn < xen_max_p2m_pfn; pfn += P2M_PER_PAGE) {
  264. unsigned topidx = p2m_top_index(pfn);
  265. unsigned mididx = p2m_mid_index(pfn);
  266. unsigned long **mid;
  267. unsigned long *mid_mfn_p;
  268. mid = p2m_top[topidx];
  269. mid_mfn_p = p2m_top_mfn_p[topidx];
  270. /* Don't bother allocating any mfn mid levels if
  271. * they're just missing, just update the stored mfn,
  272. * since all could have changed over a migrate.
  273. */
  274. if (mid == p2m_mid_missing) {
  275. BUG_ON(mididx);
  276. BUG_ON(mid_mfn_p != p2m_mid_missing_mfn);
  277. p2m_top_mfn[topidx] = virt_to_mfn(p2m_mid_missing_mfn);
  278. pfn += (P2M_MID_PER_PAGE - 1) * P2M_PER_PAGE;
  279. continue;
  280. }
  281. if (mid_mfn_p == p2m_mid_missing_mfn) {
  282. /*
  283. * XXX boot-time only! We should never find
  284. * missing parts of the mfn tree after
  285. * runtime. extend_brk() will BUG if we call
  286. * it too late.
  287. */
  288. mid_mfn_p = extend_brk(PAGE_SIZE, PAGE_SIZE);
  289. p2m_mid_mfn_init(mid_mfn_p);
  290. p2m_top_mfn_p[topidx] = mid_mfn_p;
  291. }
  292. p2m_top_mfn[topidx] = virt_to_mfn(mid_mfn_p);
  293. mid_mfn_p[mididx] = virt_to_mfn(mid[mididx]);
  294. }
  295. }
  296. void xen_setup_mfn_list_list(void)
  297. {
  298. BUG_ON(HYPERVISOR_shared_info == &xen_dummy_shared_info);
  299. HYPERVISOR_shared_info->arch.pfn_to_mfn_frame_list_list =
  300. virt_to_mfn(p2m_top_mfn);
  301. HYPERVISOR_shared_info->arch.max_pfn = xen_max_p2m_pfn;
  302. }
  303. /* Set up p2m_top to point to the domain-builder provided p2m pages */
  304. void __init xen_build_dynamic_phys_to_machine(void)
  305. {
  306. unsigned long *mfn_list = (unsigned long *)xen_start_info->mfn_list;
  307. unsigned long max_pfn = min(MAX_DOMAIN_PAGES, xen_start_info->nr_pages);
  308. unsigned long pfn;
  309. xen_max_p2m_pfn = max_pfn;
  310. p2m_missing = extend_brk(PAGE_SIZE, PAGE_SIZE);
  311. p2m_init(p2m_missing);
  312. p2m_mid_missing = extend_brk(PAGE_SIZE, PAGE_SIZE);
  313. p2m_mid_init(p2m_mid_missing);
  314. p2m_top = extend_brk(PAGE_SIZE, PAGE_SIZE);
  315. p2m_top_init(p2m_top);
  316. p2m_identity = extend_brk(PAGE_SIZE, PAGE_SIZE);
  317. p2m_init(p2m_identity);
  318. /*
  319. * The domain builder gives us a pre-constructed p2m array in
  320. * mfn_list for all the pages initially given to us, so we just
  321. * need to graft that into our tree structure.
  322. */
  323. for (pfn = 0; pfn < max_pfn; pfn += P2M_PER_PAGE) {
  324. unsigned topidx = p2m_top_index(pfn);
  325. unsigned mididx = p2m_mid_index(pfn);
  326. if (p2m_top[topidx] == p2m_mid_missing) {
  327. unsigned long **mid = extend_brk(PAGE_SIZE, PAGE_SIZE);
  328. p2m_mid_init(mid);
  329. p2m_top[topidx] = mid;
  330. }
  331. /*
  332. * As long as the mfn_list has enough entries to completely
  333. * fill a p2m page, pointing into the array is ok. But if
  334. * not the entries beyond the last pfn will be undefined.
