seccomp_bpf.c 119 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (c) 2012 The Chromium OS Authors. All rights reserved.
  4. *
  5. * Test code for seccomp bpf.
  6. */
  7. #define _GNU_SOURCE
  8. #include <sys/types.h>
  9. /*
  10. * glibc 2.26 and later have SIGSYS in siginfo_t. Before that,
  11. * we need to use the kernel's siginfo.h file and trick glibc
  12. * into accepting it.
  13. */
  14. #if !__GLIBC_PREREQ(2, 26)
  15. # include <asm/siginfo.h>
  16. # define __have_siginfo_t 1
  17. # define __have_sigval_t 1
  18. # define __have_sigevent_t 1
  19. #endif
  20. #include <errno.h>
  21. #include <linux/filter.h>
  22. #include <sys/prctl.h>
  23. #include <sys/ptrace.h>
  24. #include <sys/user.h>
  25. #include <linux/prctl.h>
  26. #include <linux/ptrace.h>
  27. #include <linux/seccomp.h>
  28. #include <pthread.h>
  29. #include <semaphore.h>
  30. #include <signal.h>
  31. #include <stddef.h>
  32. #include <stdbool.h>
  33. #include <string.h>
  34. #include <time.h>
  35. #include <limits.h>
  36. #include <linux/elf.h>
  37. #include <sys/uio.h>
  38. #include <sys/utsname.h>
  39. #include <sys/fcntl.h>
  40. #include <sys/mman.h>
  41. #include <sys/times.h>
  42. #include <sys/socket.h>
  43. #include <sys/ioctl.h>
  44. #include <linux/kcmp.h>
  45. #include <sys/resource.h>
  46. #include <sys/capability.h>
  47. #include <unistd.h>
  48. #include <sys/syscall.h>
  49. #include <poll.h>
  50. #include "../kselftest_harness.h"
  51. #include "../clone3/clone3_selftests.h"
  52. /* Attempt to de-conflict with the selftests tree. */
  53. #ifndef SKIP
  54. #define SKIP(s, ...) XFAIL(s, ##__VA_ARGS__)
  55. #endif
  56. #define MIN(X, Y) ((X) < (Y) ? (X) : (Y))
  57. #ifndef PR_SET_PTRACER
  58. # define PR_SET_PTRACER 0x59616d61
  59. #endif
  60. #ifndef PR_SET_NO_NEW_PRIVS
  61. #define PR_SET_NO_NEW_PRIVS 38
  62. #define PR_GET_NO_NEW_PRIVS 39
  63. #endif
  64. #ifndef PR_SECCOMP_EXT
  65. #define PR_SECCOMP_EXT 43
  66. #endif
  67. #ifndef SECCOMP_EXT_ACT
  68. #define SECCOMP_EXT_ACT 1
  69. #endif
  70. #ifndef SECCOMP_EXT_ACT_TSYNC
  71. #define SECCOMP_EXT_ACT_TSYNC 1
  72. #endif
  73. #ifndef SECCOMP_MODE_STRICT
  74. #define SECCOMP_MODE_STRICT 1
  75. #endif
  76. #ifndef SECCOMP_MODE_FILTER
  77. #define SECCOMP_MODE_FILTER 2
  78. #endif
  79. #ifndef SECCOMP_RET_ALLOW
  80. struct seccomp_data {
  81. int nr;
  82. __u32 arch;
  83. __u64 instruction_pointer;
  84. __u64 args[6];
  85. };
  86. #endif
  87. #ifndef SECCOMP_RET_KILL_PROCESS
  88. #define SECCOMP_RET_KILL_PROCESS 0x80000000U /* kill the process */
  89. #define SECCOMP_RET_KILL_THREAD 0x00000000U /* kill the thread */
  90. #endif
  91. #ifndef SECCOMP_RET_KILL
  92. #define SECCOMP_RET_KILL SECCOMP_RET_KILL_THREAD
  93. #define SECCOMP_RET_TRAP 0x00030000U /* disallow and force a SIGSYS */
  94. #define SECCOMP_RET_ERRNO 0x00050000U /* returns an errno */
  95. #define SECCOMP_RET_TRACE 0x7ff00000U /* pass to a tracer or disallow */
  96. #define SECCOMP_RET_ALLOW 0x7fff0000U /* allow */
  97. #endif
  98. #ifndef SECCOMP_RET_LOG
  99. #define SECCOMP_RET_LOG 0x7ffc0000U /* allow after logging */
  100. #endif
  101. #ifndef __NR_seccomp
  102. # if defined(__i386__)
  103. # define __NR_seccomp 354
  104. # elif defined(__x86_64__)
  105. # define __NR_seccomp 317
  106. # elif defined(__arm__)
  107. # define __NR_seccomp 383
  108. # elif defined(__aarch64__)
  109. # define __NR_seccomp 277
  110. # elif defined(__riscv)
  111. # define __NR_seccomp 277
  112. # elif defined(__csky__)
  113. # define __NR_seccomp 277
  114. # elif defined(__hppa__)
  115. # define __NR_seccomp 338
  116. # elif defined(__powerpc__)
  117. # define __NR_seccomp 358
  118. # elif defined(__s390__)
  119. # define __NR_seccomp 348
  120. # elif defined(__xtensa__)
  121. # define __NR_seccomp 337
  122. # elif defined(__sh__)
  123. # define __NR_seccomp 372
  124. # else
  125. # warning "seccomp syscall number unknown for this architecture"
  126. # define __NR_seccomp 0xffff
  127. # endif
  128. #endif
  129. #ifndef SECCOMP_SET_MODE_STRICT
  130. #define SECCOMP_SET_MODE_STRICT 0
  131. #endif
  132. #ifndef SECCOMP_SET_MODE_FILTER
  133. #define SECCOMP_SET_MODE_FILTER 1
  134. #endif
  135. #ifndef SECCOMP_GET_ACTION_AVAIL
  136. #define SECCOMP_GET_ACTION_AVAIL 2
  137. #endif
  138. #ifndef SECCOMP_GET_NOTIF_SIZES
  139. #define SECCOMP_GET_NOTIF_SIZES 3
  140. #endif
  141. #ifndef SECCOMP_FILTER_FLAG_TSYNC
  142. #define SECCOMP_FILTER_FLAG_TSYNC (1UL << 0)
  143. #endif
  144. #ifndef SECCOMP_FILTER_FLAG_LOG
  145. #define SECCOMP_FILTER_FLAG_LOG (1UL << 1)
  146. #endif
  147. #ifndef SECCOMP_FILTER_FLAG_SPEC_ALLOW
  148. #define SECCOMP_FILTER_FLAG_SPEC_ALLOW (1UL << 2)
  149. #endif
  150. #ifndef PTRACE_SECCOMP_GET_METADATA
  151. #define PTRACE_SECCOMP_GET_METADATA 0x420d
  152. struct seccomp_metadata {
  153. __u64 filter_off; /* Input: which filter */
  154. __u64 flags; /* Output: filter's flags */
  155. };
  156. #endif
  157. #ifndef SECCOMP_FILTER_FLAG_NEW_LISTENER
  158. #define SECCOMP_FILTER_FLAG_NEW_LISTENER (1UL << 3)
  159. #endif
  160. #ifndef SECCOMP_RET_USER_NOTIF
  161. #define SECCOMP_RET_USER_NOTIF 0x7fc00000U
  162. #define SECCOMP_IOC_MAGIC '!'
  163. #define SECCOMP_IO(nr) _IO(SECCOMP_IOC_MAGIC, nr)
  164. #define SECCOMP_IOR(nr, type) _IOR(SECCOMP_IOC_MAGIC, nr, type)
  165. #define SECCOMP_IOW(nr, type) _IOW(SECCOMP_IOC_MAGIC, nr, type)
  166. #define SECCOMP_IOWR(nr, type) _IOWR(SECCOMP_IOC_MAGIC, nr, type)
  167. /* Flags for seccomp notification fd ioctl. */
  168. #define SECCOMP_IOCTL_NOTIF_RECV SECCOMP_IOWR(0, struct seccomp_notif)
  169. #define SECCOMP_IOCTL_NOTIF_SEND SECCOMP_IOWR(1, \
  170. struct seccomp_notif_resp)
  171. #define SECCOMP_IOCTL_NOTIF_ID_VALID SECCOMP_IOW(2, __u64)
  172. struct seccomp_notif {
  173. __u64 id;
  174. __u32 pid;
  175. __u32 flags;
  176. struct seccomp_data data;
  177. };
  178. struct seccomp_notif_resp {
  179. __u64 id;
  180. __s64 val;
  181. __s32 error;
  182. __u32 flags;
  183. };
  184. struct seccomp_notif_sizes {
  185. __u16 seccomp_notif;
  186. __u16 seccomp_notif_resp;
  187. __u16 seccomp_data;
  188. };
  189. #endif
  190. #ifndef SECCOMP_IOCTL_NOTIF_ADDFD
  191. /* On success, the return value is the remote process's added fd number */
  192. #define SECCOMP_IOCTL_NOTIF_ADDFD SECCOMP_IOW(3, \
  193. struct seccomp_notif_addfd)
  194. /* valid flags for seccomp_notif_addfd */
  195. #define SECCOMP_ADDFD_FLAG_SETFD (1UL << 0) /* Specify remote fd */
  196. struct seccomp_notif_addfd {
  197. __u64 id;
  198. __u32 flags;
  199. __u32 srcfd;
  200. __u32 newfd;
  201. __u32 newfd_flags;
  202. };
  203. #endif
  204. #ifndef SECCOMP_ADDFD_FLAG_SEND
  205. #define SECCOMP_ADDFD_FLAG_SEND (1UL << 1) /* Addfd and return it, atomically */
  206. #endif
  207. struct seccomp_notif_addfd_small {
  208. __u64 id;
  209. char weird[4];
  210. };
  211. #define SECCOMP_IOCTL_NOTIF_ADDFD_SMALL \
  212. SECCOMP_IOW(3, struct seccomp_notif_addfd_small)
  213. struct seccomp_notif_addfd_big {
  214. union {
  215. struct seccomp_notif_addfd addfd;
  216. char buf[sizeof(struct seccomp_notif_addfd) + 8];
  217. };
  218. };
  219. #define SECCOMP_IOCTL_NOTIF_ADDFD_BIG \
  220. SECCOMP_IOWR(3, struct seccomp_notif_addfd_big)
  221. #ifndef PTRACE_EVENTMSG_SYSCALL_ENTRY
  222. #define PTRACE_EVENTMSG_SYSCALL_ENTRY 1
  223. #define PTRACE_EVENTMSG_SYSCALL_EXIT 2
  224. #endif
  225. #ifndef SECCOMP_USER_NOTIF_FLAG_CONTINUE
  226. #define SECCOMP_USER_NOTIF_FLAG_CONTINUE 0x00000001
  227. #endif
  228. #ifndef SECCOMP_FILTER_FLAG_TSYNC_ESRCH
  229. #define SECCOMP_FILTER_FLAG_TSYNC_ESRCH (1UL << 4)
  230. #endif
  231. #ifndef SECCOMP_FILTER_FLAG_WAIT_KILLABLE_RECV
  232. #define SECCOMP_FILTER_FLAG_WAIT_KILLABLE_RECV (1UL << 5)
  233. #endif
  234. #ifndef seccomp
  235. int seccomp(unsigned int op, unsigned int flags, void *args)
  236. {
  237. errno = 0;
  238. return syscall(__NR_seccomp, op, flags, args);
  239. }
  240. #endif
  241. #if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
  242. #define syscall_arg(_n) (offsetof(struct seccomp_data, args[_n]))
  243. #elif __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__
  244. #define syscall_arg(_n) (offsetof(struct seccomp_data, args[_n]) + sizeof(__u32))
  245. #else
  246. #error "wut? Unknown __BYTE_ORDER__?!"
  247. #endif
  248. #define SIBLING_EXIT_UNKILLED 0xbadbeef
  249. #define SIBLING_EXIT_FAILURE 0xbadface
  250. #define SIBLING_EXIT_NEWPRIVS 0xbadfeed
  251. static int __filecmp(pid_t pid1, pid_t pid2, int fd1, int fd2)
  252. {
  253. #ifdef __NR_kcmp
  254. errno = 0;
  255. return syscall(__NR_kcmp, pid1, pid2, KCMP_FILE, fd1, fd2);
  256. #else
  257. errno = ENOSYS;
  258. return -1;
  259. #endif
  260. }
  261. /* Have TH_LOG report actual location filecmp() is used. */
  262. #define filecmp(pid1, pid2, fd1, fd2) ({ \
  263. int _ret; \
  264. \
  265. _ret = __filecmp(pid1, pid2, fd1, fd2); \
  266. if (_ret != 0) { \
  267. if (_ret < 0 && errno == ENOSYS) { \
  268. TH_LOG("kcmp() syscall missing (test is less accurate)");\
  269. _ret = 0; \
  270. } \
  271. } \
  272. _ret; })
  273. TEST(kcmp)
  274. {
  275. int ret;
  276. ret = __filecmp(getpid(), getpid(), 1, 1);
  277. EXPECT_EQ(ret, 0);
  278. if (ret != 0 && errno == ENOSYS)
  279. SKIP(return, "Kernel does not support kcmp() (missing CONFIG_KCMP?)");
  280. }
  281. TEST(mode_strict_support)
  282. {
  283. long ret;
  284. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_STRICT, NULL, NULL, NULL);
  285. ASSERT_EQ(0, ret) {
  286. TH_LOG("Kernel does not support CONFIG_SECCOMP");
  287. }
  288. syscall(__NR_exit, 0);
  289. }
  290. TEST_SIGNAL(mode_strict_cannot_call_prctl, SIGKILL)
  291. {
  292. long ret;
  293. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_STRICT, NULL, NULL, NULL);
  294. ASSERT_EQ(0, ret) {
  295. TH_LOG("Kernel does not support CONFIG_SECCOMP");
  296. }
  297. syscall(__NR_prctl, PR_SET_SECCOMP, SECCOMP_MODE_FILTER,
  298. NULL, NULL, NULL);
  299. EXPECT_FALSE(true) {
  300. TH_LOG("Unreachable!");
  301. }
  302. }
  303. /* Note! This doesn't test no new privs behavior */
  304. TEST(no_new_privs_support)
  305. {
  306. long ret;
  307. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  308. EXPECT_EQ(0, ret) {
  309. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  310. }
  311. }
  312. /* Tests kernel support by checking for a copy_from_user() fault on NULL. */
  313. TEST(mode_filter_support)
  314. {
  315. long ret;
  316. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, NULL, 0, 0);
  317. ASSERT_EQ(0, ret) {
  318. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  319. }
  320. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, NULL, NULL, NULL);
  321. EXPECT_EQ(-1, ret);
  322. EXPECT_EQ(EFAULT, errno) {
  323. TH_LOG("Kernel does not support CONFIG_SECCOMP_FILTER!");
  324. }
  325. }
  326. TEST(mode_filter_without_nnp)
  327. {
  328. struct sock_filter filter[] = {
  329. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  330. };
  331. struct sock_fprog prog = {
  332. .len = (unsigned short)ARRAY_SIZE(filter),
  333. .filter = filter,
  334. };
  335. long ret;
  336. ret = prctl(PR_GET_NO_NEW_PRIVS, 0, NULL, 0, 0);
  337. ASSERT_LE(0, ret) {
  338. TH_LOG("Expected 0 or unsupported for NO_NEW_PRIVS");
  339. }
  340. errno = 0;
  341. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  342. /* Succeeds with CAP_SYS_ADMIN, fails without */
  343. /* TODO(wad) check caps not euid */
  344. if (geteuid()) {
  345. EXPECT_EQ(-1, ret);
  346. EXPECT_EQ(EACCES, errno);
  347. } else {
  348. EXPECT_EQ(0, ret);
  349. }
  350. }
  351. #define MAX_INSNS_PER_PATH 32768
  352. TEST(filter_size_limits)
  353. {
  354. int i;
  355. int count = BPF_MAXINSNS + 1;
  356. struct sock_filter allow[] = {
  357. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  358. };
  359. struct sock_filter *filter;
  360. struct sock_fprog prog = { };
  361. long ret;
  362. filter = calloc(count, sizeof(*filter));
  363. ASSERT_NE(NULL, filter);
  364. for (i = 0; i < count; i++)
  365. filter[i] = allow[0];
  366. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  367. ASSERT_EQ(0, ret);
  368. prog.filter = filter;
  369. prog.len = count;
  370. /* Too many filter instructions in a single filter. */
  371. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  372. ASSERT_NE(0, ret) {
  373. TH_LOG("Installing %d insn filter was allowed", prog.len);
  374. }
  375. /* One less is okay, though. */
  376. prog.len -= 1;
  377. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  378. ASSERT_EQ(0, ret) {
  379. TH_LOG("Installing %d insn filter wasn't allowed", prog.len);
  380. }
  381. }
  382. TEST(filter_chain_limits)
  383. {
  384. int i;
  385. int count = BPF_MAXINSNS;
  386. struct sock_filter allow[] = {
  387. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  388. };
  389. struct sock_filter *filter;
  390. struct sock_fprog prog = { };
  391. long ret;
  392. filter = calloc(count, sizeof(*filter));
  393. ASSERT_NE(NULL, filter);
  394. for (i = 0; i < count; i++)
  395. filter[i] = allow[0];
  396. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  397. ASSERT_EQ(0, ret);
  398. prog.filter = filter;
  399. prog.len = 1;
  400. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  401. ASSERT_EQ(0, ret);
  402. prog.len = count;
  403. /* Too many total filter instructions. */
  404. for (i = 0; i < MAX_INSNS_PER_PATH; i++) {
  405. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  406. if (ret != 0)
  407. break;
  408. }
  409. ASSERT_NE(0, ret) {
  410. TH_LOG("Allowed %d %d-insn filters (total with penalties:%d)",
  411. i, count, i * (count + 4));
  412. }
  413. }
  414. TEST(mode_filter_cannot_move_to_strict)
  415. {
  416. struct sock_filter filter[] = {
  417. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  418. };
  419. struct sock_fprog prog = {
  420. .len = (unsigned short)ARRAY_SIZE(filter),
  421. .filter = filter,
  422. };
  423. long ret;
  424. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  425. ASSERT_EQ(0, ret);
  426. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  427. ASSERT_EQ(0, ret);
  428. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_STRICT, NULL, 0, 0);
  429. EXPECT_EQ(-1, ret);
  430. EXPECT_EQ(EINVAL, errno);
  431. }
  432. TEST(mode_filter_get_seccomp)
  433. {
  434. struct sock_filter filter[] = {
  435. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  436. };
  437. struct sock_fprog prog = {
  438. .len = (unsigned short)ARRAY_SIZE(filter),
  439. .filter = filter,
  440. };
  441. long ret;
  442. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  443. ASSERT_EQ(0, ret);
  444. ret = prctl(PR_GET_SECCOMP, 0, 0, 0, 0);
  445. EXPECT_EQ(0, ret);
