memory-failure.c 8.2 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Memory-failure functional tests.
  4. *
  5. * Author(s): Miaohe Lin <linmiaohe@huawei.com>
  6. */
  7. #include "../kselftest_harness.h"
  8. #include <sys/mman.h>
  9. #include <linux/mman.h>
  10. #include <linux/string.h>
  11. #include <unistd.h>
  12. #include <signal.h>
  13. #include <setjmp.h>
  14. #include <unistd.h>
  15. #include <fcntl.h>
  16. #include <sys/vfs.h>
  17. #include <linux/magic.h>
  18. #include <errno.h>
  19. #include "vm_util.h"
  20. enum inject_type {
  21. MADV_HARD,
  22. MADV_SOFT,
  23. };
  24. enum result_type {
  25. MADV_HARD_ANON,
  26. MADV_HARD_CLEAN_PAGECACHE,
  27. MADV_HARD_DIRTY_PAGECACHE,
  28. MADV_SOFT_ANON,
  29. MADV_SOFT_CLEAN_PAGECACHE,
  30. MADV_SOFT_DIRTY_PAGECACHE,
  31. };
  32. static jmp_buf signal_jmp_buf;
  33. static siginfo_t siginfo;
  34. const char *pagemap_proc = "/proc/self/pagemap";
  35. const char *kpageflags_proc = "/proc/kpageflags";
  36. FIXTURE(memory_failure)
  37. {
  38. unsigned long page_size;
  39. unsigned long corrupted_size;
  40. unsigned long pfn;
  41. int pagemap_fd;
  42. int kpageflags_fd;
  43. bool triggered;
  44. };
  45. FIXTURE_VARIANT(memory_failure)
  46. {
  47. enum inject_type type;
  48. int (*inject)(FIXTURE_DATA(memory_failure) * self, void *vaddr);
  49. };
  50. static int madv_hard_inject(FIXTURE_DATA(memory_failure) * self, void *vaddr)
  51. {
  52. return madvise(vaddr, self->page_size, MADV_HWPOISON);
  53. }
  54. FIXTURE_VARIANT_ADD(memory_failure, madv_hard)
  55. {
  56. .type = MADV_HARD,
  57. .inject = madv_hard_inject,
  58. };
  59. static int madv_soft_inject(FIXTURE_DATA(memory_failure) * self, void *vaddr)
  60. {
  61. return madvise(vaddr, self->page_size, MADV_SOFT_OFFLINE);
  62. }
  63. FIXTURE_VARIANT_ADD(memory_failure, madv_soft)
  64. {
  65. .type = MADV_SOFT,
  66. .inject = madv_soft_inject,
  67. };
  68. static void sigbus_action(int signo, siginfo_t *si, void *args)
  69. {
  70. memcpy(&siginfo, si, sizeof(siginfo_t));
  71. siglongjmp(signal_jmp_buf, 1);
  72. }
  73. static int setup_sighandler(void)
  74. {
  75. struct sigaction sa = {
  76. .sa_sigaction = sigbus_action,
  77. .sa_flags = SA_SIGINFO,
  78. };
  79. return sigaction(SIGBUS, &sa, NULL);
  80. }
  81. FIXTURE_SETUP(memory_failure)
  82. {
  83. memset(self, 0, sizeof(*self));
  84. self->page_size = (unsigned long)sysconf(_SC_PAGESIZE);
  85. memset(&siginfo, 0, sizeof(siginfo));
  86. if (setup_sighandler())
  87. SKIP(return, "setup sighandler failed.\n");
  88. self->pagemap_fd = open(pagemap_proc, O_RDONLY);
  89. if (self->pagemap_fd == -1)
  90. SKIP(return, "open %s failed.\n", pagemap_proc);
  91. self->kpageflags_fd = open(kpageflags_proc, O_RDONLY);
  92. if (self->kpageflags_fd == -1)
  93. SKIP(return, "open %s failed.\n", kpageflags_proc);
  94. }
  95. static void teardown_sighandler(void)
  96. {
  97. struct sigaction sa = {
  98. .sa_handler = SIG_DFL,
  99. .sa_flags = SA_SIGINFO,
  100. };
  101. sigaction(SIGBUS, &sa, NULL);
  102. }
  103. FIXTURE_TEARDOWN(memory_failure)
  104. {
  105. close(self->kpageflags_fd);
  106. close(self->pagemap_fd);
  107. teardown_sighandler();
  108. }
  109. static void prepare(struct __test_metadata *_metadata, FIXTURE_DATA(memory_failure) * self,