  335. */
  336. if (unlikely(pfn + P2M_PER_PAGE > max_pfn)) {
  337. unsigned long p2midx;
  338. p2midx = max_pfn % P2M_PER_PAGE;
  339. for ( ; p2midx < P2M_PER_PAGE; p2midx++)
  340. mfn_list[pfn + p2midx] = INVALID_P2M_ENTRY;
  341. }
  342. p2m_top[topidx][mididx] = &mfn_list[pfn];
  343. }
  344. m2p_override_init();
  345. }
  346. #ifdef CONFIG_X86_64
  347. #include <linux/bootmem.h>
  348. unsigned long __init xen_revector_p2m_tree(void)
  349. {
  350. unsigned long va_start;
  351. unsigned long va_end;
  352. unsigned long pfn;
  353. unsigned long pfn_free = 0;
  354. unsigned long *mfn_list = NULL;
  355. unsigned long size;
  356. va_start = xen_start_info->mfn_list;
  357. /*We copy in increments of P2M_PER_PAGE * sizeof(unsigned long),
  358. * so make sure it is rounded up to that */
  359. size = PAGE_ALIGN(xen_start_info->nr_pages * sizeof(unsigned long));
  360. va_end = va_start + size;
  361. /* If we were revectored already, don't do it again. */
  362. if (va_start <= __START_KERNEL_map && va_start >= __PAGE_OFFSET)
  363. return 0;
  364. mfn_list = alloc_bootmem_align(size, PAGE_SIZE);
  365. if (!mfn_list) {
  366. pr_warn("Could not allocate space for a new P2M tree!\n");
  367. return xen_start_info->mfn_list;
  368. }
  369. /* Fill it out with INVALID_P2M_ENTRY value */
  370. memset(mfn_list, 0xFF, size);
  371. for (pfn = 0; pfn < ALIGN(MAX_DOMAIN_PAGES, P2M_PER_PAGE); pfn += P2M_PER_PAGE) {
  372. unsigned topidx = p2m_top_index(pfn);
  373. unsigned mididx;
  374. unsigned long *mid_p;
  375. if (!p2m_top[topidx])
  376. continue;
  377. if (p2m_top[topidx] == p2m_mid_missing)
  378. continue;
  379. mididx = p2m_mid_index(pfn);
  380. mid_p = p2m_top[topidx][mididx];
  381. if (!mid_p)
  382. continue;
  383. if ((mid_p == p2m_missing) || (mid_p == p2m_identity))
  384. continue;
  385. if ((unsigned long)mid_p == INVALID_P2M_ENTRY)
  386. continue;
  387. /* The old va. Rebase it on mfn_list */
  388. if (mid_p >= (unsigned long *)va_start && mid_p <= (unsigned long *)va_end) {
  389. unsigned long *new;
  390. if (pfn_free > (size / sizeof(unsigned long))) {
  391. WARN(1, "Only allocated for %ld pages, but we want %ld!\n",
  392. size / sizeof(unsigned long), pfn_free);
  393. return 0;
  394. }
  395. new = &mfn_list[pfn_free];
  396. copy_page(new, mid_p);
  397. p2m_top[topidx][mididx] = &mfn_list[pfn_free];
  398. p2m_top_mfn_p[topidx][mididx] = virt_to_mfn(&mfn_list[pfn_free]);
  399. pfn_free += P2M_PER_PAGE;
  400. }
  401. /* This should be the leafs allocated for identity from _brk. */
  402. }
  403. return (unsigned long)mfn_list;
  404. }
  405. #else
  406. unsigned long __init xen_revector_p2m_tree(void)
  407. {
  408. return 0;
  409. }
  410. #endif
  411. unsigned long get_phys_to_machine(unsigned long pfn)
  412. {
  413. unsigned topidx, mididx, idx;
  414. if (unlikely(pfn >= MAX_P2M_PFN))
  415. return INVALID_P2M_ENTRY;
  416. topidx = p2m_top_index(pfn);
  417. mididx = p2m_mid_index(pfn);
  418. idx = p2m_index(pfn);
  419. /*
  420. * The INVALID_P2M_ENTRY is filled in both p2m_*identity
  421. * and in p2m_*missing, so returning the INVALID_P2M_ENTRY
  422. * would be wrong.
  423. */
  424. if (p2m_top[topidx][mididx] == p2m_identity)
  425. return IDENTITY_FRAME(pfn);
  426. return p2m_top[topidx][mididx][idx];
  427. }
  428. EXPORT_SYMBOL_GPL(get_phys_to_machine);
  429. static void *alloc_p2m_page(void)
  430. {
  431. return (void *)__get_free_page(GFP_KERNEL | __GFP_REPEAT);
  432. }
  433. static void free_p2m_page(void *p)
  434. {
  435. free_page((unsigned long)p);
  436. }
  437. /*
  438. * Fully allocate the p2m structure for a given pfn. We need to check
  439. * that both the top and mid levels are allocated, and make sure the
  440. * parallel mfn tree is kept in sync. We may race with other cpus, so
  441. * the new pages are installed with cmpxchg; if we lose the race then
  442. * simply free the page we allocated and use the one that's there.