  446. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  447. ASSERT_EQ(0, ret);
  448. ret = prctl(PR_GET_SECCOMP, 0, 0, 0, 0);
  449. EXPECT_EQ(2, ret);
  450. }
  451. TEST(ALLOW_all)
  452. {
  453. struct sock_filter filter[] = {
  454. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  455. };
  456. struct sock_fprog prog = {
  457. .len = (unsigned short)ARRAY_SIZE(filter),
  458. .filter = filter,
  459. };
  460. long ret;
  461. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  462. ASSERT_EQ(0, ret);
  463. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  464. ASSERT_EQ(0, ret);
  465. }
  466. TEST(empty_prog)
  467. {
  468. struct sock_filter filter[] = {
  469. };
  470. struct sock_fprog prog = {
  471. .len = (unsigned short)ARRAY_SIZE(filter),
  472. .filter = filter,
  473. };
  474. long ret;
  475. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  476. ASSERT_EQ(0, ret);
  477. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  478. EXPECT_EQ(-1, ret);
  479. EXPECT_EQ(EINVAL, errno);
  480. }
  481. TEST(log_all)
  482. {
  483. struct sock_filter filter[] = {
  484. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_LOG),
  485. };
  486. struct sock_fprog prog = {
  487. .len = (unsigned short)ARRAY_SIZE(filter),
  488. .filter = filter,
  489. };
  490. long ret;
  491. pid_t parent = getppid();
  492. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  493. ASSERT_EQ(0, ret);
  494. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  495. ASSERT_EQ(0, ret);
  496. /* getppid() should succeed and be logged (no check for logging) */
  497. EXPECT_EQ(parent, syscall(__NR_getppid));
  498. }
  499. TEST_SIGNAL(unknown_ret_is_kill_inside, SIGSYS)
  500. {
  501. struct sock_filter filter[] = {
  502. BPF_STMT(BPF_RET|BPF_K, 0x10000000U),
  503. };
  504. struct sock_fprog prog = {
  505. .len = (unsigned short)ARRAY_SIZE(filter),
  506. .filter = filter,
  507. };
  508. long ret;
  509. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  510. ASSERT_EQ(0, ret);
  511. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  512. ASSERT_EQ(0, ret);
  513. EXPECT_EQ(0, syscall(__NR_getpid)) {
  514. TH_LOG("getpid() shouldn't ever return");
  515. }
  516. }
  517. /* return code >= 0x80000000 is unused. */
  518. TEST_SIGNAL(unknown_ret_is_kill_above_allow, SIGSYS)
  519. {
  520. struct sock_filter filter[] = {
  521. BPF_STMT(BPF_RET|BPF_K, 0x90000000U),
  522. };
  523. struct sock_fprog prog = {
  524. .len = (unsigned short)ARRAY_SIZE(filter),
  525. .filter = filter,
  526. };
  527. long ret;
  528. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  529. ASSERT_EQ(0, ret);
  530. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  531. ASSERT_EQ(0, ret);
  532. EXPECT_EQ(0, syscall(__NR_getpid)) {
  533. TH_LOG("getpid() shouldn't ever return");
  534. }
  535. }
  536. TEST_SIGNAL(KILL_all, SIGSYS)
  537. {
  538. struct sock_filter filter[] = {
  539. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  540. };
  541. struct sock_fprog prog = {
  542. .len = (unsigned short)ARRAY_SIZE(filter),
  543. .filter = filter,
  544. };
  545. long ret;
  546. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  547. ASSERT_EQ(0, ret);
  548. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  549. ASSERT_EQ(0, ret);
  550. }
  551. TEST_SIGNAL(KILL_one, SIGSYS)
  552. {
  553. struct sock_filter filter[] = {
  554. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  555. offsetof(struct seccomp_data, nr)),
  556. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 0, 1),
  557. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  558. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  559. };
  560. struct sock_fprog prog = {
  561. .len = (unsigned short)ARRAY_SIZE(filter),
  562. .filter = filter,
  563. };
  564. long ret;
  565. pid_t parent = getppid();
  566. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  567. ASSERT_EQ(0, ret);
  568. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  569. ASSERT_EQ(0, ret);
  570. EXPECT_EQ(parent, syscall(__NR_getppid));
  571. /* getpid() should never return. */
  572. EXPECT_EQ(0, syscall(__NR_getpid));
  573. }
  574. TEST_SIGNAL(KILL_one_arg_one, SIGSYS)
  575. {
  576. void *fatal_address;
  577. struct sock_filter filter[] = {
  578. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  579. offsetof(struct seccomp_data, nr)),
  580. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_times, 1, 0),
  581. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  582. /* Only both with lower 32-bit for now. */
  583. BPF_STMT(BPF_LD|BPF_W|BPF_ABS, syscall_arg(0)),
  584. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K,
  585. (unsigned long)&fatal_address, 0, 1),
  586. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  587. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  588. };
  589. struct sock_fprog prog = {
  590. .len = (unsigned short)ARRAY_SIZE(filter),
  591. .filter = filter,
  592. };
  593. long ret;
  594. pid_t parent = getppid();
  595. struct tms timebuf;
  596. clock_t clock = times(&timebuf);
  597. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  598. ASSERT_EQ(0, ret);
  599. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  600. ASSERT_EQ(0, ret);
  601. EXPECT_EQ(parent, syscall(__NR_getppid));
  602. EXPECT_LE(clock, syscall(__NR_times, &timebuf));
  603. /* times() should never return. */
  604. EXPECT_EQ(0, syscall(__NR_times, &fatal_address));
  605. }
  606. TEST_SIGNAL(KILL_one_arg_six, SIGSYS)
  607. {
  608. #ifndef __NR_mmap2
  609. int sysno = __NR_mmap;
  610. #else
  611. int sysno = __NR_mmap2;
  612. #endif
  613. struct sock_filter filter[] = {
  614. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  615. offsetof(struct seccomp_data, nr)),
  616. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, sysno, 1, 0),
  617. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  618. /* Only both with lower 32-bit for now. */
  619. BPF_STMT(BPF_LD|BPF_W|BPF_ABS, syscall_arg(5)),
  620. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, 0x0C0FFEE, 0, 1),
  621. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  622. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  623. };
  624. struct sock_fprog prog = {
  625. .len = (unsigned short)ARRAY_SIZE(filter),
  626. .filter = filter,
  627. };
  628. long ret;
  629. pid_t parent = getppid();
  630. int fd;
  631. void *map1, *map2;
  632. int page_size = sysconf(_SC_PAGESIZE);
  633. ASSERT_LT(0, page_size);
  634. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  635. ASSERT_EQ(0, ret);
  636. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  637. ASSERT_EQ(0, ret);
  638. fd = open("/dev/zero", O_RDONLY);
  639. ASSERT_NE(-1, fd);
  640. EXPECT_EQ(parent, syscall(__NR_getppid));
  641. map1 = (void *)syscall(sysno,
  642. NULL, page_size, PROT_READ, MAP_PRIVATE, fd, page_size);
  643. EXPECT_NE(MAP_FAILED, map1);
  644. /* mmap2() should never return. */
  645. map2 = (void *)syscall(sysno,
  646. NULL, page_size, PROT_READ, MAP_PRIVATE, fd, 0x0C0FFEE);
  647. EXPECT_EQ(MAP_FAILED, map2);
  648. /* The test failed, so clean up the resources. */
  649. munmap(map1, page_size);
  650. munmap(map2, page_size);
  651. close(fd);
  652. }
  653. /* This is a thread task to die via seccomp filter violation. */
  654. void *kill_thread(void *data)
  655. {
  656. bool die = (bool)data;
  657. if (die) {
  658. prctl(PR_GET_SECCOMP, 0, 0, 0, 0);
  659. return (void *)SIBLING_EXIT_FAILURE;
  660. }
  661. return (void *)SIBLING_EXIT_UNKILLED;
  662. }
  663. enum kill_t {
  664. KILL_THREAD,
  665. KILL_PROCESS,
  666. RET_UNKNOWN
  667. };
  668. /* Prepare a thread that will kill itself or both of us. */
  669. void kill_thread_or_group(struct __test_metadata *_metadata,
  670. enum kill_t kill_how)
  671. {
  672. pthread_t thread;
  673. void *status;
  674. /* Kill only when calling __NR_prctl. */
  675. struct sock_filter filter_thread[] = {
  676. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  677. offsetof(struct seccomp_data, nr)),
  678. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_prctl, 0, 1),
  679. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL_THREAD),
  680. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  681. };
  682. struct sock_fprog prog_thread = {
  683. .len = (unsigned short)ARRAY_SIZE(filter_thread),
  684. .filter = filter_thread,
  685. };
  686. int kill = kill_how == KILL_PROCESS ? SECCOMP_RET_KILL_PROCESS : 0xAAAAAAAA;
  687. struct sock_filter filter_process[] = {
  688. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  689. offsetof(struct seccomp_data, nr)),
  690. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_prctl, 0, 1),
  691. BPF_STMT(BPF_RET|BPF_K, kill),
  692. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  693. };
  694. struct sock_fprog prog_process = {
  695. .len = (unsigned short)ARRAY_SIZE(filter_process),
  696. .filter = filter_process,
  697. };
  698. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  699. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  700. }
  701. ASSERT_EQ(0, seccomp(SECCOMP_SET_MODE_FILTER, 0,
  702. kill_how == KILL_THREAD ? &prog_thread
  703. : &prog_process));
  704. /*
  705. * Add the KILL_THREAD rule again to make sure that the KILL_PROCESS
  706. * flag cannot be downgraded by a new filter.
  707. */
  708. if (kill_how == KILL_PROCESS)
  709. ASSERT_EQ(0, seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog_thread));
  710. /* Start a thread that will exit immediately. */
  711. ASSERT_EQ(0, pthread_create(&thread, NULL, kill_thread, (void *)false));
  712. ASSERT_EQ(0, pthread_join(thread, &status));
  713. ASSERT_EQ(SIBLING_EXIT_UNKILLED, (unsigned long)status);
  714. /* Start a thread that will die immediately. */
  715. ASSERT_EQ(0, pthread_create(&thread, NULL, kill_thread, (void *)true));
  716. ASSERT_EQ(0, pthread_join(thread, &status));
  717. ASSERT_NE(SIBLING_EXIT_FAILURE, (unsigned long)status);
  718. /*
  719. * If we get here, only the spawned thread died. Let the parent know
  720. * the whole process didn't die (i.e. this thread, the spawner,
  721. * stayed running).
  722. */
  723. exit(42);
  724. }
  725. TEST(KILL_thread)
  726. {
  727. int status;
  728. pid_t child_pid;
  729. child_pid = fork();
  730. ASSERT_LE(0, child_pid);
  731. if (child_pid == 0) {
  732. kill_thread_or_group(_metadata, KILL_THREAD);
  733. _exit(38);
  734. }
  735. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  736. /* If only the thread was killed, we'll see exit 42. */
  737. ASSERT_TRUE(WIFEXITED(status));
  738. ASSERT_EQ(42, WEXITSTATUS(status));
  739. }
  740. TEST(KILL_process)
  741. {
  742. int status;
  743. pid_t child_pid;
  744. child_pid = fork();
  745. ASSERT_LE(0, child_pid);
  746. if (child_pid == 0) {
  747. kill_thread_or_group(_metadata, KILL_PROCESS);
  748. _exit(38);
  749. }
  750. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  751. /* If the entire process was killed, we'll see SIGSYS. */
  752. ASSERT_TRUE(WIFSIGNALED(status));
  753. ASSERT_EQ(SIGSYS, WTERMSIG(status));
  754. }
  755. TEST(KILL_unknown)
  756. {
  757. int status;
  758. pid_t child_pid;
  759. child_pid = fork();
  760. ASSERT_LE(0, child_pid);
  761. if (child_pid == 0) {
  762. kill_thread_or_group(_metadata, RET_UNKNOWN);
  763. _exit(38);
  764. }
  765. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  766. /* If the entire process was killed, we'll see SIGSYS. */
  767. EXPECT_TRUE(WIFSIGNALED(status)) {
  768. TH_LOG("Unknown SECCOMP_RET is only killing the thread?");
  769. }
  770. ASSERT_EQ(SIGSYS, WTERMSIG(status));
  771. }
  772. /* TODO(wad) add 64-bit versus 32-bit arg tests. */
  773. TEST(arg_out_of_range)
  774. {
  775. struct sock_filter filter[] = {
  776. BPF_STMT(BPF_LD|BPF_W|BPF_ABS, syscall_arg(6)),
  777. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  778. };
  779. struct sock_fprog prog = {
  780. .len = (unsigned short)ARRAY_SIZE(filter),
  781. .filter = filter,
  782. };
  783. long ret;
  784. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  785. ASSERT_EQ(0, ret);
  786. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog);
  787. EXPECT_EQ(-1, ret);
  788. EXPECT_EQ(EINVAL, errno);
  789. }
  790. #define ERRNO_FILTER(name, errno) \
  791. struct sock_filter _read_filter_##name[] = { \
  792. BPF_STMT(BPF_LD|BPF_W|BPF_ABS, \
  793. offsetof(struct seccomp_data, nr)), \
  794. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_read, 0, 1), \
  795. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ERRNO | errno), \
  796. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW), \
  797. }; \
  798. struct sock_fprog prog_##name = { \
  799. .len = (unsigned short)ARRAY_SIZE(_read_filter_##name), \
  800. .filter = _read_filter_##name, \
  801. }
  802. /* Make sure basic errno values are correctly passed through a filter. */
  803. TEST(ERRNO_valid)
  804. {
  805. ERRNO_FILTER(valid, E2BIG);
  806. long ret;
  807. pid_t parent = getppid();
  808. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  809. ASSERT_EQ(0, ret);
  810. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog_valid);
  811. ASSERT_EQ(0, ret);
  812. EXPECT_EQ(parent, syscall(__NR_getppid));
  813. EXPECT_EQ(-1, read(-1, NULL, 0));
  814. EXPECT_EQ(E2BIG, errno);
  815. }
  816. /* Make sure an errno of zero is correctly handled by the arch code. */
  817. TEST(ERRNO_zero)
  818. {
  819. ERRNO_FILTER(zero, 0);
  820. long ret;
  821. pid_t parent = getppid();
  822. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  823. ASSERT_EQ(0, ret);
  824. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog_zero);
  825. ASSERT_EQ(0, ret);
  826. EXPECT_EQ(parent, syscall(__NR_getppid));
  827. /* "errno" of 0 is ok. */
  828. EXPECT_EQ(0, read(-1, NULL, 0));
  829. }
  830. /*
  831. * The SECCOMP_RET_DATA mask is 16 bits wide, but errno is smaller.
  832. * This tests that the errno value gets capped correctly, fixed by
  833. * 580c57f10768 ("seccomp: cap SECCOMP_RET_ERRNO data to MAX_ERRNO").
  834. */
  835. TEST(ERRNO_capped)
  836. {
  837. ERRNO_FILTER(capped, 4096);
  838. long ret;
  839. pid_t parent = getppid();
  840. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  841. ASSERT_EQ(0, ret);
  842. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog_capped);
  843. ASSERT_EQ(0, ret);
  844. EXPECT_EQ(parent, syscall(__NR_getppid));
  845. EXPECT_EQ(-1, read(-1, NULL, 0));
  846. EXPECT_EQ(4095, errno);
  847. }
  848. /*
  849. * Filters are processed in reverse order: last applied is executed first.
  850. * Since only the SECCOMP_RET_ACTION mask is tested for return values, the
  851. * SECCOMP_RET_DATA mask results will follow the most recently applied
  852. * matching filter return (and not the lowest or highest value).