  110. void *vaddr)
  111. {
  112. self->pfn = pagemap_get_pfn(self->pagemap_fd, vaddr);
  113. ASSERT_NE(self->pfn, -1UL);
  114. ASSERT_EQ(get_hardware_corrupted_size(&self->corrupted_size), 0);
  115. }
  116. static bool check_memory(void *vaddr, unsigned long size)
  117. {
  118. char buf[64];
  119. memset(buf, 0xce, sizeof(buf));
  120. while (size >= sizeof(buf)) {
  121. if (memcmp(vaddr, buf, sizeof(buf)))
  122. return false;
  123. size -= sizeof(buf);
  124. vaddr += sizeof(buf);
  125. }
  126. return true;
  127. }
  128. static void check(struct __test_metadata *_metadata, FIXTURE_DATA(memory_failure) * self,
  129. void *vaddr, enum result_type type, int setjmp)
  130. {
  131. unsigned long size;
  132. uint64_t pfn_flags;
  133. switch (type) {
  134. case MADV_SOFT_ANON:
  135. case MADV_HARD_CLEAN_PAGECACHE:
  136. case MADV_SOFT_CLEAN_PAGECACHE:
  137. case MADV_SOFT_DIRTY_PAGECACHE:
  138. /* It is not expected to receive a SIGBUS signal. */
  139. ASSERT_EQ(setjmp, 0);
  140. /* The page content should remain unchanged. */
  141. ASSERT_TRUE(check_memory(vaddr, self->page_size));
  142. /* The backing pfn of addr should have changed. */
  143. ASSERT_NE(pagemap_get_pfn(self->pagemap_fd, vaddr), self->pfn);
  144. break;
  145. case MADV_HARD_ANON:
  146. case MADV_HARD_DIRTY_PAGECACHE:
  147. /* The SIGBUS signal should have been received. */
  148. ASSERT_EQ(setjmp, 1);
  149. /* Check if siginfo contains correct SIGBUS context. */
  150. ASSERT_EQ(siginfo.si_signo, SIGBUS);
  151. ASSERT_EQ(siginfo.si_code, BUS_MCEERR_AR);
  152. ASSERT_EQ(1UL << siginfo.si_addr_lsb, self->page_size);
  153. ASSERT_EQ(siginfo.si_addr, vaddr);
  154. /* XXX Check backing pte is hwpoison entry when supported. */
  155. ASSERT_TRUE(pagemap_is_swapped(self->pagemap_fd, vaddr));
  156. break;
  157. default:
  158. SKIP(return, "unexpected inject type %d.\n", type);
  159. }
  160. /* Check if the value of HardwareCorrupted has increased. */
  161. ASSERT_EQ(get_hardware_corrupted_size(&size), 0);
  162. ASSERT_EQ(size, self->corrupted_size + self->page_size / 1024);
  163. /* Check if HWPoison flag is set. */
  164. ASSERT_EQ(pageflags_get(self->pfn, self->kpageflags_fd, &pfn_flags), 0);
  165. ASSERT_EQ(pfn_flags & KPF_HWPOISON, KPF_HWPOISON);
  166. }
  167. static void cleanup(struct __test_metadata *_metadata, FIXTURE_DATA(memory_failure) * self,
  168. void *vaddr)
  169. {
  170. unsigned long size;
  171. uint64_t pfn_flags;
  172. ASSERT_EQ(unpoison_memory(self->pfn), 0);
  173. /* Check if HWPoison flag is cleared. */
  174. ASSERT_EQ(pageflags_get(self->pfn, self->kpageflags_fd, &pfn_flags), 0);
  175. ASSERT_NE(pfn_flags & KPF_HWPOISON, KPF_HWPOISON);
  176. /* Check if the value of HardwareCorrupted has decreased. */
  177. ASSERT_EQ(get_hardware_corrupted_size(&size), 0);
  178. ASSERT_EQ(size, self->corrupted_size);
  179. }
  180. TEST_F(memory_failure, anon)
  181. {
  182. char *addr;
  183. int ret;
  184. addr = mmap(0, self->page_size, PROT_READ | PROT_WRITE,
  185. MAP_ANONYMOUS | MAP_PRIVATE, -1, 0);
  186. if (addr == MAP_FAILED)
  187. SKIP(return, "mmap failed, not enough memory.\n");
  188. memset(addr, 0xce, self->page_size);
  189. prepare(_metadata, self, addr);
  190. ret = sigsetjmp(signal_jmp_buf, 1);
  191. if (!self->triggered) {