  443. */
  444. static bool alloc_p2m(unsigned long pfn)
  445. {
  446. unsigned topidx, mididx;
  447. unsigned long ***top_p, **mid;
  448. unsigned long *top_mfn_p, *mid_mfn;
  449. topidx = p2m_top_index(pfn);
  450. mididx = p2m_mid_index(pfn);
  451. top_p = &p2m_top[topidx];
  452. mid = *top_p;
  453. if (mid == p2m_mid_missing) {
  454. /* Mid level is missing, allocate a new one */
  455. mid = alloc_p2m_page();
  456. if (!mid)
  457. return false;
  458. p2m_mid_init(mid);
  459. if (cmpxchg(top_p, p2m_mid_missing, mid) != p2m_mid_missing)
  460. free_p2m_page(mid);
  461. }
  462. top_mfn_p = &p2m_top_mfn[topidx];
  463. mid_mfn = p2m_top_mfn_p[topidx];
  464. BUG_ON(virt_to_mfn(mid_mfn) != *top_mfn_p);
  465. if (mid_mfn == p2m_mid_missing_mfn) {
  466. /* Separately check the mid mfn level */
  467. unsigned long missing_mfn;
  468. unsigned long mid_mfn_mfn;
  469. mid_mfn = alloc_p2m_page();
  470. if (!mid_mfn)
  471. return false;
  472. p2m_mid_mfn_init(mid_mfn);
  473. missing_mfn = virt_to_mfn(p2m_mid_missing_mfn);
  474. mid_mfn_mfn = virt_to_mfn(mid_mfn);
  475. if (cmpxchg(top_mfn_p, missing_mfn, mid_mfn_mfn) != missing_mfn)
  476. free_p2m_page(mid_mfn);
  477. else
  478. p2m_top_mfn_p[topidx] = mid_mfn;
  479. }
  480. if (p2m_top[topidx][mididx] == p2m_identity ||
  481. p2m_top[topidx][mididx] == p2m_missing) {
  482. /* p2m leaf page is missing */
  483. unsigned long *p2m;
  484. unsigned long *p2m_orig = p2m_top[topidx][mididx];
  485. p2m = alloc_p2m_page();
  486. if (!p2m)
  487. return false;
  488. p2m_init(p2m);
  489. if (cmpxchg(&mid[mididx], p2m_orig, p2m) != p2m_orig)
  490. free_p2m_page(p2m);
  491. else
  492. mid_mfn[mididx] = virt_to_mfn(p2m);
  493. }
  494. return true;
  495. }
  496. static bool __init early_alloc_p2m_middle(unsigned long pfn, bool check_boundary)
  497. {
  498. unsigned topidx, mididx, idx;
  499. unsigned long *p2m;
  500. unsigned long *mid_mfn_p;
  501. topidx = p2m_top_index(pfn);
  502. mididx = p2m_mid_index(pfn);
  503. idx = p2m_index(pfn);
  504. /* Pfff.. No boundary cross-over, lets get out. */
  505. if (!idx && check_boundary)
  506. return false;
  507. WARN(p2m_top[topidx][mididx] == p2m_identity,
  508. "P2M[%d][%d] == IDENTITY, should be MISSING (or alloced)!\n",
  509. topidx, mididx);
  510. /*
  511. * Could be done by xen_build_dynamic_phys_to_machine..
  512. */
  513. if (p2m_top[topidx][mididx] != p2m_missing)
  514. return false;
  515. /* Boundary cross-over for the edges: */
  516. p2m = extend_brk(PAGE_SIZE, PAGE_SIZE);
  517. p2m_init(p2m);
  518. p2m_top[topidx][mididx] = p2m;
  519. /* For save/restore we need to MFN of the P2M saved */
  520. mid_mfn_p = p2m_top_mfn_p[topidx];
  521. WARN(mid_mfn_p[mididx] != virt_to_mfn(p2m_missing),
  522. "P2M_TOP_P[%d][%d] != MFN of p2m_missing!\n",
  523. topidx, mididx);
  524. mid_mfn_p[mididx] = virt_to_mfn(p2m);
  525. return true;
  526. }
  527. static bool __init early_alloc_p2m(unsigned long pfn)
  528. {
  529. unsigned topidx = p2m_top_index(pfn);
  530. unsigned long *mid_mfn_p;
  531. unsigned long **mid;
  532. mid = p2m_top[topidx];
  533. mid_mfn_p = p2m_top_mfn_p[topidx];
  534. if (mid == p2m_mid_missing) {
  535. mid = extend_brk(PAGE_SIZE, PAGE_SIZE);
  536. p2m_mid_init(mid);
  537. p2m_top[topidx] = mid;
  538. BUG_ON(mid_mfn_p != p2m_mid_missing_mfn);
  539. }
  540. /* And the save/restore P2M tables.. */
  541. if (mid_mfn_p == p2m_mid_missing_mfn) {
  542. mid_mfn_p = extend_brk(PAGE_SIZE, PAGE_SIZE);
  543. p2m_mid_mfn_init(mid_mfn_p);
  544. p2m_top_mfn_p[topidx] = mid_mfn_p;
  545. p2m_top_mfn[topidx] = virt_to_mfn(mid_mfn_p);
  546. /* Note: we don't set mid_mfn_p[midix] here,
  547. * look in early_alloc_p2m_middle */
  548. }
  549. return true;
  550. }
  551. /*
  552. * Skim over the P2M tree looking at pages that are either filled with
  553. * INVALID_P2M_ENTRY or with 1:1 PFNs. If found, re-use that page and
  554. * replace the P2M leaf with a p2m_missing or p2m_identity.