  853. */
  854. TEST(ERRNO_order)
  855. {
  856. ERRNO_FILTER(first, 11);
  857. ERRNO_FILTER(second, 13);
  858. ERRNO_FILTER(third, 12);
  859. long ret;
  860. pid_t parent = getppid();
  861. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  862. ASSERT_EQ(0, ret);
  863. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog_first);
  864. ASSERT_EQ(0, ret);
  865. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog_second);
  866. ASSERT_EQ(0, ret);
  867. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog_third);
  868. ASSERT_EQ(0, ret);
  869. EXPECT_EQ(parent, syscall(__NR_getppid));
  870. EXPECT_EQ(-1, read(-1, NULL, 0));
  871. EXPECT_EQ(12, errno);
  872. }
  873. FIXTURE(TRAP) {
  874. struct sock_fprog prog;
  875. };
  876. FIXTURE_SETUP(TRAP)
  877. {
  878. struct sock_filter filter[] = {
  879. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  880. offsetof(struct seccomp_data, nr)),
  881. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 0, 1),
  882. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRAP),
  883. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  884. };
  885. memset(&self->prog, 0, sizeof(self->prog));
  886. self->prog.filter = malloc(sizeof(filter));
  887. ASSERT_NE(NULL, self->prog.filter);
  888. memcpy(self->prog.filter, filter, sizeof(filter));
  889. self->prog.len = (unsigned short)ARRAY_SIZE(filter);
  890. }
  891. FIXTURE_TEARDOWN(TRAP)
  892. {
  893. if (self->prog.filter)
  894. free(self->prog.filter);
  895. }
  896. TEST_F_SIGNAL(TRAP, dfl, SIGSYS)
  897. {
  898. long ret;
  899. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  900. ASSERT_EQ(0, ret);
  901. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->prog);
  902. ASSERT_EQ(0, ret);
  903. syscall(__NR_getpid);
  904. }
  905. /* Ensure that SIGSYS overrides SIG_IGN */
  906. TEST_F_SIGNAL(TRAP, ign, SIGSYS)
  907. {
  908. long ret;
  909. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  910. ASSERT_EQ(0, ret);
  911. signal(SIGSYS, SIG_IGN);
  912. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->prog);
  913. ASSERT_EQ(0, ret);
  914. syscall(__NR_getpid);
  915. }
  916. static siginfo_t TRAP_info;
  917. static volatile int TRAP_nr;
  918. static void TRAP_action(int nr, siginfo_t *info, void *void_context)
  919. {
  920. memcpy(&TRAP_info, info, sizeof(TRAP_info));
  921. TRAP_nr = nr;
  922. }
  923. TEST_F(TRAP, handler)
  924. {
  925. int ret, test;
  926. struct sigaction act;
  927. sigset_t mask;
  928. memset(&act, 0, sizeof(act));
  929. sigemptyset(&mask);
  930. sigaddset(&mask, SIGSYS);
  931. act.sa_sigaction = &TRAP_action;
  932. act.sa_flags = SA_SIGINFO;
  933. ret = sigaction(SIGSYS, &act, NULL);
  934. ASSERT_EQ(0, ret) {
  935. TH_LOG("sigaction failed");
  936. }
  937. ret = sigprocmask(SIG_UNBLOCK, &mask, NULL);
  938. ASSERT_EQ(0, ret) {
  939. TH_LOG("sigprocmask failed");
  940. }
  941. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  942. ASSERT_EQ(0, ret);
  943. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->prog);
  944. ASSERT_EQ(0, ret);
  945. TRAP_nr = 0;
  946. memset(&TRAP_info, 0, sizeof(TRAP_info));
  947. /* Expect the registers to be rolled back. (nr = error) may vary
  948. * based on arch. */
  949. ret = syscall(__NR_getpid);
  950. /* Silence gcc warning about volatile. */
  951. test = TRAP_nr;
  952. EXPECT_EQ(SIGSYS, test);
  953. struct local_sigsys {
  954. void *_call_addr; /* calling user insn */
  955. int _syscall; /* triggering system call number */
  956. unsigned int _arch; /* AUDIT_ARCH_* of syscall */
  957. } *sigsys = (struct local_sigsys *)
  958. #ifdef si_syscall
  959. &(TRAP_info.si_call_addr);
  960. #else
  961. &TRAP_info.si_pid;
  962. #endif
  963. EXPECT_EQ(__NR_getpid, sigsys->_syscall);
  964. /* Make sure arch is non-zero. */
  965. EXPECT_NE(0, sigsys->_arch);
  966. EXPECT_NE(0, (unsigned long)sigsys->_call_addr);
  967. }
  968. FIXTURE(precedence) {
  969. struct sock_fprog allow;
  970. struct sock_fprog log;
  971. struct sock_fprog trace;
  972. struct sock_fprog error;
  973. struct sock_fprog trap;
  974. struct sock_fprog kill;
  975. };
  976. FIXTURE_SETUP(precedence)
  977. {
  978. struct sock_filter allow_insns[] = {
  979. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  980. };
  981. struct sock_filter log_insns[] = {
  982. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  983. offsetof(struct seccomp_data, nr)),
  984. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 1, 0),
  985. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  986. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_LOG),
  987. };
  988. struct sock_filter trace_insns[] = {
  989. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  990. offsetof(struct seccomp_data, nr)),
  991. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 1, 0),
  992. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  993. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE),
  994. };
  995. struct sock_filter error_insns[] = {
  996. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  997. offsetof(struct seccomp_data, nr)),
  998. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 1, 0),
  999. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1000. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ERRNO),
  1001. };
  1002. struct sock_filter trap_insns[] = {
  1003. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  1004. offsetof(struct seccomp_data, nr)),
  1005. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 1, 0),
  1006. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1007. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRAP),
  1008. };
  1009. struct sock_filter kill_insns[] = {
  1010. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  1011. offsetof(struct seccomp_data, nr)),
  1012. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 1, 0),
  1013. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1014. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  1015. };
  1016. memset(self, 0, sizeof(*self));
  1017. #define FILTER_ALLOC(_x) \
  1018. self->_x.filter = malloc(sizeof(_x##_insns)); \
  1019. ASSERT_NE(NULL, self->_x.filter); \
  1020. memcpy(self->_x.filter, &_x##_insns, sizeof(_x##_insns)); \
  1021. self->_x.len = (unsigned short)ARRAY_SIZE(_x##_insns)
  1022. FILTER_ALLOC(allow);
  1023. FILTER_ALLOC(log);
  1024. FILTER_ALLOC(trace);
  1025. FILTER_ALLOC(error);
  1026. FILTER_ALLOC(trap);
  1027. FILTER_ALLOC(kill);
  1028. }
  1029. FIXTURE_TEARDOWN(precedence)
  1030. {
  1031. #define FILTER_FREE(_x) if (self->_x.filter) free(self->_x.filter)
  1032. FILTER_FREE(allow);
  1033. FILTER_FREE(log);
  1034. FILTER_FREE(trace);
  1035. FILTER_FREE(error);
  1036. FILTER_FREE(trap);
  1037. FILTER_FREE(kill);
  1038. }
  1039. TEST_F(precedence, allow_ok)
  1040. {
  1041. pid_t parent, res = 0;
  1042. long ret;
  1043. parent = getppid();
  1044. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1045. ASSERT_EQ(0, ret);
  1046. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1047. ASSERT_EQ(0, ret);
  1048. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1049. ASSERT_EQ(0, ret);
  1050. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1051. ASSERT_EQ(0, ret);
  1052. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->error);
  1053. ASSERT_EQ(0, ret);
  1054. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trap);
  1055. ASSERT_EQ(0, ret);
  1056. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->kill);
  1057. ASSERT_EQ(0, ret);
  1058. /* Should work just fine. */
  1059. res = syscall(__NR_getppid);
  1060. EXPECT_EQ(parent, res);
  1061. }
  1062. TEST_F_SIGNAL(precedence, kill_is_highest, SIGSYS)
  1063. {
  1064. pid_t parent, res = 0;
  1065. long ret;
  1066. parent = getppid();
  1067. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1068. ASSERT_EQ(0, ret);
  1069. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1070. ASSERT_EQ(0, ret);
  1071. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1072. ASSERT_EQ(0, ret);
  1073. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1074. ASSERT_EQ(0, ret);
  1075. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->error);
  1076. ASSERT_EQ(0, ret);
  1077. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trap);
  1078. ASSERT_EQ(0, ret);
  1079. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->kill);
  1080. ASSERT_EQ(0, ret);
  1081. /* Should work just fine. */
  1082. res = syscall(__NR_getppid);
  1083. EXPECT_EQ(parent, res);
  1084. /* getpid() should never return. */
  1085. res = syscall(__NR_getpid);
  1086. EXPECT_EQ(0, res);
  1087. }
  1088. TEST_F_SIGNAL(precedence, kill_is_highest_in_any_order, SIGSYS)
  1089. {
  1090. pid_t parent;
  1091. long ret;
  1092. parent = getppid();
  1093. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1094. ASSERT_EQ(0, ret);
  1095. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1096. ASSERT_EQ(0, ret);
  1097. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->kill);
  1098. ASSERT_EQ(0, ret);
  1099. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->error);
  1100. ASSERT_EQ(0, ret);
  1101. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1102. ASSERT_EQ(0, ret);
  1103. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1104. ASSERT_EQ(0, ret);
  1105. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trap);
  1106. ASSERT_EQ(0, ret);
  1107. /* Should work just fine. */
  1108. EXPECT_EQ(parent, syscall(__NR_getppid));
  1109. /* getpid() should never return. */
  1110. EXPECT_EQ(0, syscall(__NR_getpid));
  1111. }
  1112. TEST_F_SIGNAL(precedence, trap_is_second, SIGSYS)
  1113. {
  1114. pid_t parent;
  1115. long ret;
  1116. parent = getppid();
  1117. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1118. ASSERT_EQ(0, ret);
  1119. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1120. ASSERT_EQ(0, ret);
  1121. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1122. ASSERT_EQ(0, ret);
  1123. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1124. ASSERT_EQ(0, ret);
  1125. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->error);
  1126. ASSERT_EQ(0, ret);
  1127. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trap);
  1128. ASSERT_EQ(0, ret);
  1129. /* Should work just fine. */
  1130. EXPECT_EQ(parent, syscall(__NR_getppid));
  1131. /* getpid() should never return. */
  1132. EXPECT_EQ(0, syscall(__NR_getpid));
  1133. }
  1134. TEST_F_SIGNAL(precedence, trap_is_second_in_any_order, SIGSYS)
  1135. {
  1136. pid_t parent;
  1137. long ret;
  1138. parent = getppid();
  1139. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1140. ASSERT_EQ(0, ret);
  1141. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1142. ASSERT_EQ(0, ret);
  1143. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trap);
  1144. ASSERT_EQ(0, ret);
  1145. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1146. ASSERT_EQ(0, ret);
  1147. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1148. ASSERT_EQ(0, ret);
  1149. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->error);
  1150. ASSERT_EQ(0, ret);
  1151. /* Should work just fine. */
  1152. EXPECT_EQ(parent, syscall(__NR_getppid));
  1153. /* getpid() should never return. */
  1154. EXPECT_EQ(0, syscall(__NR_getpid));
  1155. }
  1156. TEST_F(precedence, errno_is_third)
  1157. {
  1158. pid_t parent;
  1159. long ret;
  1160. parent = getppid();
  1161. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1162. ASSERT_EQ(0, ret);
  1163. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1164. ASSERT_EQ(0, ret);
  1165. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1166. ASSERT_EQ(0, ret);
  1167. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1168. ASSERT_EQ(0, ret);
  1169. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->error);
  1170. ASSERT_EQ(0, ret);
  1171. /* Should work just fine. */
  1172. EXPECT_EQ(parent, syscall(__NR_getppid));
  1173. EXPECT_EQ(0, syscall(__NR_getpid));
  1174. }
  1175. TEST_F(precedence, errno_is_third_in_any_order)
  1176. {
  1177. pid_t parent;
  1178. long ret;
  1179. parent = getppid();
  1180. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1181. ASSERT_EQ(0, ret);
  1182. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1183. ASSERT_EQ(0, ret);
  1184. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->error);
  1185. ASSERT_EQ(0, ret);
  1186. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1187. ASSERT_EQ(0, ret);
  1188. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1189. ASSERT_EQ(0, ret);
  1190. /* Should work just fine. */
  1191. EXPECT_EQ(parent, syscall(__NR_getppid));
  1192. EXPECT_EQ(0, syscall(__NR_getpid));
  1193. }
  1194. TEST_F(precedence, trace_is_fourth)
  1195. {
  1196. pid_t parent;
  1197. long ret;
  1198. parent = getppid();
  1199. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1200. ASSERT_EQ(0, ret);
  1201. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1202. ASSERT_EQ(0, ret);
  1203. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1204. ASSERT_EQ(0, ret);
  1205. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1206. ASSERT_EQ(0, ret);
  1207. /* Should work just fine. */
  1208. EXPECT_EQ(parent, syscall(__NR_getppid));
  1209. /* No ptracer */
  1210. EXPECT_EQ(-1, syscall(__NR_getpid));
  1211. }
  1212. TEST_F(precedence, trace_is_fourth_in_any_order)
  1213. {
  1214. pid_t parent;
  1215. long ret;
  1216. parent = getppid();
  1217. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1218. ASSERT_EQ(0, ret);
  1219. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->trace);
  1220. ASSERT_EQ(0, ret);
  1221. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1222. ASSERT_EQ(0, ret);
  1223. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1224. ASSERT_EQ(0, ret);
  1225. /* Should work just fine. */
  1226. EXPECT_EQ(parent, syscall(__NR_getppid));
  1227. /* No ptracer */
  1228. EXPECT_EQ(-1, syscall(__NR_getpid));
  1229. }
  1230. TEST_F(precedence, log_is_fifth)
  1231. {
  1232. pid_t mypid, parent;
  1233. long ret;
  1234. mypid = getpid();
  1235. parent = getppid();
  1236. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1237. ASSERT_EQ(0, ret);
  1238. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1239. ASSERT_EQ(0, ret);
  1240. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1241. ASSERT_EQ(0, ret);
  1242. /* Should work just fine. */
  1243. EXPECT_EQ(parent, syscall(__NR_getppid));
  1244. /* Should also work just fine */
  1245. EXPECT_EQ(mypid, syscall(__NR_getpid));
  1246. }
  1247. TEST_F(precedence, log_is_fifth_in_any_order)
  1248. {
  1249. pid_t mypid, parent;
  1250. long ret;
  1251. mypid = getpid();
  1252. parent = getppid();
  1253. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1254. ASSERT_EQ(0, ret);
  1255. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->log);
  1256. ASSERT_EQ(0, ret);
  1257. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->allow);
  1258. ASSERT_EQ(0, ret);
  1259. /* Should work just fine. */
  1260. EXPECT_EQ(parent, syscall(__NR_getppid));
  1261. /* Should also work just fine */
  1262. EXPECT_EQ(mypid, syscall(__NR_getpid));
  1263. }
  1264. #ifndef PTRACE_O_TRACESECCOMP
  1265. #define PTRACE_O_TRACESECCOMP 0x00000080
  1266. #endif
  1267. /* Catch the Ubuntu 12.04 value error. */
  1268. #if PTRACE_EVENT_SECCOMP != 7
  1269. #undef PTRACE_EVENT_SECCOMP
  1270. #endif
  1271. #ifndef PTRACE_EVENT_SECCOMP
  1272. #define PTRACE_EVENT_SECCOMP 7
  1273. #endif
  1274. #define PTRACE_EVENT_MASK(status) ((status) >> 16)
  1275. bool tracer_running;
  1276. void tracer_stop(int sig)
  1277. {
  1278. tracer_running = false;
  1279. }
  1280. typedef void tracer_func_t(struct __test_metadata *_metadata,
  1281. pid_t tracee, int status, void *args);
  1282. void start_tracer(struct __test_metadata *_metadata, int fd, pid_t tracee,
  1283. tracer_func_t tracer_func, void *args, bool ptrace_syscall)
  1284. {
  1285. int ret = -1;
  1286. struct sigaction action = {
  1287. .sa_handler = tracer_stop,
  1288. };
  1289. /* Allow external shutdown. */
  1290. tracer_running = true;
  1291. ASSERT_EQ(0, sigaction(SIGUSR1, &action, NULL));
  1292. errno = 0;
  1293. while (ret == -1 && errno != EINVAL)
  1294. ret = ptrace(PTRACE_ATTACH, tracee, NULL, 0);
  1295. ASSERT_EQ(0, ret) {
  1296. kill(tracee, SIGKILL);
  1297. }
  1298. /* Wait for attach stop */
  1299. wait(NULL);
  1300. ret = ptrace(PTRACE_SETOPTIONS, tracee, NULL, ptrace_syscall ?
  1301. PTRACE_O_TRACESYSGOOD :
  1302. PTRACE_O_TRACESECCOMP);
  1303. ASSERT_EQ(0, ret) {
  1304. TH_LOG("Failed to set PTRACE_O_TRACESECCOMP");
  1305. kill(tracee, SIGKILL);
  1306. }
  1307. ret = ptrace(ptrace_syscall ? PTRACE_SYSCALL : PTRACE_CONT,
  1308. tracee, NULL, 0);
  1309. ASSERT_EQ(0, ret);
  1310. /* Unblock the tracee */
  1311. ASSERT_EQ(1, write(fd, "A", 1));
  1312. ASSERT_EQ(0, close(fd));
  1313. /* Run until we're shut down. Must assert to stop execution. */
  1314. while (tracer_running) {
  1315. int status;
  1316. if (wait(&status) != tracee)
  1317. continue;
  1318. if (WIFSIGNALED(status)) {
  1319. /* Child caught a fatal signal. */
  1320. return;
  1321. }
  1322. if (WIFEXITED(status)) {
  1323. /* Child exited with code. */
  1324. return;
  1325. }
  1326. /* Check if we got an expected event. */
  1327. ASSERT_EQ(WIFCONTINUED(status), false);
  1328. ASSERT_EQ(WIFSTOPPED(status), true);
  1329. ASSERT_EQ(WSTOPSIG(status) & SIGTRAP, SIGTRAP) {
  1330. TH_LOG("Unexpected WSTOPSIG: %d", WSTOPSIG(status));
  1331. }
  1332. tracer_func(_metadata, tracee, status, args);
  1333. ret = ptrace(ptrace_syscall ? PTRACE_SYSCALL : PTRACE_CONT,
  1334. tracee, NULL, 0);
  1335. ASSERT_EQ(0, ret);
  1336. }
  1337. /* Directly report the status of our test harness results. */
  1338. syscall(__NR_exit, _metadata->passed ? EXIT_SUCCESS : EXIT_FAILURE);
  1339. }
  1340. /* Common tracer setup/teardown functions. */
  1341. void cont_handler(int num)
  1342. { }
  1343. pid_t setup_trace_fixture(struct __test_metadata *_metadata,
  1344. tracer_func_t func, void *args, bool ptrace_syscall)
  1345. {
  1346. char sync;
  1347. int pipefd[2];
  1348. pid_t tracer_pid;
  1349. pid_t tracee = getpid();
  1350. /* Setup a pipe for clean synchronization. */
  1351. ASSERT_EQ(0, pipe(pipefd));
  1352. /* Fork a child which we'll promote to tracer */
  1353. tracer_pid = fork();
  1354. ASSERT_LE(0, tracer_pid);
  1355. signal(SIGALRM, cont_handler);
  1356. if (tracer_pid == 0) {
  1357. close(pipefd[0]);
  1358. start_tracer(_metadata, pipefd[1], tracee, func, args,
  1359. ptrace_syscall);
  1360. syscall(__NR_exit, 0);
  1361. }
  1362. close(pipefd[1]);
  1363. prctl(PR_SET_PTRACER, tracer_pid, 0, 0, 0);
  1364. read(pipefd[0], &sync, 1);
  1365. close(pipefd[0]);
  1366. return tracer_pid;
  1367. }
  1368. void teardown_trace_fixture(struct __test_metadata *_metadata,
  1369. pid_t tracer)
  1370. {
  1371. if (tracer) {
  1372. int status;
  1373. /*
  1374. * Extract the exit code from the other process and
  1375. * adopt it for ourselves in case its asserts failed.