  192. self->triggered = true;
  193. ASSERT_EQ(variant->inject(self, addr), 0);
  194. FORCE_READ(*addr);
  195. }
  196. if (variant->type == MADV_HARD)
  197. check(_metadata, self, addr, MADV_HARD_ANON, ret);
  198. else
  199. check(_metadata, self, addr, MADV_SOFT_ANON, ret);
  200. cleanup(_metadata, self, addr);
  201. ASSERT_EQ(munmap(addr, self->page_size), 0);
  202. }
  203. static int prepare_file(const char *fname, unsigned long size)
  204. {
  205. int fd;
  206. fd = open(fname, O_RDWR | O_CREAT, 0664);
  207. if (fd >= 0) {
  208. unlink(fname);
  209. ftruncate(fd, size);
  210. }
  211. return fd;
  212. }
  213. /* Borrowed from mm/gup_longterm.c. */
  214. static int get_fs_type(int fd)
  215. {
  216. struct statfs fs;
  217. int ret;
  218. do {
  219. ret = fstatfs(fd, &fs);
  220. } while (ret && errno == EINTR);
  221. return ret ? 0 : (int)fs.f_type;
  222. }
  223. TEST_F(memory_failure, clean_pagecache)
  224. {
  225. int fd;
  226. char *addr;
  227. int ret;
  228. int fs_type;
  229. fd = prepare_file("./clean-page-cache-test-file", self->page_size);
  230. if (fd < 0)
  231. SKIP(return, "failed to open test file.\n");
  232. fs_type = get_fs_type(fd);
  233. if (!fs_type || fs_type == TMPFS_MAGIC)
  234. SKIP(return, "unsupported filesystem :%x\n", fs_type);
  235. addr = mmap(0, self->page_size, PROT_READ | PROT_WRITE,
  236. MAP_SHARED, fd, 0);
  237. if (addr == MAP_FAILED)
  238. SKIP(return, "mmap failed, not enough memory.\n");
  239. memset(addr, 0xce, self->page_size);
  240. fsync(fd);
  241. prepare(_metadata, self, addr);
  242. ret = sigsetjmp(signal_jmp_buf, 1);
  243. if (!self->triggered) {
  244. self->triggered = true;
  245. ASSERT_EQ(variant->inject(self, addr), 0);
  246. FORCE_READ(*addr);
  247. }
  248. if (variant->type == MADV_HARD)
  249. check(_metadata, self, addr, MADV_HARD_CLEAN_PAGECACHE, ret);
  250. else
  251. check(_metadata, self, addr, MADV_SOFT_CLEAN_PAGECACHE, ret);
  252. cleanup(_metadata, self, addr);
  253. ASSERT_EQ(munmap(addr, self->page_size), 0);
  254. ASSERT_EQ(close(fd), 0);
  255. }
  256. TEST_F(memory_failure, dirty_pagecache)
  257. {
  258. int fd;
  259. char *addr;
  260. int ret;
  261. int fs_type;
  262. fd = prepare_file("./dirty-page-cache-test-file", self->page_size);
  263. if (fd < 0)
  264. SKIP(return, "failed to open test file.\n");
  265. fs_type = get_fs_type(fd);
  266. if (!fs_type || fs_type == TMPFS_MAGIC)
  267. SKIP(return, "unsupported filesystem :%x\n", fs_type);
  268. addr = mmap(0, self->page_size, PROT_READ | PROT_WRITE,
  269. MAP_SHARED, fd, 0);
  270. if (addr == MAP_FAILED)
  271. SKIP(return, "mmap failed, not enough memory.\n");
  272. memset(addr, 0xce, self->page_size);
  273. prepare(_metadata, self, addr);
  274. ret = sigsetjmp(signal_jmp_buf, 1);
  275. if (!self->triggered) {
  276. self->triggered = true;
  277. ASSERT_EQ(variant->inject(self, addr), 0);
  278. FORCE_READ(*addr);
  279. }
  280. if (variant->type == MADV_HARD)
  281. check(_metadata, self, addr, MADV_HARD_DIRTY_PAGECACHE, ret);
  282. else
  283. check(_metadata, self, addr, MADV_SOFT_DIRTY_PAGECACHE, ret);
  284. cleanup(_metadata, self, addr);
  285. ASSERT_EQ(munmap(addr, self->page_size), 0);
  286. ASSERT_EQ(close(fd), 0);
  287. }
  288. TEST_HARNESS_MAIN