  555. * Stick the old page in the new P2M tree location.
  556. */
  557. bool __init early_can_reuse_p2m_middle(unsigned long set_pfn, unsigned long set_mfn)
  558. {
  559. unsigned topidx;
  560. unsigned mididx;
  561. unsigned ident_pfns;
  562. unsigned inv_pfns;
  563. unsigned long *p2m;
  564. unsigned long *mid_mfn_p;
  565. unsigned idx;
  566. unsigned long pfn;
  567. /* We only look when this entails a P2M middle layer */
  568. if (p2m_index(set_pfn))
  569. return false;
  570. for (pfn = 0; pfn < MAX_DOMAIN_PAGES; pfn += P2M_PER_PAGE) {
  571. topidx = p2m_top_index(pfn);
  572. if (!p2m_top[topidx])
  573. continue;
  574. if (p2m_top[topidx] == p2m_mid_missing)
  575. continue;
  576. mididx = p2m_mid_index(pfn);
  577. p2m = p2m_top[topidx][mididx];
  578. if (!p2m)
  579. continue;
  580. if ((p2m == p2m_missing) || (p2m == p2m_identity))
  581. continue;
  582. if ((unsigned long)p2m == INVALID_P2M_ENTRY)
  583. continue;
  584. ident_pfns = 0;
  585. inv_pfns = 0;
  586. for (idx = 0; idx < P2M_PER_PAGE; idx++) {
  587. /* IDENTITY_PFNs are 1:1 */
  588. if (p2m[idx] == IDENTITY_FRAME(pfn + idx))
  589. ident_pfns++;
  590. else if (p2m[idx] == INVALID_P2M_ENTRY)
  591. inv_pfns++;
  592. else
  593. break;
  594. }
  595. if ((ident_pfns == P2M_PER_PAGE) || (inv_pfns == P2M_PER_PAGE))
  596. goto found;
  597. }
  598. return false;
  599. found:
  600. /* Found one, replace old with p2m_identity or p2m_missing */
  601. p2m_top[topidx][mididx] = (ident_pfns ? p2m_identity : p2m_missing);
  602. /* And the other for save/restore.. */
  603. mid_mfn_p = p2m_top_mfn_p[topidx];
  604. /* NOTE: Even if it is a p2m_identity it should still be point to
  605. * a page filled with INVALID_P2M_ENTRY entries. */
  606. mid_mfn_p[mididx] = virt_to_mfn(p2m_missing);
  607. /* Reset where we want to stick the old page in. */
  608. topidx = p2m_top_index(set_pfn);
  609. mididx = p2m_mid_index(set_pfn);
  610. /* This shouldn't happen */
  611. if (WARN_ON(p2m_top[topidx] == p2m_mid_missing))
  612. early_alloc_p2m(set_pfn);
  613. if (WARN_ON(p2m_top[topidx][mididx] != p2m_missing))
  614. return false;
  615. p2m_init(p2m);
  616. p2m_top[topidx][mididx] = p2m;
  617. mid_mfn_p = p2m_top_mfn_p[topidx];
  618. mid_mfn_p[mididx] = virt_to_mfn(p2m);
  619. return true;
  620. }
  621. bool __init early_set_phys_to_machine(unsigned long pfn, unsigned long mfn)
  622. {
  623. if (unlikely(!__set_phys_to_machine(pfn, mfn))) {
  624. if (!early_alloc_p2m(pfn))
  625. return false;
  626. if (early_can_reuse_p2m_middle(pfn, mfn))
  627. return __set_phys_to_machine(pfn, mfn);
  628. if (!early_alloc_p2m_middle(pfn, false /* boundary crossover OK!*/))
  629. return false;
  630. if (!__set_phys_to_machine(pfn, mfn))
  631. return false;
  632. }
  633. return true;
  634. }
  635. unsigned long __init set_phys_range_identity(unsigned long pfn_s,
  636. unsigned long pfn_e)
  637. {
  638. unsigned long pfn;
  639. if (unlikely(pfn_s >= MAX_P2M_PFN || pfn_e >= MAX_P2M_PFN))
  640. return 0;
  641. if (unlikely(xen_feature(XENFEAT_auto_translated_physmap)))
  642. return pfn_e - pfn_s;
  643. if (pfn_s > pfn_e)
  644. return 0;
  645. for (pfn = (pfn_s & ~(P2M_MID_PER_PAGE * P2M_PER_PAGE - 1));
  646. pfn < ALIGN(pfn_e, (P2M_MID_PER_PAGE * P2M_PER_PAGE));
  647. pfn += P2M_MID_PER_PAGE * P2M_PER_PAGE)
  648. {
  649. WARN_ON(!early_alloc_p2m(pfn));
  650. }