  1376. */
  1377. ASSERT_EQ(0, kill(tracer, SIGUSR1));
  1378. ASSERT_EQ(tracer, waitpid(tracer, &status, 0));
  1379. if (WEXITSTATUS(status))
  1380. _metadata->passed = 0;
  1381. }
  1382. }
  1383. /* "poke" tracer arguments and function. */
  1384. struct tracer_args_poke_t {
  1385. unsigned long poke_addr;
  1386. };
  1387. void tracer_poke(struct __test_metadata *_metadata, pid_t tracee, int status,
  1388. void *args)
  1389. {
  1390. int ret;
  1391. unsigned long msg;
  1392. struct tracer_args_poke_t *info = (struct tracer_args_poke_t *)args;
  1393. ret = ptrace(PTRACE_GETEVENTMSG, tracee, NULL, &msg);
  1394. EXPECT_EQ(0, ret);
  1395. /* If this fails, don't try to recover. */
  1396. ASSERT_EQ(0x1001, msg) {
  1397. kill(tracee, SIGKILL);
  1398. }
  1399. /*
  1400. * Poke in the message.
  1401. * Registers are not touched to try to keep this relatively arch
  1402. * agnostic.
  1403. */
  1404. ret = ptrace(PTRACE_POKEDATA, tracee, info->poke_addr, 0x1001);
  1405. EXPECT_EQ(0, ret);
  1406. }
  1407. FIXTURE(TRACE_poke) {
  1408. struct sock_fprog prog;
  1409. pid_t tracer;
  1410. long poked;
  1411. struct tracer_args_poke_t tracer_args;
  1412. };
  1413. FIXTURE_SETUP(TRACE_poke)
  1414. {
  1415. struct sock_filter filter[] = {
  1416. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  1417. offsetof(struct seccomp_data, nr)),
  1418. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_read, 0, 1),
  1419. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE | 0x1001),
  1420. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1421. };
  1422. self->poked = 0;
  1423. memset(&self->prog, 0, sizeof(self->prog));
  1424. self->prog.filter = malloc(sizeof(filter));
  1425. ASSERT_NE(NULL, self->prog.filter);
  1426. memcpy(self->prog.filter, filter, sizeof(filter));
  1427. self->prog.len = (unsigned short)ARRAY_SIZE(filter);
  1428. /* Set up tracer args. */
  1429. self->tracer_args.poke_addr = (unsigned long)&self->poked;
  1430. /* Launch tracer. */
  1431. self->tracer = setup_trace_fixture(_metadata, tracer_poke,
  1432. &self->tracer_args, false);
  1433. }
  1434. FIXTURE_TEARDOWN(TRACE_poke)
  1435. {
  1436. teardown_trace_fixture(_metadata, self->tracer);
  1437. if (self->prog.filter)
  1438. free(self->prog.filter);
  1439. }
  1440. TEST_F(TRACE_poke, read_has_side_effects)
  1441. {
  1442. ssize_t ret;
  1443. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1444. ASSERT_EQ(0, ret);
  1445. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->prog, 0, 0);
  1446. ASSERT_EQ(0, ret);
  1447. EXPECT_EQ(0, self->poked);
  1448. ret = read(-1, NULL, 0);
  1449. EXPECT_EQ(-1, ret);
  1450. EXPECT_EQ(0x1001, self->poked);
  1451. }
  1452. TEST_F(TRACE_poke, getpid_runs_normally)
  1453. {
  1454. long ret;
  1455. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1456. ASSERT_EQ(0, ret);
  1457. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &self->prog, 0, 0);
  1458. ASSERT_EQ(0, ret);
  1459. EXPECT_EQ(0, self->poked);
  1460. EXPECT_NE(0, syscall(__NR_getpid));
  1461. EXPECT_EQ(0, self->poked);
  1462. }
  1463. #if defined(__x86_64__)
  1464. # define ARCH_REGS struct user_regs_struct
  1465. # define SYSCALL_NUM(_regs) (_regs).orig_rax
  1466. # define SYSCALL_RET(_regs) (_regs).rax
  1467. #elif defined(__i386__)
  1468. # define ARCH_REGS struct user_regs_struct
  1469. # define SYSCALL_NUM(_regs) (_regs).orig_eax
  1470. # define SYSCALL_RET(_regs) (_regs).eax
  1471. #elif defined(__arm__)
  1472. # define ARCH_REGS struct pt_regs
  1473. # define SYSCALL_NUM(_regs) (_regs).ARM_r7
  1474. # ifndef PTRACE_SET_SYSCALL
  1475. # define PTRACE_SET_SYSCALL 23
  1476. # endif
  1477. # define SYSCALL_NUM_SET(_regs, _nr) \
  1478. EXPECT_EQ(0, ptrace(PTRACE_SET_SYSCALL, tracee, NULL, _nr))
  1479. # define SYSCALL_RET(_regs) (_regs).ARM_r0
  1480. #elif defined(__aarch64__)
  1481. # define ARCH_REGS struct user_pt_regs
  1482. # define SYSCALL_NUM(_regs) (_regs).regs[8]
  1483. # ifndef NT_ARM_SYSTEM_CALL
  1484. # define NT_ARM_SYSTEM_CALL 0x404
  1485. # endif
  1486. # define SYSCALL_NUM_SET(_regs, _nr) \
  1487. do { \
  1488. struct iovec __v; \
  1489. typeof(_nr) __nr = (_nr); \
  1490. __v.iov_base = &__nr; \
  1491. __v.iov_len = sizeof(__nr); \
  1492. EXPECT_EQ(0, ptrace(PTRACE_SETREGSET, tracee, \
  1493. NT_ARM_SYSTEM_CALL, &__v)); \
  1494. } while (0)
  1495. # define SYSCALL_RET(_regs) (_regs).regs[0]
  1496. #elif defined(__riscv) && __riscv_xlen == 64
  1497. # define ARCH_REGS struct user_regs_struct
  1498. # define SYSCALL_NUM(_regs) (_regs).a7
  1499. # define SYSCALL_RET(_regs) (_regs).a0
  1500. #elif defined(__csky__)
  1501. # define ARCH_REGS struct pt_regs
  1502. # if defined(__CSKYABIV2__)
  1503. # define SYSCALL_NUM(_regs) (_regs).regs[3]
  1504. # else
  1505. # define SYSCALL_NUM(_regs) (_regs).regs[9]
  1506. # endif
  1507. # define SYSCALL_RET(_regs) (_regs).a0
  1508. #elif defined(__hppa__)
  1509. # define ARCH_REGS struct user_regs_struct
  1510. # define SYSCALL_NUM(_regs) (_regs).gr[20]
  1511. # define SYSCALL_RET(_regs) (_regs).gr[28]
  1512. #elif defined(__powerpc__)
  1513. # define ARCH_REGS struct pt_regs
  1514. # define SYSCALL_NUM(_regs) (_regs).gpr[0]
  1515. # define SYSCALL_RET(_regs) (_regs).gpr[3]
  1516. # define SYSCALL_RET_SET(_regs, _val) \
  1517. do { \
  1518. typeof(_val) _result = (_val); \
  1519. if ((_regs.trap & 0xfff0) == 0x3000) { \
  1520. /* \
  1521. * scv 0 system call uses -ve result \
  1522. * for error, so no need to adjust. \
  1523. */ \
  1524. SYSCALL_RET(_regs) = _result; \
  1525. } else { \
  1526. /* \
  1527. * A syscall error is signaled by the \
  1528. * CR0 SO bit and the code is stored as \
  1529. * a positive value. \
  1530. */ \
  1531. if (_result < 0) { \
  1532. SYSCALL_RET(_regs) = -_result; \
  1533. (_regs).ccr |= 0x10000000; \
  1534. } else { \
  1535. SYSCALL_RET(_regs) = _result; \
  1536. (_regs).ccr &= ~0x10000000; \
  1537. } \
  1538. } \
  1539. } while (0)
  1540. # define SYSCALL_RET_SET_ON_PTRACE_EXIT
  1541. #elif defined(__s390__)
  1542. # define ARCH_REGS s390_regs
  1543. # define SYSCALL_NUM(_regs) (_regs).gprs[2]
  1544. # define SYSCALL_RET_SET(_regs, _val) \
  1545. TH_LOG("Can't modify syscall return on this architecture")
  1546. #elif defined(__mips__)
  1547. # include <asm/unistd_nr_n32.h>
  1548. # include <asm/unistd_nr_n64.h>
  1549. # include <asm/unistd_nr_o32.h>
  1550. # define ARCH_REGS struct pt_regs
  1551. # define SYSCALL_NUM(_regs) \
  1552. ({ \
  1553. typeof((_regs).regs[2]) _nr; \
  1554. if ((_regs).regs[2] == __NR_O32_Linux) \
  1555. _nr = (_regs).regs[4]; \
  1556. else \
  1557. _nr = (_regs).regs[2]; \
  1558. _nr; \
  1559. })
  1560. # define SYSCALL_NUM_SET(_regs, _nr) \
  1561. do { \
  1562. if ((_regs).regs[2] == __NR_O32_Linux) \
  1563. (_regs).regs[4] = _nr; \
  1564. else \
  1565. (_regs).regs[2] = _nr; \
  1566. } while (0)
  1567. # define SYSCALL_RET_SET(_regs, _val) \
  1568. TH_LOG("Can't modify syscall return on this architecture")
  1569. #elif defined(__xtensa__)
  1570. # define ARCH_REGS struct user_pt_regs
  1571. # define SYSCALL_NUM(_regs) (_regs).syscall
  1572. /*
  1573. * On xtensa syscall return value is in the register
  1574. * a2 of the current window which is not fixed.
  1575. */
  1576. #define SYSCALL_RET(_regs) (_regs).a[(_regs).windowbase * 4 + 2]
  1577. #elif defined(__sh__)
  1578. # define ARCH_REGS struct pt_regs
  1579. # define SYSCALL_NUM(_regs) (_regs).regs[3]
  1580. # define SYSCALL_RET(_regs) (_regs).regs[0]
  1581. #else
  1582. # error "Do not know how to find your architecture's registers and syscalls"
  1583. #endif
  1584. /*
  1585. * Most architectures can change the syscall by just updating the
  1586. * associated register. This is the default if not defined above.
  1587. */
  1588. #ifndef SYSCALL_NUM_SET
  1589. # define SYSCALL_NUM_SET(_regs, _nr) \
  1590. do { \
  1591. SYSCALL_NUM(_regs) = (_nr); \
  1592. } while (0)
  1593. #endif
  1594. /*
  1595. * Most architectures can change the syscall return value by just
  1596. * writing to the SYSCALL_RET register. This is the default if not
  1597. * defined above. If an architecture cannot set the return value
  1598. * (for example when the syscall and return value register is
  1599. * shared), report it with TH_LOG() in an arch-specific definition
  1600. * of SYSCALL_RET_SET() above, and leave SYSCALL_RET undefined.
  1601. */
  1602. #if !defined(SYSCALL_RET) && !defined(SYSCALL_RET_SET)
  1603. # error "One of SYSCALL_RET or SYSCALL_RET_SET is needed for this arch"
  1604. #endif
  1605. #ifndef SYSCALL_RET_SET
  1606. # define SYSCALL_RET_SET(_regs, _val) \
  1607. do { \
  1608. SYSCALL_RET(_regs) = (_val); \
  1609. } while (0)
  1610. #endif
  1611. /* When the syscall return can't be changed, stub out the tests for it. */
  1612. #ifndef SYSCALL_RET
  1613. # define EXPECT_SYSCALL_RETURN(val, action) EXPECT_EQ(-1, action)
  1614. #else
  1615. # define EXPECT_SYSCALL_RETURN(val, action) \
  1616. do { \
  1617. errno = 0; \
  1618. if (val < 0) { \
  1619. EXPECT_EQ(-1, action); \
  1620. EXPECT_EQ(-(val), errno); \
  1621. } else { \
  1622. EXPECT_EQ(val, action); \
  1623. } \
  1624. } while (0)
  1625. #endif
  1626. /*
  1627. * Some architectures (e.g. powerpc) can only set syscall
  1628. * return values on syscall exit during ptrace.
  1629. */
  1630. const bool ptrace_entry_set_syscall_nr = true;
  1631. const bool ptrace_entry_set_syscall_ret =
  1632. #ifndef SYSCALL_RET_SET_ON_PTRACE_EXIT
  1633. true;
  1634. #else
  1635. false;
  1636. #endif
  1637. /*
  1638. * Use PTRACE_GETREGS and PTRACE_SETREGS when available. This is useful for
  1639. * architectures without HAVE_ARCH_TRACEHOOK (e.g. User-mode Linux).
  1640. */
  1641. #if defined(__x86_64__) || defined(__i386__) || defined(__mips__)
  1642. # define ARCH_GETREGS(_regs) ptrace(PTRACE_GETREGS, tracee, 0, &(_regs))
  1643. # define ARCH_SETREGS(_regs) ptrace(PTRACE_SETREGS, tracee, 0, &(_regs))
  1644. #else
  1645. # define ARCH_GETREGS(_regs) ({ \
  1646. struct iovec __v; \
  1647. __v.iov_base = &(_regs); \
  1648. __v.iov_len = sizeof(_regs); \
  1649. ptrace(PTRACE_GETREGSET, tracee, NT_PRSTATUS, &__v); \
  1650. })
  1651. # define ARCH_SETREGS(_regs) ({ \
  1652. struct iovec __v; \
  1653. __v.iov_base = &(_regs); \
  1654. __v.iov_len = sizeof(_regs); \
  1655. ptrace(PTRACE_SETREGSET, tracee, NT_PRSTATUS, &__v); \
  1656. })
  1657. #endif
  1658. /* Architecture-specific syscall fetching routine. */
  1659. int get_syscall(struct __test_metadata *_metadata, pid_t tracee)
  1660. {
  1661. ARCH_REGS regs;
  1662. EXPECT_EQ(0, ARCH_GETREGS(regs)) {
  1663. return -1;
  1664. }
  1665. return SYSCALL_NUM(regs);
  1666. }
  1667. /* Architecture-specific syscall changing routine. */
  1668. void __change_syscall(struct __test_metadata *_metadata,
  1669. pid_t tracee, long *syscall, long *ret)
  1670. {
  1671. ARCH_REGS orig, regs;
  1672. /* Do not get/set registers if we have nothing to do. */
  1673. if (!syscall && !ret)
  1674. return;
  1675. EXPECT_EQ(0, ARCH_GETREGS(regs)) {
  1676. return;
  1677. }
  1678. orig = regs;
  1679. if (syscall)
  1680. SYSCALL_NUM_SET(regs, *syscall);
  1681. if (ret)
  1682. SYSCALL_RET_SET(regs, *ret);
  1683. /* Flush any register changes made. */
  1684. if (memcmp(&orig, &regs, sizeof(orig)) != 0)
  1685. EXPECT_EQ(0, ARCH_SETREGS(regs));
  1686. }
  1687. /* Change only syscall number. */
  1688. void change_syscall_nr(struct __test_metadata *_metadata,
  1689. pid_t tracee, long syscall)
  1690. {
  1691. __change_syscall(_metadata, tracee, &syscall, NULL);
  1692. }
  1693. /* Change syscall return value (and set syscall number to -1). */
  1694. void change_syscall_ret(struct __test_metadata *_metadata,
  1695. pid_t tracee, long ret)
  1696. {
  1697. long syscall = -1;
  1698. __change_syscall(_metadata, tracee, &syscall, &ret);
  1699. }
  1700. void tracer_seccomp(struct __test_metadata *_metadata, pid_t tracee,
  1701. int status, void *args)
  1702. {
  1703. int ret;
  1704. unsigned long msg;
  1705. EXPECT_EQ(PTRACE_EVENT_MASK(status), PTRACE_EVENT_SECCOMP) {
  1706. TH_LOG("Unexpected ptrace event: %d", PTRACE_EVENT_MASK(status));
  1707. return;
  1708. }
  1709. /* Make sure we got the right message. */
  1710. ret = ptrace(PTRACE_GETEVENTMSG, tracee, NULL, &msg);
  1711. EXPECT_EQ(0, ret);
  1712. /* Validate and take action on expected syscalls. */
  1713. switch (msg) {
  1714. case 0x1002:
  1715. /* change getpid to getppid. */
  1716. EXPECT_EQ(__NR_getpid, get_syscall(_metadata, tracee));
  1717. change_syscall_nr(_metadata, tracee, __NR_getppid);
  1718. break;
  1719. case 0x1003:
  1720. /* skip gettid with valid return code. */
  1721. EXPECT_EQ(__NR_gettid, get_syscall(_metadata, tracee));
  1722. change_syscall_ret(_metadata, tracee, 45000);
  1723. break;
  1724. case 0x1004:
  1725. /* skip openat with error. */
  1726. EXPECT_EQ(__NR_openat, get_syscall(_metadata, tracee));
  1727. change_syscall_ret(_metadata, tracee, -ESRCH);
  1728. break;
  1729. case 0x1005:
  1730. /* do nothing (allow getppid) */
  1731. EXPECT_EQ(__NR_getppid, get_syscall(_metadata, tracee));
  1732. break;
  1733. default:
  1734. EXPECT_EQ(0, msg) {
  1735. TH_LOG("Unknown PTRACE_GETEVENTMSG: 0x%lx", msg);
  1736. kill(tracee, SIGKILL);
  1737. }
  1738. }
  1739. }
  1740. FIXTURE(TRACE_syscall) {
  1741. struct sock_fprog prog;
  1742. pid_t tracer, mytid, mypid, parent;
  1743. long syscall_nr;
  1744. };
  1745. void tracer_ptrace(struct __test_metadata *_metadata, pid_t tracee,
  1746. int status, void *args)
  1747. {
  1748. int ret;
  1749. unsigned long msg;
  1750. static bool entry;
  1751. long syscall_nr_val, syscall_ret_val;
  1752. long *syscall_nr = NULL, *syscall_ret = NULL;
  1753. FIXTURE_DATA(TRACE_syscall) *self = args;
  1754. EXPECT_EQ(WSTOPSIG(status) & 0x80, 0x80) {
  1755. TH_LOG("Unexpected WSTOPSIG: %d", WSTOPSIG(status));
  1756. return;
  1757. }
  1758. /*
  1759. * The traditional way to tell PTRACE_SYSCALL entry/exit
  1760. * is by counting.
  1761. */
  1762. entry = !entry;
  1763. /* Make sure we got an appropriate message. */
  1764. ret = ptrace(PTRACE_GETEVENTMSG, tracee, NULL, &msg);
  1765. EXPECT_EQ(0, ret);
  1766. EXPECT_EQ(entry ? PTRACE_EVENTMSG_SYSCALL_ENTRY
  1767. : PTRACE_EVENTMSG_SYSCALL_EXIT, msg);
  1768. /*
  1769. * Some architectures only support setting return values during
  1770. * syscall exit under ptrace, and on exit the syscall number may
  1771. * no longer be available. Therefore, save the initial sycall
  1772. * number here, so it can be examined during both entry and exit
  1773. * phases.