  651. early_alloc_p2m_middle(pfn_s, true);
  652. early_alloc_p2m_middle(pfn_e, true);
  653. for (pfn = pfn_s; pfn < pfn_e; pfn++)
  654. if (!__set_phys_to_machine(pfn, IDENTITY_FRAME(pfn)))
  655. break;
  656. if (!WARN((pfn - pfn_s) != (pfn_e - pfn_s),
  657. "Identity mapping failed. We are %ld short of 1-1 mappings!\n",
  658. (pfn_e - pfn_s) - (pfn - pfn_s)))
  659. printk(KERN_DEBUG "1-1 mapping on %lx->%lx\n", pfn_s, pfn);
  660. return pfn - pfn_s;
  661. }
  662. /* Try to install p2m mapping; fail if intermediate bits missing */
  663. bool __set_phys_to_machine(unsigned long pfn, unsigned long mfn)
  664. {
  665. unsigned topidx, mididx, idx;
  666. if (unlikely(xen_feature(XENFEAT_auto_translated_physmap))) {
  667. BUG_ON(pfn != mfn && mfn != INVALID_P2M_ENTRY);
  668. return true;
  669. }
  670. if (unlikely(pfn >= MAX_P2M_PFN)) {
  671. BUG_ON(mfn != INVALID_P2M_ENTRY);
  672. return true;
  673. }
  674. topidx = p2m_top_index(pfn);
  675. mididx = p2m_mid_index(pfn);
  676. idx = p2m_index(pfn);
  677. /* For sparse holes were the p2m leaf has real PFN along with
  678. * PCI holes, stick in the PFN as the MFN value.
  679. */
  680. if (mfn != INVALID_P2M_ENTRY && (mfn & IDENTITY_FRAME_BIT)) {
  681. if (p2m_top[topidx][mididx] == p2m_identity)
  682. return true;
  683. /* Swap over from MISSING to IDENTITY if needed. */
  684. if (p2m_top[topidx][mididx] == p2m_missing) {
  685. WARN_ON(cmpxchg(&p2m_top[topidx][mididx], p2m_missing,
  686. p2m_identity) != p2m_missing);
  687. return true;
  688. }
  689. }
  690. if (p2m_top[topidx][mididx] == p2m_missing)
  691. return mfn == INVALID_P2M_ENTRY;
  692. p2m_top[topidx][mididx][idx] = mfn;
  693. return true;
  694. }
  695. bool set_phys_to_machine(unsigned long pfn, unsigned long mfn)
  696. {
  697. if (unlikely(!__set_phys_to_machine(pfn, mfn))) {
  698. if (!alloc_p2m(pfn))
  699. return false;
  700. if (!__set_phys_to_machine(pfn, mfn))
  701. return false;
  702. }
  703. return true;
  704. }
  705. #define M2P_OVERRIDE_HASH_SHIFT 10
  706. #define M2P_OVERRIDE_HASH (1 << M2P_OVERRIDE_HASH_SHIFT)
  707. static RESERVE_BRK_ARRAY(struct list_head, m2p_overrides, M2P_OVERRIDE_HASH);
  708. static DEFINE_SPINLOCK(m2p_override_lock);
  709. static void __init m2p_override_init(void)
  710. {
  711. unsigned i;
  712. m2p_overrides = extend_brk(sizeof(*m2p_overrides) * M2P_OVERRIDE_HASH,
  713. sizeof(unsigned long));
  714. for (i = 0; i < M2P_OVERRIDE_HASH; i++)
  715. INIT_LIST_HEAD(&m2p_overrides[i]);
  716. }
  717. static unsigned long mfn_hash(unsigned long mfn)
  718. {
  719. return hash_long(mfn, M2P_OVERRIDE_HASH_SHIFT);
  720. }
  721. /* Add an MFN override for a particular page */
  722. int m2p_add_override(unsigned long mfn, struct page *page,
  723. struct gnttab_map_grant_ref *kmap_op)
  724. {
  725. unsigned long flags;
  726. unsigned long pfn;
  727. unsigned long uninitialized_var(address);
  728. unsigned level;
  729. pte_t *ptep = NULL;
  730. int ret = 0;
  731. pfn = page_to_pfn(page);
  732. if (!PageHighMem(page)) {
  733. address = (unsigned long)__va(pfn << PAGE_SHIFT);
  734. ptep = lookup_address(address, &level);
  735. if (WARN(ptep == NULL || level != PG_LEVEL_4K,
  736. "m2p_add_override: pfn %lx not mapped", pfn))
  737. return -EINVAL;
  738. }
  739. WARN_ON(PagePrivate(page));
  740. SetPagePrivate(page);
  741. set_page_private(page, mfn);
  742. page->index = pfn_to_mfn(pfn);
  743. if (unlikely(!set_phys_to_machine(pfn, FOREIGN_FRAME(mfn))))
  744. return -ENOMEM;
  745. if (kmap_op != NULL) {
  746. if (!PageHighMem(page)) {
  747. struct multicall_space mcs =
  748. xen_mc_entry(sizeof(*kmap_op));
  749. MULTI_grant_table_op(mcs.mc,
  750. GNTTABOP_map_grant_ref, kmap_op, 1);
  751. xen_mc_issue(PARAVIRT_LAZY_MMU);
  752. }
  753. /* let's use dev_bus_addr to record the old mfn instead */
  754. kmap_op->dev_bus_addr = page->index;
  755. page->index = (unsigned long) kmap_op;
  756. }
  757. spin_lock_irqsave(&m2p_override_lock, flags);
  758. list_add(&page->lru, &m2p_overrides[mfn_hash(mfn)]);
  759. spin_unlock_irqrestore(&m2p_override_lock, flags);
  760. /* p2m(m2p(mfn)) == mfn: the mfn is already present somewhere in
  761. * this domain. Set the FOREIGN_FRAME_BIT in the p2m for the other
  762. * pfn so that the following mfn_to_pfn(mfn) calls will return the
  763. * pfn from the m2p_override (the backend pfn) instead.
  764. * We need to do this because the pages shared by the frontend
  765. * (xen-blkfront) can be already locked (lock_page, called by
  766. * do_read_cache_page); when the userspace backend tries to use them
  767. * with direct_IO, mfn_to_pfn returns the pfn of the frontend, so
  768. * do_blockdev_direct_IO is going to try to lock the same pages
  769. * again resulting in a deadlock.
  770. * As a side effect get_user_pages_fast might not be safe on the
  771. * frontend pages while they are being shared with the backend,
  772. * because mfn_to_pfn (that ends up being called by GUPF) will
  773. * return the backend pfn rather than the frontend pfn. */
  774. ret = __get_user(pfn, &machine_to_phys_mapping[mfn]);
  775. if (ret == 0 && get_phys_to_machine(pfn) == mfn)
  776. set_phys_to_machine(pfn, FOREIGN_FRAME(mfn));
  777. return 0;
  778. }
  779. EXPORT_SYMBOL_GPL(m2p_add_override);
  780. int m2p_remove_override(struct page *page, bool clear_pte)
  781. {
  782. unsigned long flags;
  783. unsigned long mfn;
  784. unsigned long pfn;
  785. unsigned long uninitialized_var(address);
  786. unsigned level;
  787. pte_t *ptep = NULL;
  788. int ret = 0;
  789. pfn = page_to_pfn(page);
  790. mfn = get_phys_to_machine(pfn);
  791. if (mfn == INVALID_P2M_ENTRY || !(mfn & FOREIGN_FRAME_BIT))
  792. return -EINVAL;
  793. if (!PageHighMem(page)) {
  794. address = (unsigned long)__va(pfn << PAGE_SHIFT);
  795. ptep = lookup_address(address, &level);
  796. if (WARN(ptep == NULL || level != PG_LEVEL_4K,
  797. "m2p_remove_override: pfn %lx not mapped", pfn))
  798. return -EINVAL;
  799. }
  800. spin_lock_irqsave(&m2p_override_lock, flags);
  801. list_del(&page->lru);
  802. spin_unlock_irqrestore(&m2p_override_lock, flags);
  803. WARN_ON(!PagePrivate(page));
  804. ClearPagePrivate(page);
  805. if (clear_pte) {
  806. struct gnttab_map_grant_ref *map_op =
  807. (struct gnttab_map_grant_ref *) page->index;
  808. set_phys_to_machine(pfn, map_op->dev_bus_addr);
  809. if (!PageHighMem(page)) {
  810. struct multicall_space mcs;
  811. struct gnttab_unmap_grant_ref *unmap_op;
  812. /*
  813. * It might be that we queued all the m2p grant table
  814. * hypercalls in a multicall, then m2p_remove_override
  815. * get called before the multicall has actually been
  816. * issued. In this case handle is going to -1 because
  817. * it hasn't been modified yet.