  1774. */
  1775. if (entry)
  1776. self->syscall_nr = get_syscall(_metadata, tracee);
  1777. /*
  1778. * Depending on the architecture's syscall setting abilities, we
  1779. * pick which things to set during this phase (entry or exit).
  1780. */
  1781. if (entry == ptrace_entry_set_syscall_nr)
  1782. syscall_nr = &syscall_nr_val;
  1783. if (entry == ptrace_entry_set_syscall_ret)
  1784. syscall_ret = &syscall_ret_val;
  1785. /* Now handle the actual rewriting cases. */
  1786. switch (self->syscall_nr) {
  1787. case __NR_getpid:
  1788. syscall_nr_val = __NR_getppid;
  1789. /* Never change syscall return for this case. */
  1790. syscall_ret = NULL;
  1791. break;
  1792. case __NR_gettid:
  1793. syscall_nr_val = -1;
  1794. syscall_ret_val = 45000;
  1795. break;
  1796. case __NR_openat:
  1797. syscall_nr_val = -1;
  1798. syscall_ret_val = -ESRCH;
  1799. break;
  1800. default:
  1801. /* Unhandled, do nothing. */
  1802. return;
  1803. }
  1804. __change_syscall(_metadata, tracee, syscall_nr, syscall_ret);
  1805. }
  1806. FIXTURE_VARIANT(TRACE_syscall) {
  1807. /*
  1808. * All of the SECCOMP_RET_TRACE behaviors can be tested with either
  1809. * SECCOMP_RET_TRACE+PTRACE_CONT or plain ptrace()+PTRACE_SYSCALL.
  1810. * This indicates if we should use SECCOMP_RET_TRACE (false), or
  1811. * ptrace (true).
  1812. */
  1813. bool use_ptrace;
  1814. };
  1815. FIXTURE_VARIANT_ADD(TRACE_syscall, ptrace) {
  1816. .use_ptrace = true,
  1817. };
  1818. FIXTURE_VARIANT_ADD(TRACE_syscall, seccomp) {
  1819. .use_ptrace = false,
  1820. };
  1821. FIXTURE_SETUP(TRACE_syscall)
  1822. {
  1823. struct sock_filter filter[] = {
  1824. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  1825. offsetof(struct seccomp_data, nr)),
  1826. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 0, 1),
  1827. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE | 0x1002),
  1828. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_gettid, 0, 1),
  1829. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE | 0x1003),
  1830. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_openat, 0, 1),
  1831. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE | 0x1004),
  1832. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getppid, 0, 1),
  1833. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE | 0x1005),
  1834. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1835. };
  1836. struct sock_fprog prog = {
  1837. .len = (unsigned short)ARRAY_SIZE(filter),
  1838. .filter = filter,
  1839. };
  1840. long ret;
  1841. /* Prepare some testable syscall results. */
  1842. self->mytid = syscall(__NR_gettid);
  1843. ASSERT_GT(self->mytid, 0);
  1844. ASSERT_NE(self->mytid, 1) {
  1845. TH_LOG("Running this test as init is not supported. :)");
  1846. }
  1847. self->mypid = getpid();
  1848. ASSERT_GT(self->mypid, 0);
  1849. ASSERT_EQ(self->mytid, self->mypid);
  1850. self->parent = getppid();
  1851. ASSERT_GT(self->parent, 0);
  1852. ASSERT_NE(self->parent, self->mypid);
  1853. /* Launch tracer. */
  1854. self->tracer = setup_trace_fixture(_metadata,
  1855. variant->use_ptrace ? tracer_ptrace
  1856. : tracer_seccomp,
  1857. self, variant->use_ptrace);
  1858. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1859. ASSERT_EQ(0, ret);
  1860. /* Do not install seccomp rewrite filters, as we'll use ptrace instead. */
  1861. if (variant->use_ptrace)
  1862. return;
  1863. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  1864. ASSERT_EQ(0, ret);
  1865. }
  1866. FIXTURE_TEARDOWN(TRACE_syscall)
  1867. {
  1868. teardown_trace_fixture(_metadata, self->tracer);
  1869. }
  1870. TEST(negative_ENOSYS)
  1871. {
  1872. /*
  1873. * There should be no difference between an "internal" skip
  1874. * and userspace asking for syscall "-1".
  1875. */
  1876. errno = 0;
  1877. EXPECT_EQ(-1, syscall(-1));
  1878. EXPECT_EQ(errno, ENOSYS);
  1879. /* And no difference for "still not valid but not -1". */
  1880. errno = 0;
  1881. EXPECT_EQ(-1, syscall(-101));
  1882. EXPECT_EQ(errno, ENOSYS);
  1883. }
  1884. TEST_F(TRACE_syscall, negative_ENOSYS)
  1885. {
  1886. negative_ENOSYS(_metadata);
  1887. }
  1888. TEST_F(TRACE_syscall, syscall_allowed)
  1889. {
  1890. /* getppid works as expected (no changes). */
  1891. EXPECT_EQ(self->parent, syscall(__NR_getppid));
  1892. EXPECT_NE(self->mypid, syscall(__NR_getppid));
  1893. }
  1894. TEST_F(TRACE_syscall, syscall_redirected)
  1895. {
  1896. /* getpid has been redirected to getppid as expected. */
  1897. EXPECT_EQ(self->parent, syscall(__NR_getpid));
  1898. EXPECT_NE(self->mypid, syscall(__NR_getpid));
  1899. }
  1900. TEST_F(TRACE_syscall, syscall_errno)
  1901. {
  1902. /* Tracer should skip the open syscall, resulting in ESRCH. */
  1903. EXPECT_SYSCALL_RETURN(-ESRCH, syscall(__NR_openat));
  1904. }
  1905. TEST_F(TRACE_syscall, syscall_faked)
  1906. {
  1907. /* Tracer skips the gettid syscall and store altered return value. */
  1908. EXPECT_SYSCALL_RETURN(45000, syscall(__NR_gettid));
  1909. }
  1910. TEST_F_SIGNAL(TRACE_syscall, kill_immediate, SIGSYS)
  1911. {
  1912. struct sock_filter filter[] = {
  1913. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  1914. offsetof(struct seccomp_data, nr)),
  1915. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_mknodat, 0, 1),
  1916. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL_THREAD),
  1917. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1918. };
  1919. struct sock_fprog prog = {
  1920. .len = (unsigned short)ARRAY_SIZE(filter),
  1921. .filter = filter,
  1922. };
  1923. long ret;
  1924. /* Install "kill on mknodat" filter. */
  1925. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  1926. ASSERT_EQ(0, ret);
  1927. /* This should immediately die with SIGSYS, regardless of tracer. */
  1928. EXPECT_EQ(-1, syscall(__NR_mknodat, -1, NULL, 0, 0));
  1929. }
  1930. TEST_F(TRACE_syscall, skip_after)
  1931. {
  1932. struct sock_filter filter[] = {
  1933. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  1934. offsetof(struct seccomp_data, nr)),
  1935. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getppid, 0, 1),
  1936. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ERRNO | EPERM),
  1937. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1938. };
  1939. struct sock_fprog prog = {
  1940. .len = (unsigned short)ARRAY_SIZE(filter),
  1941. .filter = filter,
  1942. };
  1943. long ret;
  1944. /* Install additional "errno on getppid" filter. */
  1945. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  1946. ASSERT_EQ(0, ret);
  1947. /* Tracer will redirect getpid to getppid, and we should see EPERM. */
  1948. errno = 0;
  1949. EXPECT_EQ(-1, syscall(__NR_getpid));
  1950. EXPECT_EQ(EPERM, errno);
  1951. }
  1952. TEST_F_SIGNAL(TRACE_syscall, kill_after, SIGSYS)
  1953. {
  1954. struct sock_filter filter[] = {
  1955. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  1956. offsetof(struct seccomp_data, nr)),
  1957. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getppid, 0, 1),
  1958. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  1959. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1960. };
  1961. struct sock_fprog prog = {
  1962. .len = (unsigned short)ARRAY_SIZE(filter),
  1963. .filter = filter,
  1964. };
  1965. long ret;
  1966. /* Install additional "death on getppid" filter. */
  1967. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  1968. ASSERT_EQ(0, ret);
  1969. /* Tracer will redirect getpid to getppid, and we should die. */
  1970. EXPECT_NE(self->mypid, syscall(__NR_getpid));
  1971. }
  1972. TEST(seccomp_syscall)
  1973. {
  1974. struct sock_filter filter[] = {
  1975. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  1976. };
  1977. struct sock_fprog prog = {
  1978. .len = (unsigned short)ARRAY_SIZE(filter),
  1979. .filter = filter,
  1980. };
  1981. long ret;
  1982. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  1983. ASSERT_EQ(0, ret) {
  1984. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  1985. }
  1986. /* Reject insane operation. */
  1987. ret = seccomp(-1, 0, &prog);
  1988. ASSERT_NE(ENOSYS, errno) {
  1989. TH_LOG("Kernel does not support seccomp syscall!");
  1990. }
  1991. EXPECT_EQ(EINVAL, errno) {
  1992. TH_LOG("Did not reject crazy op value!");
  1993. }
  1994. /* Reject strict with flags or pointer. */
  1995. ret = seccomp(SECCOMP_SET_MODE_STRICT, -1, NULL);
  1996. EXPECT_EQ(EINVAL, errno) {
  1997. TH_LOG("Did not reject mode strict with flags!");
  1998. }
  1999. ret = seccomp(SECCOMP_SET_MODE_STRICT, 0, &prog);
  2000. EXPECT_EQ(EINVAL, errno) {
  2001. TH_LOG("Did not reject mode strict with uargs!");
  2002. }
  2003. /* Reject insane args for filter. */
  2004. ret = seccomp(SECCOMP_SET_MODE_FILTER, -1, &prog);
  2005. EXPECT_EQ(EINVAL, errno) {
  2006. TH_LOG("Did not reject crazy filter flags!");
  2007. }
  2008. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, NULL);
  2009. EXPECT_EQ(EFAULT, errno) {
  2010. TH_LOG("Did not reject NULL filter!");
  2011. }
  2012. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog);
  2013. EXPECT_EQ(0, errno) {
  2014. TH_LOG("Kernel does not support SECCOMP_SET_MODE_FILTER: %s",
  2015. strerror(errno));
  2016. }
  2017. }
  2018. TEST(seccomp_syscall_mode_lock)
  2019. {
  2020. struct sock_filter filter[] = {
  2021. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2022. };
  2023. struct sock_fprog prog = {
  2024. .len = (unsigned short)ARRAY_SIZE(filter),
  2025. .filter = filter,
  2026. };
  2027. long ret;
  2028. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, NULL, 0, 0);
  2029. ASSERT_EQ(0, ret) {
  2030. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2031. }
  2032. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog);
  2033. ASSERT_NE(ENOSYS, errno) {
  2034. TH_LOG("Kernel does not support seccomp syscall!");
  2035. }
  2036. EXPECT_EQ(0, ret) {
  2037. TH_LOG("Could not install filter!");
  2038. }
  2039. /* Make sure neither entry point will switch to strict. */
  2040. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_STRICT, 0, 0, 0);
  2041. EXPECT_EQ(EINVAL, errno) {
  2042. TH_LOG("Switched to mode strict!");
  2043. }
  2044. ret = seccomp(SECCOMP_SET_MODE_STRICT, 0, NULL);
  2045. EXPECT_EQ(EINVAL, errno) {
  2046. TH_LOG("Switched to mode strict!");
  2047. }
  2048. }
  2049. /*
  2050. * Test detection of known and unknown filter flags. Userspace needs to be able
  2051. * to check if a filter flag is supported by the current kernel and a good way
  2052. * of doing that is by attempting to enter filter mode, with the flag bit in
  2053. * question set, and a NULL pointer for the _args_ parameter. EFAULT indicates
  2054. * that the flag is valid and EINVAL indicates that the flag is invalid.
  2055. */
  2056. TEST(detect_seccomp_filter_flags)
  2057. {
  2058. unsigned int flags[] = { SECCOMP_FILTER_FLAG_TSYNC,
  2059. SECCOMP_FILTER_FLAG_LOG,
  2060. SECCOMP_FILTER_FLAG_SPEC_ALLOW,
  2061. SECCOMP_FILTER_FLAG_NEW_LISTENER,
  2062. SECCOMP_FILTER_FLAG_TSYNC_ESRCH };
  2063. unsigned int exclusive[] = {
  2064. SECCOMP_FILTER_FLAG_TSYNC,
  2065. SECCOMP_FILTER_FLAG_NEW_LISTENER };
  2066. unsigned int flag, all_flags, exclusive_mask;
  2067. int i;
  2068. long ret;
  2069. /* Test detection of individual known-good filter flags */
  2070. for (i = 0, all_flags = 0; i < ARRAY_SIZE(flags); i++) {
  2071. int bits = 0;
  2072. flag = flags[i];
  2073. /* Make sure the flag is a single bit! */
  2074. while (flag) {
  2075. if (flag & 0x1)
  2076. bits ++;
  2077. flag >>= 1;
  2078. }
  2079. ASSERT_EQ(1, bits);
  2080. flag = flags[i];
  2081. ret = seccomp(SECCOMP_SET_MODE_FILTER, flag, NULL);
  2082. ASSERT_NE(ENOSYS, errno) {
  2083. TH_LOG("Kernel does not support seccomp syscall!");
  2084. }
  2085. EXPECT_EQ(-1, ret);
  2086. EXPECT_EQ(EFAULT, errno) {
  2087. TH_LOG("Failed to detect that a known-good filter flag (0x%X) is supported!",
  2088. flag);
  2089. }
  2090. all_flags |= flag;
  2091. }
  2092. /*
  2093. * Test detection of all known-good filter flags combined. But
  2094. * for the exclusive flags we need to mask them out and try them
  2095. * individually for the "all flags" testing.
  2096. */
  2097. exclusive_mask = 0;
  2098. for (i = 0; i < ARRAY_SIZE(exclusive); i++)
  2099. exclusive_mask |= exclusive[i];
  2100. for (i = 0; i < ARRAY_SIZE(exclusive); i++) {
  2101. flag = all_flags & ~exclusive_mask;
  2102. flag |= exclusive[i];
  2103. ret = seccomp(SECCOMP_SET_MODE_FILTER, flag, NULL);
  2104. EXPECT_EQ(-1, ret);
  2105. EXPECT_EQ(EFAULT, errno) {
  2106. TH_LOG("Failed to detect that all known-good filter flags (0x%X) are supported!",
  2107. flag);
  2108. }
  2109. }
  2110. /* Test detection of an unknown filter flags, without exclusives. */
  2111. flag = -1;
  2112. flag &= ~exclusive_mask;
  2113. ret = seccomp(SECCOMP_SET_MODE_FILTER, flag, NULL);
  2114. EXPECT_EQ(-1, ret);
  2115. EXPECT_EQ(EINVAL, errno) {
  2116. TH_LOG("Failed to detect that an unknown filter flag (0x%X) is unsupported!",
  2117. flag);
  2118. }
  2119. /*
  2120. * Test detection of an unknown filter flag that may simply need to be
  2121. * added to this test
  2122. */
  2123. flag = flags[ARRAY_SIZE(flags) - 1] << 1;
  2124. ret = seccomp(SECCOMP_SET_MODE_FILTER, flag, NULL);
  2125. EXPECT_EQ(-1, ret);
  2126. EXPECT_EQ(EINVAL, errno) {
  2127. TH_LOG("Failed to detect that an unknown filter flag (0x%X) is unsupported! Does a new flag need to be added to this test?",
  2128. flag);
  2129. }
  2130. }
  2131. TEST(TSYNC_first)
  2132. {
  2133. struct sock_filter filter[] = {
  2134. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2135. };
  2136. struct sock_fprog prog = {
  2137. .len = (unsigned short)ARRAY_SIZE(filter),
  2138. .filter = filter,
  2139. };
  2140. long ret;
  2141. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, NULL, 0, 0);
  2142. ASSERT_EQ(0, ret) {
  2143. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2144. }
  2145. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_TSYNC,
  2146. &prog);
  2147. ASSERT_NE(ENOSYS, errno) {
  2148. TH_LOG("Kernel does not support seccomp syscall!");
  2149. }
  2150. EXPECT_EQ(0, ret) {
  2151. TH_LOG("Could not install initial filter with TSYNC!");
  2152. }
  2153. }
  2154. #define TSYNC_SIBLINGS 2
  2155. struct tsync_sibling {
  2156. pthread_t tid;
  2157. pid_t system_tid;
  2158. sem_t *started;
  2159. pthread_cond_t *cond;
  2160. pthread_mutex_t *mutex;
  2161. int diverge;
  2162. int num_waits;
  2163. struct sock_fprog *prog;
  2164. struct __test_metadata *metadata;
  2165. };
  2166. /*
  2167. * To avoid joining joined threads (which is not allowed by Bionic),
  2168. * make sure we both successfully join and clear the tid to skip a
  2169. * later join attempt during fixture teardown. Any remaining threads
  2170. * will be directly killed during teardown.