  818. */
  819. if (map_op->handle == -1)
  820. xen_mc_flush();
  821. /*
  822. * Now if map_op->handle is negative it means that the
  823. * hypercall actually returned an error.
  824. */
  825. if (map_op->handle == GNTST_general_error) {
  826. printk(KERN_WARNING "m2p_remove_override: "
  827. "pfn %lx mfn %lx, failed to modify kernel mappings",
  828. pfn, mfn);
  829. return -1;
  830. }
  831. mcs = xen_mc_entry(
  832. sizeof(struct gnttab_unmap_grant_ref));
  833. unmap_op = mcs.args;
  834. unmap_op->host_addr = map_op->host_addr;
  835. unmap_op->handle = map_op->handle;
  836. unmap_op->dev_bus_addr = 0;
  837. MULTI_grant_table_op(mcs.mc,
  838. GNTTABOP_unmap_grant_ref, unmap_op, 1);
  839. xen_mc_issue(PARAVIRT_LAZY_MMU);
  840. set_pte_at(&init_mm, address, ptep,
  841. pfn_pte(pfn, PAGE_KERNEL));
  842. __flush_tlb_single(address);
  843. map_op->host_addr = 0;
  844. }
  845. } else
  846. set_phys_to_machine(pfn, page->index);
  847. /* p2m(m2p(mfn)) == FOREIGN_FRAME(mfn): the mfn is already present
  848. * somewhere in this domain, even before being added to the
  849. * m2p_override (see comment above in m2p_add_override).
  850. * If there are no other entries in the m2p_override corresponding
  851. * to this mfn, then remove the FOREIGN_FRAME_BIT from the p2m for
  852. * the original pfn (the one shared by the frontend): the backend
  853. * cannot do any IO on this page anymore because it has been
  854. * unshared. Removing the FOREIGN_FRAME_BIT from the p2m entry of
  855. * the original pfn causes mfn_to_pfn(mfn) to return the frontend
  856. * pfn again. */
  857. mfn &= ~FOREIGN_FRAME_BIT;
  858. ret = __get_user(pfn, &machine_to_phys_mapping[mfn]);
  859. if (ret == 0 && get_phys_to_machine(pfn) == FOREIGN_FRAME(mfn) &&
  860. m2p_find_override(mfn) == NULL)
  861. set_phys_to_machine(pfn, mfn);
  862. return 0;
  863. }
  864. EXPORT_SYMBOL_GPL(m2p_remove_override);
  865. struct page *m2p_find_override(unsigned long mfn)
  866. {
  867. unsigned long flags;
  868. struct list_head *bucket = &m2p_overrides[mfn_hash(mfn)];
  869. struct page *p, *ret;
  870. ret = NULL;
  871. spin_lock_irqsave(&m2p_override_lock, flags);
  872. list_for_each_entry(p, bucket, lru) {
  873. if (page_private(p) == mfn) {
  874. ret = p;
  875. break;
  876. }
  877. }
  878. spin_unlock_irqrestore(&m2p_override_lock, flags);
  879. return ret;
  880. }
  881. unsigned long m2p_find_override_pfn(unsigned long mfn, unsigned long pfn)
  882. {
  883. struct page *p = m2p_find_override(mfn);
  884. unsigned long ret = pfn;
  885. if (p)
  886. ret = page_to_pfn(p);
  887. return ret;
  888. }
  889. EXPORT_SYMBOL_GPL(m2p_find_override_pfn);
  890. #ifdef CONFIG_XEN_DEBUG_FS
  891. #include <linux/debugfs.h>
  892. #include "debugfs.h"
  893. static int p2m_dump_show(struct seq_file *m, void *v)
  894. {
  895. static const char * const level_name[] = { "top", "middle",
  896. "entry", "abnormal", "error"};
  897. #define TYPE_IDENTITY 0
  898. #define TYPE_MISSING 1
  899. #define TYPE_PFN 2
  900. #define TYPE_UNKNOWN 3
  901. static const char * const type_name[] = {
  902. [TYPE_IDENTITY] = "identity",
  903. [TYPE_MISSING] = "missing",
  904. [TYPE_PFN] = "pfn",
  905. [TYPE_UNKNOWN] = "abnormal"};
  906. unsigned long pfn, prev_pfn_type = 0, prev_pfn_level = 0;
  907. unsigned int uninitialized_var(prev_level);
  908. unsigned int uninitialized_var(prev_type);
  909. if (!p2m_top)
  910. return 0;
  911. for (pfn = 0; pfn < MAX_DOMAIN_PAGES; pfn++) {
  912. unsigned topidx = p2m_top_index(pfn);
  913. unsigned mididx = p2m_mid_index(pfn);
  914. unsigned idx = p2m_index(pfn);
  915. unsigned lvl, type;
  916. lvl = 4;
  917. type = TYPE_UNKNOWN;
  918. if (p2m_top[topidx] == p2m_mid_missing) {
  919. lvl = 0; type = TYPE_MISSING;
  920. } else if (p2m_top[topidx] == NULL) {
  921. lvl = 0; type = TYPE_UNKNOWN;
  922. } else if (p2m_top[topidx][mididx] == NULL) {
  923. lvl = 1; type = TYPE_UNKNOWN;
  924. } else if (p2m_top[topidx][mididx] == p2m_identity) {
  925. lvl = 1; type = TYPE_IDENTITY;
  926. } else if (p2m_top[topidx][mididx] == p2m_missing) {
  927. lvl = 1; type = TYPE_MISSING;
  928. } else if (p2m_top[topidx][mididx][idx] == 0) {
  929. lvl = 2; type = TYPE_UNKNOWN;
  930. } else if (p2m_top[topidx][mididx][idx] == IDENTITY_FRAME(pfn)) {
  931. lvl = 2; type = TYPE_IDENTITY;
  932. } else if (p2m_top[topidx][mididx][idx] == INVALID_P2M_ENTRY) {
  933. lvl = 2; type = TYPE_MISSING;
  934. } else if (p2m_top[topidx][mididx][idx] == pfn) {
  935. lvl = 2; type = TYPE_PFN;
  936. } else if (p2m_top[topidx][mididx][idx] != pfn) {
  937. lvl = 2; type = TYPE_PFN;
  938. }
  939. if (pfn == 0) {
  940. prev_level = lvl;
  941. prev_type = type;
  942. }
  943. if (pfn == MAX_DOMAIN_PAGES-1) {
  944. lvl = 3;
  945. type = TYPE_UNKNOWN;
  946. }
  947. if (prev_type != type) {
  948. seq_printf(m, " [0x%lx->0x%lx] %s\n",
  949. prev_pfn_type, pfn, type_name[prev_type]);
  950. prev_pfn_type = pfn;
  951. prev_type = type;
  952. }
  953. if (prev_level != lvl) {
  954. seq_printf(m, " [0x%lx->0x%lx] level %s\n",
  955. prev_pfn_level, pfn, level_name[prev_level]);
  956. prev_pfn_level = pfn;
  957. prev_level = lvl;
  958. }
  959. }
  960. return 0;
  961. #undef TYPE_IDENTITY
  962. #undef TYPE_MISSING
  963. #undef TYPE_PFN
  964. #undef TYPE_UNKNOWN
  965. }
  966. static int p2m_dump_open(struct inode *inode, struct file *filp)
  967. {
  968. return single_open(filp, p2m_dump_show, NULL);
  969. }
  970. static const struct file_operations p2m_dump_fops = {
  971. .open = p2m_dump_open,
  972. .read = seq_read,
  973. .llseek = seq_lseek,
  974. .release = single_release,
  975. };
  976. static struct dentry *d_mmu_debug;
  977. static int __init xen_p2m_debugfs(void)
  978. {
  979. struct dentry *d_xen = xen_init_debugfs();
  980. if (d_xen == NULL)
  981. return -ENOMEM;
  982. d_mmu_debug = debugfs_create_dir("mmu", d_xen);
  983. debugfs_create_file("p2m", 0600, d_mmu_debug, NULL, &p2m_dump_fops);
  984. return 0;
  985. }
  986. fs_initcall(xen_p2m_debugfs);
  987. #endif /* CONFIG_XEN_DEBUG_FS */