  2171. */
  2172. #define PTHREAD_JOIN(tid, status) \
  2173. do { \
  2174. int _rc = pthread_join(tid, status); \
  2175. if (_rc) { \
  2176. TH_LOG("pthread_join of tid %u failed: %d\n", \
  2177. (unsigned int)tid, _rc); \
  2178. } else { \
  2179. tid = 0; \
  2180. } \
  2181. } while (0)
  2182. FIXTURE(TSYNC) {
  2183. struct sock_fprog root_prog, apply_prog;
  2184. struct tsync_sibling sibling[TSYNC_SIBLINGS];
  2185. sem_t started;
  2186. pthread_cond_t cond;
  2187. pthread_mutex_t mutex;
  2188. int sibling_count;
  2189. };
  2190. FIXTURE_SETUP(TSYNC)
  2191. {
  2192. struct sock_filter root_filter[] = {
  2193. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2194. };
  2195. struct sock_filter apply_filter[] = {
  2196. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  2197. offsetof(struct seccomp_data, nr)),
  2198. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_read, 0, 1),
  2199. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  2200. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2201. };
  2202. memset(&self->root_prog, 0, sizeof(self->root_prog));
  2203. memset(&self->apply_prog, 0, sizeof(self->apply_prog));
  2204. memset(&self->sibling, 0, sizeof(self->sibling));
  2205. self->root_prog.filter = malloc(sizeof(root_filter));
  2206. ASSERT_NE(NULL, self->root_prog.filter);
  2207. memcpy(self->root_prog.filter, &root_filter, sizeof(root_filter));
  2208. self->root_prog.len = (unsigned short)ARRAY_SIZE(root_filter);
  2209. self->apply_prog.filter = malloc(sizeof(apply_filter));
  2210. ASSERT_NE(NULL, self->apply_prog.filter);
  2211. memcpy(self->apply_prog.filter, &apply_filter, sizeof(apply_filter));
  2212. self->apply_prog.len = (unsigned short)ARRAY_SIZE(apply_filter);
  2213. self->sibling_count = 0;
  2214. pthread_mutex_init(&self->mutex, NULL);
  2215. pthread_cond_init(&self->cond, NULL);
  2216. sem_init(&self->started, 0, 0);
  2217. self->sibling[0].tid = 0;
  2218. self->sibling[0].cond = &self->cond;
  2219. self->sibling[0].started = &self->started;
  2220. self->sibling[0].mutex = &self->mutex;
  2221. self->sibling[0].diverge = 0;
  2222. self->sibling[0].num_waits = 1;
  2223. self->sibling[0].prog = &self->root_prog;
  2224. self->sibling[0].metadata = _metadata;
  2225. self->sibling[1].tid = 0;
  2226. self->sibling[1].cond = &self->cond;
  2227. self->sibling[1].started = &self->started;
  2228. self->sibling[1].mutex = &self->mutex;
  2229. self->sibling[1].diverge = 0;
  2230. self->sibling[1].prog = &self->root_prog;
  2231. self->sibling[1].num_waits = 1;
  2232. self->sibling[1].metadata = _metadata;
  2233. }
  2234. FIXTURE_TEARDOWN(TSYNC)
  2235. {
  2236. int sib = 0;
  2237. if (self->root_prog.filter)
  2238. free(self->root_prog.filter);
  2239. if (self->apply_prog.filter)
  2240. free(self->apply_prog.filter);
  2241. for ( ; sib < self->sibling_count; ++sib) {
  2242. struct tsync_sibling *s = &self->sibling[sib];
  2243. if (!s->tid)
  2244. continue;
  2245. /*
  2246. * If a thread is still running, it may be stuck, so hit
  2247. * it over the head really hard.
  2248. */
  2249. pthread_kill(s->tid, 9);
  2250. }
  2251. pthread_mutex_destroy(&self->mutex);
  2252. pthread_cond_destroy(&self->cond);
  2253. sem_destroy(&self->started);
  2254. }
  2255. void *tsync_sibling(void *data)
  2256. {
  2257. long ret = 0;
  2258. struct tsync_sibling *me = data;
  2259. me->system_tid = syscall(__NR_gettid);
  2260. pthread_mutex_lock(me->mutex);
  2261. if (me->diverge) {
  2262. /* Just re-apply the root prog to fork the tree */
  2263. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER,
  2264. me->prog, 0, 0);
  2265. }
  2266. sem_post(me->started);
  2267. /* Return outside of started so parent notices failures. */
  2268. if (ret) {
  2269. pthread_mutex_unlock(me->mutex);
  2270. return (void *)SIBLING_EXIT_FAILURE;
  2271. }
  2272. do {
  2273. pthread_cond_wait(me->cond, me->mutex);
  2274. me->num_waits = me->num_waits - 1;
  2275. } while (me->num_waits);
  2276. pthread_mutex_unlock(me->mutex);
  2277. ret = prctl(PR_GET_NO_NEW_PRIVS, 0, 0, 0, 0);
  2278. if (!ret)
  2279. return (void *)SIBLING_EXIT_NEWPRIVS;
  2280. read(-1, NULL, 0);
  2281. return (void *)SIBLING_EXIT_UNKILLED;
  2282. }
  2283. void tsync_start_sibling(struct tsync_sibling *sibling)
  2284. {
  2285. pthread_create(&sibling->tid, NULL, tsync_sibling, (void *)sibling);
  2286. }
  2287. TEST_F(TSYNC, siblings_fail_prctl)
  2288. {
  2289. long ret;
  2290. void *status;
  2291. struct sock_filter filter[] = {
  2292. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  2293. offsetof(struct seccomp_data, nr)),
  2294. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_prctl, 0, 1),
  2295. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ERRNO | EINVAL),
  2296. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2297. };
  2298. struct sock_fprog prog = {
  2299. .len = (unsigned short)ARRAY_SIZE(filter),
  2300. .filter = filter,
  2301. };
  2302. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  2303. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2304. }
  2305. /* Check prctl failure detection by requesting sib 0 diverge. */
  2306. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog);
  2307. ASSERT_NE(ENOSYS, errno) {
  2308. TH_LOG("Kernel does not support seccomp syscall!");
  2309. }
  2310. ASSERT_EQ(0, ret) {
  2311. TH_LOG("setting filter failed");
  2312. }
  2313. self->sibling[0].diverge = 1;
  2314. tsync_start_sibling(&self->sibling[0]);
  2315. tsync_start_sibling(&self->sibling[1]);
  2316. while (self->sibling_count < TSYNC_SIBLINGS) {
  2317. sem_wait(&self->started);
  2318. self->sibling_count++;
  2319. }
  2320. /* Signal the threads to clean up*/
  2321. pthread_mutex_lock(&self->mutex);
  2322. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2323. TH_LOG("cond broadcast non-zero");
  2324. }
  2325. pthread_mutex_unlock(&self->mutex);
  2326. /* Ensure diverging sibling failed to call prctl. */
  2327. PTHREAD_JOIN(self->sibling[0].tid, &status);
  2328. EXPECT_EQ(SIBLING_EXIT_FAILURE, (long)status);
  2329. PTHREAD_JOIN(self->sibling[1].tid, &status);
  2330. EXPECT_EQ(SIBLING_EXIT_UNKILLED, (long)status);
  2331. }
  2332. TEST_F(TSYNC, two_siblings_with_ancestor)
  2333. {
  2334. long ret;
  2335. void *status;
  2336. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  2337. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2338. }
  2339. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &self->root_prog);
  2340. ASSERT_NE(ENOSYS, errno) {
  2341. TH_LOG("Kernel does not support seccomp syscall!");
  2342. }
  2343. ASSERT_EQ(0, ret) {
  2344. TH_LOG("Kernel does not support SECCOMP_SET_MODE_FILTER!");
  2345. }
  2346. tsync_start_sibling(&self->sibling[0]);
  2347. tsync_start_sibling(&self->sibling[1]);
  2348. while (self->sibling_count < TSYNC_SIBLINGS) {
  2349. sem_wait(&self->started);
  2350. self->sibling_count++;
  2351. }
  2352. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_TSYNC,
  2353. &self->apply_prog);
  2354. ASSERT_EQ(0, ret) {
  2355. TH_LOG("Could install filter on all threads!");
  2356. }
  2357. /* Tell the siblings to test the policy */
  2358. pthread_mutex_lock(&self->mutex);
  2359. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2360. TH_LOG("cond broadcast non-zero");
  2361. }
  2362. pthread_mutex_unlock(&self->mutex);
  2363. /* Ensure they are both killed and don't exit cleanly. */
  2364. PTHREAD_JOIN(self->sibling[0].tid, &status);
  2365. EXPECT_EQ(0x0, (long)status);
  2366. PTHREAD_JOIN(self->sibling[1].tid, &status);
  2367. EXPECT_EQ(0x0, (long)status);
  2368. }
  2369. TEST_F(TSYNC, two_sibling_want_nnp)
  2370. {
  2371. void *status;
  2372. /* start siblings before any prctl() operations */
  2373. tsync_start_sibling(&self->sibling[0]);
  2374. tsync_start_sibling(&self->sibling[1]);
  2375. while (self->sibling_count < TSYNC_SIBLINGS) {
  2376. sem_wait(&self->started);
  2377. self->sibling_count++;
  2378. }
  2379. /* Tell the siblings to test no policy */
  2380. pthread_mutex_lock(&self->mutex);
  2381. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2382. TH_LOG("cond broadcast non-zero");
  2383. }
  2384. pthread_mutex_unlock(&self->mutex);
  2385. /* Ensure they are both upset about lacking nnp. */
  2386. PTHREAD_JOIN(self->sibling[0].tid, &status);
  2387. EXPECT_EQ(SIBLING_EXIT_NEWPRIVS, (long)status);
  2388. PTHREAD_JOIN(self->sibling[1].tid, &status);
  2389. EXPECT_EQ(SIBLING_EXIT_NEWPRIVS, (long)status);
  2390. }
  2391. TEST_F(TSYNC, two_siblings_with_no_filter)
  2392. {
  2393. long ret;
  2394. void *status;
  2395. /* start siblings before any prctl() operations */
  2396. tsync_start_sibling(&self->sibling[0]);
  2397. tsync_start_sibling(&self->sibling[1]);
  2398. while (self->sibling_count < TSYNC_SIBLINGS) {
  2399. sem_wait(&self->started);
  2400. self->sibling_count++;
  2401. }
  2402. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  2403. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2404. }
  2405. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_TSYNC,
  2406. &self->apply_prog);
  2407. ASSERT_NE(ENOSYS, errno) {
  2408. TH_LOG("Kernel does not support seccomp syscall!");
  2409. }
  2410. ASSERT_EQ(0, ret) {
  2411. TH_LOG("Could install filter on all threads!");
  2412. }
  2413. /* Tell the siblings to test the policy */
  2414. pthread_mutex_lock(&self->mutex);
  2415. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2416. TH_LOG("cond broadcast non-zero");
  2417. }
  2418. pthread_mutex_unlock(&self->mutex);
  2419. /* Ensure they are both killed and don't exit cleanly. */
  2420. PTHREAD_JOIN(self->sibling[0].tid, &status);
  2421. EXPECT_EQ(0x0, (long)status);
  2422. PTHREAD_JOIN(self->sibling[1].tid, &status);
  2423. EXPECT_EQ(0x0, (long)status);
  2424. }
  2425. TEST_F(TSYNC, two_siblings_with_one_divergence)
  2426. {
  2427. long ret;
  2428. void *status;
  2429. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  2430. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2431. }
  2432. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &self->root_prog);
  2433. ASSERT_NE(ENOSYS, errno) {
  2434. TH_LOG("Kernel does not support seccomp syscall!");
  2435. }
  2436. ASSERT_EQ(0, ret) {
  2437. TH_LOG("Kernel does not support SECCOMP_SET_MODE_FILTER!");
  2438. }
  2439. self->sibling[0].diverge = 1;
  2440. tsync_start_sibling(&self->sibling[0]);
  2441. tsync_start_sibling(&self->sibling[1]);
  2442. while (self->sibling_count < TSYNC_SIBLINGS) {
  2443. sem_wait(&self->started);
  2444. self->sibling_count++;
  2445. }
  2446. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_TSYNC,
  2447. &self->apply_prog);
  2448. ASSERT_EQ(self->sibling[0].system_tid, ret) {
  2449. TH_LOG("Did not fail on diverged sibling.");
  2450. }
  2451. /* Wake the threads */
  2452. pthread_mutex_lock(&self->mutex);
  2453. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2454. TH_LOG("cond broadcast non-zero");
  2455. }
  2456. pthread_mutex_unlock(&self->mutex);
  2457. /* Ensure they are both unkilled. */
  2458. PTHREAD_JOIN(self->sibling[0].tid, &status);
  2459. EXPECT_EQ(SIBLING_EXIT_UNKILLED, (long)status);
  2460. PTHREAD_JOIN(self->sibling[1].tid, &status);
  2461. EXPECT_EQ(SIBLING_EXIT_UNKILLED, (long)status);
  2462. }
  2463. TEST_F(TSYNC, two_siblings_with_one_divergence_no_tid_in_err)
  2464. {
  2465. long ret, flags;
  2466. void *status;
  2467. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  2468. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2469. }
  2470. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &self->root_prog);
  2471. ASSERT_NE(ENOSYS, errno) {
  2472. TH_LOG("Kernel does not support seccomp syscall!");
  2473. }
  2474. ASSERT_EQ(0, ret) {
  2475. TH_LOG("Kernel does not support SECCOMP_SET_MODE_FILTER!");
  2476. }
  2477. self->sibling[0].diverge = 1;
  2478. tsync_start_sibling(&self->sibling[0]);
  2479. tsync_start_sibling(&self->sibling[1]);
  2480. while (self->sibling_count < TSYNC_SIBLINGS) {
  2481. sem_wait(&self->started);
  2482. self->sibling_count++;
  2483. }
  2484. flags = SECCOMP_FILTER_FLAG_TSYNC | \
  2485. SECCOMP_FILTER_FLAG_TSYNC_ESRCH;
  2486. ret = seccomp(SECCOMP_SET_MODE_FILTER, flags, &self->apply_prog);
  2487. ASSERT_EQ(ESRCH, errno) {
  2488. TH_LOG("Did not return ESRCH for diverged sibling.");
  2489. }
  2490. ASSERT_EQ(-1, ret) {
  2491. TH_LOG("Did not fail on diverged sibling.");
  2492. }
  2493. /* Wake the threads */
  2494. pthread_mutex_lock(&self->mutex);
  2495. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2496. TH_LOG("cond broadcast non-zero");
  2497. }
  2498. pthread_mutex_unlock(&self->mutex);
  2499. /* Ensure they are both unkilled. */
  2500. PTHREAD_JOIN(self->sibling[0].tid, &status);
  2501. EXPECT_EQ(SIBLING_EXIT_UNKILLED, (long)status);
  2502. PTHREAD_JOIN(self->sibling[1].tid, &status);
  2503. EXPECT_EQ(SIBLING_EXIT_UNKILLED, (long)status);
  2504. }
  2505. TEST_F(TSYNC, two_siblings_not_under_filter)
  2506. {
  2507. long ret, sib;
  2508. void *status;
  2509. struct timespec delay = { .tv_nsec = 100000000 };
  2510. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  2511. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2512. }
  2513. /*
  2514. * Sibling 0 will have its own seccomp policy
  2515. * and Sibling 1 will not be under seccomp at
  2516. * all. Sibling 1 will enter seccomp and 0
  2517. * will cause failure.
  2518. */
  2519. self->sibling[0].diverge = 1;
  2520. tsync_start_sibling(&self->sibling[0]);
  2521. tsync_start_sibling(&self->sibling[1]);
  2522. while (self->sibling_count < TSYNC_SIBLINGS) {
  2523. sem_wait(&self->started);
  2524. self->sibling_count++;
  2525. }
  2526. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &self->root_prog);
  2527. ASSERT_NE(ENOSYS, errno) {
  2528. TH_LOG("Kernel does not support seccomp syscall!");
  2529. }
  2530. ASSERT_EQ(0, ret) {
  2531. TH_LOG("Kernel does not support SECCOMP_SET_MODE_FILTER!");
  2532. }
  2533. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_TSYNC,
  2534. &self->apply_prog);
  2535. ASSERT_EQ(ret, self->sibling[0].system_tid) {
  2536. TH_LOG("Did not fail on diverged sibling.");
  2537. }
  2538. sib = 1;
  2539. if (ret == self->sibling[0].system_tid)
  2540. sib = 0;
  2541. pthread_mutex_lock(&self->mutex);
  2542. /* Increment the other siblings num_waits so we can clean up
  2543. * the one we just saw.
  2544. */
  2545. self->sibling[!sib].num_waits += 1;
  2546. /* Signal the thread to clean up*/
  2547. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2548. TH_LOG("cond broadcast non-zero");
  2549. }
  2550. pthread_mutex_unlock(&self->mutex);
  2551. PTHREAD_JOIN(self->sibling[sib].tid, &status);
  2552. EXPECT_EQ(SIBLING_EXIT_UNKILLED, (long)status);
  2553. /* Poll for actual task death. pthread_join doesn't guarantee it. */
  2554. while (!kill(self->sibling[sib].system_tid, 0))
  2555. nanosleep(&delay, NULL);
  2556. /* Switch to the remaining sibling */
  2557. sib = !sib;
  2558. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_TSYNC,
  2559. &self->apply_prog);
  2560. ASSERT_EQ(0, ret) {
  2561. TH_LOG("Expected the remaining sibling to sync");
  2562. };
  2563. pthread_mutex_lock(&self->mutex);
  2564. /* If remaining sibling didn't have a chance to wake up during
  2565. * the first broadcast, manually reduce the num_waits now.
  2566. */
  2567. if (self->sibling[sib].num_waits > 1)
  2568. self->sibling[sib].num_waits = 1;
  2569. ASSERT_EQ(0, pthread_cond_broadcast(&self->cond)) {
  2570. TH_LOG("cond broadcast non-zero");
  2571. }
  2572. pthread_mutex_unlock(&self->mutex);
  2573. PTHREAD_JOIN(self->sibling[sib].tid, &status);
  2574. EXPECT_EQ(0, (long)status);
  2575. /* Poll for actual task death. pthread_join doesn't guarantee it. */
  2576. while (!kill(self->sibling[sib].system_tid, 0))
  2577. nanosleep(&delay, NULL);
  2578. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_TSYNC,
  2579. &self->apply_prog);
  2580. ASSERT_EQ(0, ret); /* just us chickens */
  2581. }
  2582. /* Make sure restarted syscalls are seen directly as "restart_syscall". */
  2583. TEST(syscall_restart)
  2584. {
  2585. long ret;
  2586. unsigned long msg;
  2587. pid_t child_pid;
  2588. int pipefd[2];
  2589. int status;
  2590. siginfo_t info = { };
  2591. struct sock_filter filter[] = {
  2592. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  2593. offsetof(struct seccomp_data, nr)),
  2594. #ifdef __NR_sigreturn
  2595. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_sigreturn, 7, 0),
  2596. #endif
  2597. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_read, 6, 0),
  2598. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_exit, 5, 0),
  2599. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_rt_sigreturn, 4, 0),
  2600. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_nanosleep, 5, 0),
  2601. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_clock_nanosleep, 4, 0),
  2602. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_restart_syscall, 4, 0),
  2603. /* Allow __NR_write for easy logging. */
  2604. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_write, 0, 1),
  2605. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2606. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  2607. /* The nanosleep jump target. */
  2608. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE|0x100),
  2609. /* The restart_syscall jump target. */
  2610. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_TRACE|0x200),
  2611. };
  2612. struct sock_fprog prog = {
  2613. .len = (unsigned short)ARRAY_SIZE(filter),
  2614. .filter = filter,
  2615. };
  2616. #if defined(__arm__)
  2617. struct utsname utsbuf;
  2618. #endif
  2619. ASSERT_EQ(0, pipe(pipefd));
  2620. child_pid = fork();
  2621. ASSERT_LE(0, child_pid);
  2622. if (child_pid == 0) {
  2623. /* Child uses EXPECT not ASSERT to deliver status correctly. */
  2624. char buf = ' ';
  2625. struct timespec timeout = { };
  2626. /* Attach parent as tracer and stop. */
  2627. EXPECT_EQ(0, ptrace(PTRACE_TRACEME));
  2628. EXPECT_EQ(0, raise(SIGSTOP));
  2629. EXPECT_EQ(0, close(pipefd[1]));
  2630. EXPECT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0)) {
  2631. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2632. }
  2633. ret = prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog, 0, 0);
  2634. EXPECT_EQ(0, ret) {
  2635. TH_LOG("Failed to install filter!");
  2636. }
  2637. EXPECT_EQ(1, read(pipefd[0], &buf, 1)) {
  2638. TH_LOG("Failed to read() sync from parent");
  2639. }
  2640. EXPECT_EQ('.', buf) {
  2641. TH_LOG("Failed to get sync data from read()");
  2642. }
  2643. /* Start nanosleep to be interrupted. */
  2644. timeout.tv_sec = 1;
  2645. errno = 0;
  2646. EXPECT_EQ(0, nanosleep(&timeout, NULL)) {
  2647. TH_LOG("Call to nanosleep() failed (errno %d)", errno);
  2648. }
  2649. /* Read final sync from parent. */
  2650. EXPECT_EQ(1, read(pipefd[0], &buf, 1)) {
  2651. TH_LOG("Failed final read() from parent");
  2652. }
  2653. EXPECT_EQ('!', buf) {
  2654. TH_LOG("Failed to get final data from read()");
  2655. }
  2656. /* Directly report the status of our test harness results. */
  2657. syscall(__NR_exit, _metadata->passed ? EXIT_SUCCESS
  2658. : EXIT_FAILURE);
  2659. }
  2660. EXPECT_EQ(0, close(pipefd[0]));
  2661. /* Attach to child, setup options, and release. */
  2662. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  2663. ASSERT_EQ(true, WIFSTOPPED(status));
  2664. ASSERT_EQ(0, ptrace(PTRACE_SETOPTIONS, child_pid, NULL,
  2665. PTRACE_O_TRACESECCOMP));
  2666. ASSERT_EQ(0, ptrace(PTRACE_CONT, child_pid, NULL, 0));
  2667. ASSERT_EQ(1, write(pipefd[1], ".", 1));
  2668. /* Wait for nanosleep() to start. */
  2669. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  2670. ASSERT_EQ(true, WIFSTOPPED(status));
  2671. ASSERT_EQ(SIGTRAP, WSTOPSIG(status));
  2672. ASSERT_EQ(PTRACE_EVENT_SECCOMP, (status >> 16));
  2673. ASSERT_EQ(0, ptrace(PTRACE_GETEVENTMSG, child_pid, NULL, &msg));
  2674. ASSERT_EQ(0x100, msg);
  2675. ret = get_syscall(_metadata, child_pid);
  2676. EXPECT_TRUE(ret == __NR_nanosleep || ret == __NR_clock_nanosleep);
  2677. /* Might as well check siginfo for sanity while we're here. */
  2678. ASSERT_EQ(0, ptrace(PTRACE_GETSIGINFO, child_pid, NULL, &info));
  2679. ASSERT_EQ(SIGTRAP, info.si_signo);
  2680. ASSERT_EQ(SIGTRAP | (PTRACE_EVENT_SECCOMP << 8), info.si_code);
  2681. EXPECT_EQ(0, info.si_errno);
  2682. EXPECT_EQ(getuid(), info.si_uid);
  2683. /* Verify signal delivery came from child (seccomp-triggered). */
  2684. EXPECT_EQ(child_pid, info.si_pid);
  2685. /* Interrupt nanosleep with SIGSTOP (which we'll need to handle). */
  2686. ASSERT_EQ(0, kill(child_pid, SIGSTOP));
  2687. ASSERT_EQ(0, ptrace(PTRACE_CONT, child_pid, NULL, 0));
  2688. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  2689. ASSERT_EQ(true, WIFSTOPPED(status));
  2690. ASSERT_EQ(SIGSTOP, WSTOPSIG(status));
  2691. ASSERT_EQ(0, ptrace(PTRACE_GETSIGINFO, child_pid, NULL, &info));
  2692. /*
  2693. * There is no siginfo on SIGSTOP any more, so we can't verify
  2694. * signal delivery came from parent now (getpid() == info.si_pid).
  2695. * https://lkml.kernel.org/r/CAGXu5jJaZAOzP1qFz66tYrtbuywqb+UN2SOA1VLHpCCOiYvYeg@mail.gmail.com
  2696. * At least verify the SIGSTOP via PTRACE_GETSIGINFO.
  2697. */
  2698. EXPECT_EQ(SIGSTOP, info.si_signo);
  2699. /* Restart nanosleep with SIGCONT, which triggers restart_syscall. */
  2700. ASSERT_EQ(0, kill(child_pid, SIGCONT));
  2701. ASSERT_EQ(0, ptrace(PTRACE_CONT, child_pid, NULL, 0));
  2702. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  2703. ASSERT_EQ(true, WIFSTOPPED(status));
  2704. ASSERT_EQ(SIGCONT, WSTOPSIG(status));
  2705. ASSERT_EQ(0, ptrace(PTRACE_CONT, child_pid, NULL, 0));
  2706. /* Wait for restart_syscall() to start. */
  2707. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  2708. ASSERT_EQ(true, WIFSTOPPED(status));
  2709. ASSERT_EQ(SIGTRAP, WSTOPSIG(status));
  2710. ASSERT_EQ(PTRACE_EVENT_SECCOMP, (status >> 16));
  2711. ASSERT_EQ(0, ptrace(PTRACE_GETEVENTMSG, child_pid, NULL, &msg));
  2712. ASSERT_EQ(0x200, msg);
  2713. ret = get_syscall(_metadata, child_pid);
  2714. #if defined(__arm__)
  2715. /*
  2716. * FIXME:
  2717. * - native ARM registers do NOT expose true syscall.
  2718. * - compat ARM registers on ARM64 DO expose true syscall.
  2719. */
  2720. ASSERT_EQ(0, uname(&utsbuf));
  2721. if (strncmp(utsbuf.machine, "arm", 3) == 0) {
  2722. EXPECT_EQ(__NR_nanosleep, ret);
  2723. } else
  2724. #endif
  2725. {
  2726. EXPECT_EQ(__NR_restart_syscall, ret);
  2727. }
  2728. /* Write again to end test. */
  2729. ASSERT_EQ(0, ptrace(PTRACE_CONT, child_pid, NULL, 0));
  2730. ASSERT_EQ(1, write(pipefd[1], "!", 1));
  2731. EXPECT_EQ(0, close(pipefd[1]));
  2732. ASSERT_EQ(child_pid, waitpid(child_pid, &status, 0));
  2733. if (WIFSIGNALED(status) || WEXITSTATUS(status))
  2734. _metadata->passed = 0;
  2735. }
  2736. TEST_SIGNAL(filter_flag_log, SIGSYS)
  2737. {
  2738. struct sock_filter allow_filter[] = {
  2739. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2740. };
  2741. struct sock_filter kill_filter[] = {
  2742. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  2743. offsetof(struct seccomp_data, nr)),
  2744. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, __NR_getpid, 0, 1),
  2745. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_KILL),
  2746. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2747. };
  2748. struct sock_fprog allow_prog = {
  2749. .len = (unsigned short)ARRAY_SIZE(allow_filter),
  2750. .filter = allow_filter,
  2751. };
  2752. struct sock_fprog kill_prog = {
  2753. .len = (unsigned short)ARRAY_SIZE(kill_filter),
  2754. .filter = kill_filter,
  2755. };
  2756. long ret;
  2757. pid_t parent = getppid();
  2758. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  2759. ASSERT_EQ(0, ret);
  2760. /* Verify that the FILTER_FLAG_LOG flag isn't accepted in strict mode */
  2761. ret = seccomp(SECCOMP_SET_MODE_STRICT, SECCOMP_FILTER_FLAG_LOG,
  2762. &allow_prog);
  2763. ASSERT_NE(ENOSYS, errno) {
  2764. TH_LOG("Kernel does not support seccomp syscall!");
  2765. }
  2766. EXPECT_NE(0, ret) {
  2767. TH_LOG("Kernel accepted FILTER_FLAG_LOG flag in strict mode!");
  2768. }
  2769. EXPECT_EQ(EINVAL, errno) {
  2770. TH_LOG("Kernel returned unexpected errno for FILTER_FLAG_LOG flag in strict mode!");
  2771. }
  2772. /* Verify that a simple, permissive filter can be added with no flags */
  2773. ret = seccomp(SECCOMP_SET_MODE_FILTER, 0, &allow_prog);
  2774. EXPECT_EQ(0, ret);
  2775. /* See if the same filter can be added with the FILTER_FLAG_LOG flag */
  2776. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_LOG,
  2777. &allow_prog);
  2778. ASSERT_NE(EINVAL, errno) {
  2779. TH_LOG("Kernel does not support the FILTER_FLAG_LOG flag!");
  2780. }
  2781. EXPECT_EQ(0, ret);
  2782. /* Ensure that the kill filter works with the FILTER_FLAG_LOG flag */
  2783. ret = seccomp(SECCOMP_SET_MODE_FILTER, SECCOMP_FILTER_FLAG_LOG,
  2784. &kill_prog);
  2785. EXPECT_EQ(0, ret);
  2786. EXPECT_EQ(parent, syscall(__NR_getppid));
  2787. /* getpid() should never return. */
  2788. EXPECT_EQ(0, syscall(__NR_getpid));
  2789. }
  2790. TEST(get_action_avail)
  2791. {
  2792. __u32 actions[] = { SECCOMP_RET_KILL_THREAD, SECCOMP_RET_TRAP,
  2793. SECCOMP_RET_ERRNO, SECCOMP_RET_TRACE,
  2794. SECCOMP_RET_LOG, SECCOMP_RET_ALLOW };
  2795. __u32 unknown_action = 0x10000000U;
  2796. int i;
  2797. long ret;
  2798. ret = seccomp(SECCOMP_GET_ACTION_AVAIL, 0, &actions[0]);
  2799. ASSERT_NE(ENOSYS, errno) {
  2800. TH_LOG("Kernel does not support seccomp syscall!");
  2801. }
  2802. ASSERT_NE(EINVAL, errno) {
  2803. TH_LOG("Kernel does not support SECCOMP_GET_ACTION_AVAIL operation!");
  2804. }
  2805. EXPECT_EQ(ret, 0);
  2806. for (i = 0; i < ARRAY_SIZE(actions); i++) {
  2807. ret = seccomp(SECCOMP_GET_ACTION_AVAIL, 0, &actions[i]);
  2808. EXPECT_EQ(ret, 0) {
  2809. TH_LOG("Expected action (0x%X) not available!",
  2810. actions[i]);
  2811. }
  2812. }
  2813. /* Check that an unknown action is handled properly (EOPNOTSUPP) */
  2814. ret = seccomp(SECCOMP_GET_ACTION_AVAIL, 0, &unknown_action);
  2815. EXPECT_EQ(ret, -1);
  2816. EXPECT_EQ(errno, EOPNOTSUPP);
  2817. }
  2818. TEST(get_metadata)
  2819. {
  2820. pid_t pid;
  2821. int pipefd[2];
  2822. char buf;
  2823. struct seccomp_metadata md;
  2824. long ret;
  2825. /* Only real root can get metadata. */
  2826. if (geteuid()) {
  2827. SKIP(return, "get_metadata requires real root");
  2828. return;
  2829. }
  2830. ASSERT_EQ(0, pipe(pipefd));
  2831. pid = fork();
  2832. ASSERT_GE(pid, 0);
  2833. if (pid == 0) {
  2834. struct sock_filter filter[] = {
  2835. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2836. };
  2837. struct sock_fprog prog = {
  2838. .len = (unsigned short)ARRAY_SIZE(filter),
  2839. .filter = filter,
  2840. };
  2841. /* one with log, one without */
  2842. EXPECT_EQ(0, seccomp(SECCOMP_SET_MODE_FILTER,
  2843. SECCOMP_FILTER_FLAG_LOG, &prog));
  2844. EXPECT_EQ(0, seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog));
  2845. EXPECT_EQ(0, close(pipefd[0]));
  2846. ASSERT_EQ(1, write(pipefd[1], "1", 1));
  2847. ASSERT_EQ(0, close(pipefd[1]));
  2848. while (1)
  2849. sleep(100);
  2850. }
  2851. ASSERT_EQ(0, close(pipefd[1]));
  2852. ASSERT_EQ(1, read(pipefd[0], &buf, 1));
  2853. ASSERT_EQ(0, ptrace(PTRACE_ATTACH, pid));
  2854. ASSERT_EQ(pid, waitpid(pid, NULL, 0));
  2855. /* Past here must not use ASSERT or child process is never killed. */
  2856. md.filter_off = 0;
  2857. errno = 0;
  2858. ret = ptrace(PTRACE_SECCOMP_GET_METADATA, pid, sizeof(md), &md);
  2859. EXPECT_EQ(sizeof(md), ret) {
  2860. if (errno == EINVAL)
  2861. SKIP(goto skip, "Kernel does not support PTRACE_SECCOMP_GET_METADATA (missing CONFIG_CHECKPOINT_RESTORE?)");
  2862. }
  2863. EXPECT_EQ(md.flags, SECCOMP_FILTER_FLAG_LOG);
  2864. EXPECT_EQ(md.filter_off, 0);
  2865. md.filter_off = 1;
  2866. ret = ptrace(PTRACE_SECCOMP_GET_METADATA, pid, sizeof(md), &md);
  2867. EXPECT_EQ(sizeof(md), ret);
  2868. EXPECT_EQ(md.flags, 0);
  2869. EXPECT_EQ(md.filter_off, 1);
  2870. skip:
  2871. ASSERT_EQ(0, kill(pid, SIGKILL));
  2872. }
  2873. static int user_notif_syscall(int nr, unsigned int flags)
  2874. {
  2875. struct sock_filter filter[] = {
  2876. BPF_STMT(BPF_LD|BPF_W|BPF_ABS,
  2877. offsetof(struct seccomp_data, nr)),
  2878. BPF_JUMP(BPF_JMP|BPF_JEQ|BPF_K, nr, 0, 1),
  2879. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_USER_NOTIF),
  2880. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2881. };
  2882. struct sock_fprog prog = {
  2883. .len = (unsigned short)ARRAY_SIZE(filter),
  2884. .filter = filter,
  2885. };
  2886. return seccomp(SECCOMP_SET_MODE_FILTER, flags, &prog);
  2887. }
  2888. #define USER_NOTIF_MAGIC INT_MAX
  2889. TEST(user_notification_basic)
  2890. {
  2891. pid_t pid;
  2892. long ret;
  2893. int status, listener;
  2894. struct seccomp_notif req = {};
  2895. struct seccomp_notif_resp resp = {};
  2896. struct pollfd pollfd;
  2897. struct sock_filter filter[] = {
  2898. BPF_STMT(BPF_RET|BPF_K, SECCOMP_RET_ALLOW),
  2899. };
  2900. struct sock_fprog prog = {
  2901. .len = (unsigned short)ARRAY_SIZE(filter),
  2902. .filter = filter,
  2903. };
  2904. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  2905. ASSERT_EQ(0, ret) {
  2906. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2907. }
  2908. pid = fork();
  2909. ASSERT_GE(pid, 0);
  2910. /* Check that we get -ENOSYS with no listener attached */
  2911. if (pid == 0) {
  2912. if (user_notif_syscall(__NR_getppid, 0) < 0)
  2913. exit(1);
  2914. ret = syscall(__NR_getppid);
  2915. exit(ret >= 0 || errno != ENOSYS);
  2916. }
  2917. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  2918. EXPECT_EQ(true, WIFEXITED(status));
  2919. EXPECT_EQ(0, WEXITSTATUS(status));
  2920. /* Add some no-op filters for grins. */
  2921. EXPECT_EQ(seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog), 0);
  2922. EXPECT_EQ(seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog), 0);
  2923. EXPECT_EQ(seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog), 0);
  2924. EXPECT_EQ(seccomp(SECCOMP_SET_MODE_FILTER, 0, &prog), 0);
  2925. /* Check that the basic notification machinery works */
  2926. listener = user_notif_syscall(__NR_getppid,
  2927. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  2928. ASSERT_GE(listener, 0);
  2929. /* Installing a second listener in the chain should EBUSY */
  2930. EXPECT_EQ(user_notif_syscall(__NR_getppid,
  2931. SECCOMP_FILTER_FLAG_NEW_LISTENER),
  2932. -1);
  2933. EXPECT_EQ(errno, EBUSY);
  2934. pid = fork();
  2935. ASSERT_GE(pid, 0);
  2936. if (pid == 0) {
  2937. ret = syscall(__NR_getppid);
  2938. exit(ret != USER_NOTIF_MAGIC);
  2939. }
  2940. pollfd.fd = listener;
  2941. pollfd.events = POLLIN | POLLOUT;
  2942. EXPECT_GT(poll(&pollfd, 1, -1), 0);
  2943. EXPECT_EQ(pollfd.revents, POLLIN);
  2944. /* Test that we can't pass garbage to the kernel. */
  2945. memset(&req, 0, sizeof(req));
  2946. req.pid = -1;
  2947. errno = 0;
  2948. ret = ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req);
  2949. EXPECT_EQ(-1, ret);
  2950. EXPECT_EQ(EINVAL, errno);
  2951. if (ret) {
  2952. req.pid = 0;
  2953. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  2954. }
  2955. pollfd.fd = listener;
  2956. pollfd.events = POLLIN | POLLOUT;
  2957. EXPECT_GT(poll(&pollfd, 1, -1), 0);
  2958. EXPECT_EQ(pollfd.revents, POLLOUT);
  2959. EXPECT_EQ(req.data.nr, __NR_getppid);
  2960. resp.id = req.id;
  2961. resp.error = 0;
  2962. resp.val = USER_NOTIF_MAGIC;
  2963. /* check that we make sure flags == 0 */
  2964. resp.flags = 1;
  2965. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), -1);
  2966. EXPECT_EQ(errno, EINVAL);
  2967. resp.flags = 0;
  2968. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  2969. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  2970. EXPECT_EQ(true, WIFEXITED(status));
  2971. EXPECT_EQ(0, WEXITSTATUS(status));
  2972. }
  2973. TEST(user_notification_with_tsync)
  2974. {
  2975. int ret;
  2976. unsigned int flags;
  2977. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  2978. ASSERT_EQ(0, ret) {
  2979. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  2980. }
  2981. /* these were exclusive */
  2982. flags = SECCOMP_FILTER_FLAG_NEW_LISTENER |
  2983. SECCOMP_FILTER_FLAG_TSYNC;
  2984. ASSERT_EQ(-1, user_notif_syscall(__NR_getppid, flags));
  2985. ASSERT_EQ(EINVAL, errno);
  2986. /* but now they're not */
  2987. flags |= SECCOMP_FILTER_FLAG_TSYNC_ESRCH;
  2988. ret = user_notif_syscall(__NR_getppid, flags);
  2989. close(ret);
  2990. ASSERT_LE(0, ret);
  2991. }
  2992. TEST(user_notification_kill_in_middle)
  2993. {
  2994. pid_t pid;
  2995. long ret;
  2996. int listener;
  2997. struct seccomp_notif req = {};
  2998. struct seccomp_notif_resp resp = {};
  2999. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3000. ASSERT_EQ(0, ret) {
  3001. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3002. }
  3003. listener = user_notif_syscall(__NR_getppid,
  3004. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3005. ASSERT_GE(listener, 0);
  3006. /*
  3007. * Check that nothing bad happens when we kill the task in the middle
  3008. * of a syscall.
  3009. */
  3010. pid = fork();
  3011. ASSERT_GE(pid, 0);
  3012. if (pid == 0) {
  3013. ret = syscall(__NR_getppid);
  3014. exit(ret != USER_NOTIF_MAGIC);
  3015. }
  3016. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3017. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ID_VALID, &req.id), 0);
  3018. EXPECT_EQ(kill(pid, SIGKILL), 0);
  3019. EXPECT_EQ(waitpid(pid, NULL, 0), pid);
  3020. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ID_VALID, &req.id), -1);
  3021. resp.id = req.id;
  3022. ret = ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp);
  3023. EXPECT_EQ(ret, -1);
  3024. EXPECT_EQ(errno, ENOENT);
  3025. }
  3026. static int handled = -1;
  3027. static void signal_handler(int signal)
  3028. {
  3029. if (write(handled, "c", 1) != 1)
  3030. perror("write from signal");
  3031. }
  3032. TEST(user_notification_signal)
  3033. {
  3034. pid_t pid;
  3035. long ret;
  3036. int status, listener, sk_pair[2];
  3037. struct seccomp_notif req = {};
  3038. struct seccomp_notif_resp resp = {};
  3039. char c;
  3040. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3041. ASSERT_EQ(0, ret) {
  3042. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3043. }
  3044. ASSERT_EQ(socketpair(PF_LOCAL, SOCK_SEQPACKET, 0, sk_pair), 0);
  3045. listener = user_notif_syscall(__NR_gettid,
  3046. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3047. ASSERT_GE(listener, 0);
  3048. pid = fork();
  3049. ASSERT_GE(pid, 0);
  3050. if (pid == 0) {
  3051. close(sk_pair[0]);
  3052. handled = sk_pair[1];
  3053. if (signal(SIGUSR1, signal_handler) == SIG_ERR) {
  3054. perror("signal");
  3055. exit(1);
  3056. }
  3057. /*
  3058. * ERESTARTSYS behavior is a bit hard to test, because we need
  3059. * to rely on a signal that has not yet been handled. Let's at
  3060. * least check that the error code gets propagated through, and
  3061. * hope that it doesn't break when there is actually a signal :)
  3062. */
  3063. ret = syscall(__NR_gettid);
  3064. exit(!(ret == -1 && errno == 512));
  3065. }
  3066. close(sk_pair[1]);
  3067. memset(&req, 0, sizeof(req));
  3068. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3069. EXPECT_EQ(kill(pid, SIGUSR1), 0);
  3070. /*
  3071. * Make sure the signal really is delivered, which means we're not
  3072. * stuck in the user notification code any more and the notification
  3073. * should be dead.
  3074. */
  3075. EXPECT_EQ(read(sk_pair[0], &c, 1), 1);
  3076. resp.id = req.id;
  3077. resp.error = -EPERM;
  3078. resp.val = 0;
  3079. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), -1);
  3080. EXPECT_EQ(errno, ENOENT);
  3081. memset(&req, 0, sizeof(req));
  3082. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3083. resp.id = req.id;
  3084. resp.error = -512; /* -ERESTARTSYS */
  3085. resp.val = 0;
  3086. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3087. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3088. EXPECT_EQ(true, WIFEXITED(status));
  3089. EXPECT_EQ(0, WEXITSTATUS(status));
  3090. }
  3091. TEST(user_notification_closed_listener)
  3092. {
  3093. pid_t pid;
  3094. long ret;
  3095. int status, listener;
  3096. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3097. ASSERT_EQ(0, ret) {
  3098. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3099. }
  3100. listener = user_notif_syscall(__NR_getppid,
  3101. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3102. ASSERT_GE(listener, 0);
  3103. /*
  3104. * Check that we get an ENOSYS when the listener is closed.
  3105. */
  3106. pid = fork();
  3107. ASSERT_GE(pid, 0);
  3108. if (pid == 0) {
  3109. close(listener);
  3110. ret = syscall(__NR_getppid);
  3111. exit(ret != -1 && errno != ENOSYS);
  3112. }
  3113. close(listener);
  3114. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3115. EXPECT_EQ(true, WIFEXITED(status));
  3116. EXPECT_EQ(0, WEXITSTATUS(status));
  3117. }
  3118. /*
  3119. * Check that a pid in a child namespace still shows up as valid in ours.
  3120. */
  3121. TEST(user_notification_child_pid_ns)
  3122. {
  3123. pid_t pid;
  3124. int status, listener;
  3125. struct seccomp_notif req = {};
  3126. struct seccomp_notif_resp resp = {};
  3127. ASSERT_EQ(unshare(CLONE_NEWUSER | CLONE_NEWPID), 0) {
  3128. if (errno == EINVAL)
  3129. SKIP(return, "kernel missing CLONE_NEWUSER support");
  3130. };
  3131. listener = user_notif_syscall(__NR_getppid,
  3132. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3133. ASSERT_GE(listener, 0);
  3134. pid = fork();
  3135. ASSERT_GE(pid, 0);
  3136. if (pid == 0)
  3137. exit(syscall(__NR_getppid) != USER_NOTIF_MAGIC);
  3138. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3139. EXPECT_EQ(req.pid, pid);
  3140. resp.id = req.id;
  3141. resp.error = 0;
  3142. resp.val = USER_NOTIF_MAGIC;
  3143. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3144. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3145. EXPECT_EQ(true, WIFEXITED(status));
  3146. EXPECT_EQ(0, WEXITSTATUS(status));
  3147. close(listener);
  3148. }
  3149. /*
  3150. * Check that a pid in a sibling (i.e. unrelated) namespace shows up as 0, i.e.
  3151. * invalid.
  3152. */
  3153. TEST(user_notification_sibling_pid_ns)
  3154. {
  3155. pid_t pid, pid2;
  3156. int status, listener;
  3157. struct seccomp_notif req = {};
  3158. struct seccomp_notif_resp resp = {};
  3159. ASSERT_EQ(prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0), 0) {
  3160. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3161. }
  3162. listener = user_notif_syscall(__NR_getppid,
  3163. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3164. ASSERT_GE(listener, 0);
  3165. pid = fork();
  3166. ASSERT_GE(pid, 0);
  3167. if (pid == 0) {
  3168. ASSERT_EQ(unshare(CLONE_NEWPID), 0);
  3169. pid2 = fork();
  3170. ASSERT_GE(pid2, 0);
  3171. if (pid2 == 0)
  3172. exit(syscall(__NR_getppid) != USER_NOTIF_MAGIC);
  3173. EXPECT_EQ(waitpid(pid2, &status, 0), pid2);
  3174. EXPECT_EQ(true, WIFEXITED(status));
  3175. EXPECT_EQ(0, WEXITSTATUS(status));
  3176. exit(WEXITSTATUS(status));
  3177. }
  3178. /* Create the sibling ns, and sibling in it. */
  3179. ASSERT_EQ(unshare(CLONE_NEWPID), 0) {
  3180. if (errno == EPERM)
  3181. SKIP(return, "CLONE_NEWPID requires CAP_SYS_ADMIN");
  3182. }
  3183. ASSERT_EQ(errno, 0);
  3184. pid2 = fork();
  3185. ASSERT_GE(pid2, 0);
  3186. if (pid2 == 0) {
  3187. ASSERT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3188. /*
  3189. * The pid should be 0, i.e. the task is in some namespace that
  3190. * we can't "see".
  3191. */
  3192. EXPECT_EQ(req.pid, 0);
  3193. resp.id = req.id;
  3194. resp.error = 0;
  3195. resp.val = USER_NOTIF_MAGIC;
  3196. ASSERT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3197. exit(0);
  3198. }
  3199. close(listener);
  3200. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3201. EXPECT_EQ(true, WIFEXITED(status));
  3202. EXPECT_EQ(0, WEXITSTATUS(status));
  3203. EXPECT_EQ(waitpid(pid2, &status, 0), pid2);
  3204. EXPECT_EQ(true, WIFEXITED(status));
  3205. EXPECT_EQ(0, WEXITSTATUS(status));
  3206. }
  3207. TEST(user_notification_fault_recv)
  3208. {
  3209. pid_t pid;
  3210. int status, listener;
  3211. struct seccomp_notif req = {};
  3212. struct seccomp_notif_resp resp = {};
  3213. ASSERT_EQ(unshare(CLONE_NEWUSER), 0) {
  3214. if (errno == EINVAL)
  3215. SKIP(return, "kernel missing CLONE_NEWUSER support");
  3216. }
  3217. listener = user_notif_syscall(__NR_getppid,
  3218. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3219. ASSERT_GE(listener, 0);
  3220. pid = fork();
  3221. ASSERT_GE(pid, 0);
  3222. if (pid == 0)
  3223. exit(syscall(__NR_getppid) != USER_NOTIF_MAGIC);
  3224. /* Do a bad recv() */
  3225. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, NULL), -1);
  3226. EXPECT_EQ(errno, EFAULT);
  3227. /* We should still be able to receive this notification, though. */
  3228. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3229. EXPECT_EQ(req.pid, pid);
  3230. resp.id = req.id;
  3231. resp.error = 0;
  3232. resp.val = USER_NOTIF_MAGIC;
  3233. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3234. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3235. EXPECT_EQ(true, WIFEXITED(status));
  3236. EXPECT_EQ(0, WEXITSTATUS(status));
  3237. }
  3238. TEST(seccomp_get_notif_sizes)
  3239. {
  3240. struct seccomp_notif_sizes sizes;
  3241. ASSERT_EQ(seccomp(SECCOMP_GET_NOTIF_SIZES, 0, &sizes), 0);
  3242. EXPECT_EQ(sizes.seccomp_notif, sizeof(struct seccomp_notif));
  3243. EXPECT_EQ(sizes.seccomp_notif_resp, sizeof(struct seccomp_notif_resp));
  3244. }
  3245. TEST(user_notification_continue)
  3246. {
  3247. pid_t pid;
  3248. long ret;
  3249. int status, listener;
  3250. struct seccomp_notif req = {};
  3251. struct seccomp_notif_resp resp = {};
  3252. struct pollfd pollfd;
  3253. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3254. ASSERT_EQ(0, ret) {
  3255. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3256. }
  3257. listener = user_notif_syscall(__NR_dup, SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3258. ASSERT_GE(listener, 0);
  3259. pid = fork();
  3260. ASSERT_GE(pid, 0);
  3261. if (pid == 0) {
  3262. int dup_fd, pipe_fds[2];
  3263. pid_t self;
  3264. ASSERT_GE(pipe(pipe_fds), 0);
  3265. dup_fd = dup(pipe_fds[0]);
  3266. ASSERT_GE(dup_fd, 0);
  3267. EXPECT_NE(pipe_fds[0], dup_fd);
  3268. self = getpid();
  3269. ASSERT_EQ(filecmp(self, self, pipe_fds[0], dup_fd), 0);
  3270. exit(0);
  3271. }
  3272. pollfd.fd = listener;
  3273. pollfd.events = POLLIN | POLLOUT;
  3274. EXPECT_GT(poll(&pollfd, 1, -1), 0);
  3275. EXPECT_EQ(pollfd.revents, POLLIN);
  3276. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3277. pollfd.fd = listener;
  3278. pollfd.events = POLLIN | POLLOUT;
  3279. EXPECT_GT(poll(&pollfd, 1, -1), 0);
  3280. EXPECT_EQ(pollfd.revents, POLLOUT);
  3281. EXPECT_EQ(req.data.nr, __NR_dup);
  3282. resp.id = req.id;
  3283. resp.flags = SECCOMP_USER_NOTIF_FLAG_CONTINUE;
  3284. /*
  3285. * Verify that setting SECCOMP_USER_NOTIF_FLAG_CONTINUE enforces other
  3286. * args be set to 0.
  3287. */
  3288. resp.error = 0;
  3289. resp.val = USER_NOTIF_MAGIC;
  3290. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), -1);
  3291. EXPECT_EQ(errno, EINVAL);
  3292. resp.error = USER_NOTIF_MAGIC;
  3293. resp.val = 0;
  3294. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), -1);
  3295. EXPECT_EQ(errno, EINVAL);
  3296. resp.error = 0;
  3297. resp.val = 0;
  3298. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0) {
  3299. if (errno == EINVAL)
  3300. SKIP(goto skip, "Kernel does not support SECCOMP_USER_NOTIF_FLAG_CONTINUE");
  3301. }
  3302. skip:
  3303. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3304. EXPECT_EQ(true, WIFEXITED(status));
  3305. EXPECT_EQ(0, WEXITSTATUS(status)) {
  3306. if (WEXITSTATUS(status) == 2) {
  3307. SKIP(return, "Kernel does not support kcmp() syscall");
  3308. return;
  3309. }
  3310. }
  3311. }
  3312. TEST(user_notification_filter_empty)
  3313. {
  3314. pid_t pid;
  3315. long ret;
  3316. int status;
  3317. struct pollfd pollfd;
  3318. struct __clone_args args = {
  3319. .flags = CLONE_FILES,
  3320. .exit_signal = SIGCHLD,
  3321. };
  3322. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3323. ASSERT_EQ(0, ret) {
  3324. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3325. }
  3326. pid = sys_clone3(&args, sizeof(args));
  3327. ASSERT_GE(pid, 0);
  3328. if (pid == 0) {
  3329. int listener;
  3330. listener = user_notif_syscall(__NR_mknodat, SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3331. if (listener < 0)
  3332. _exit(EXIT_FAILURE);
  3333. if (dup2(listener, 200) != 200)
  3334. _exit(EXIT_FAILURE);
  3335. close(listener);
  3336. _exit(EXIT_SUCCESS);
  3337. }
  3338. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3339. EXPECT_EQ(true, WIFEXITED(status));
  3340. EXPECT_EQ(0, WEXITSTATUS(status));
  3341. /*
  3342. * The seccomp filter has become unused so we should be notified once
  3343. * the kernel gets around to cleaning up task struct.
  3344. */
  3345. pollfd.fd = 200;
  3346. pollfd.events = POLLHUP;
  3347. EXPECT_GT(poll(&pollfd, 1, 2000), 0);
  3348. EXPECT_GT((pollfd.revents & POLLHUP) ?: 0, 0);
  3349. }
  3350. static void *do_thread(void *data)
  3351. {
  3352. return NULL;
  3353. }
  3354. TEST(user_notification_filter_empty_threaded)
  3355. {
  3356. pid_t pid;
  3357. long ret;
  3358. int status;
  3359. struct pollfd pollfd;
  3360. struct __clone_args args = {
  3361. .flags = CLONE_FILES,
  3362. .exit_signal = SIGCHLD,
  3363. };
  3364. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3365. ASSERT_EQ(0, ret) {
  3366. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3367. }
  3368. pid = sys_clone3(&args, sizeof(args));
  3369. ASSERT_GE(pid, 0);
  3370. if (pid == 0) {
  3371. pid_t pid1, pid2;
  3372. int listener, status;
  3373. pthread_t thread;
  3374. listener = user_notif_syscall(__NR_dup, SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3375. if (listener < 0)
  3376. _exit(EXIT_FAILURE);
  3377. if (dup2(listener, 200) != 200)
  3378. _exit(EXIT_FAILURE);
  3379. close(listener);
  3380. pid1 = fork();
  3381. if (pid1 < 0)
  3382. _exit(EXIT_FAILURE);
  3383. if (pid1 == 0)
  3384. _exit(EXIT_SUCCESS);
  3385. pid2 = fork();
  3386. if (pid2 < 0)
  3387. _exit(EXIT_FAILURE);
  3388. if (pid2 == 0)
  3389. _exit(EXIT_SUCCESS);
  3390. if (pthread_create(&thread, NULL, do_thread, NULL) ||
  3391. pthread_join(thread, NULL))
  3392. _exit(EXIT_FAILURE);
  3393. if (pthread_create(&thread, NULL, do_thread, NULL) ||
  3394. pthread_join(thread, NULL))
  3395. _exit(EXIT_FAILURE);
  3396. if (waitpid(pid1, &status, 0) != pid1 || !WIFEXITED(status) ||
  3397. WEXITSTATUS(status))
  3398. _exit(EXIT_FAILURE);
  3399. if (waitpid(pid2, &status, 0) != pid2 || !WIFEXITED(status) ||
  3400. WEXITSTATUS(status))
  3401. _exit(EXIT_FAILURE);
  3402. exit(EXIT_SUCCESS);
  3403. }
  3404. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3405. EXPECT_EQ(true, WIFEXITED(status));
  3406. EXPECT_EQ(0, WEXITSTATUS(status));
  3407. /*
  3408. * The seccomp filter has become unused so we should be notified once
  3409. * the kernel gets around to cleaning up task struct.
  3410. */
  3411. pollfd.fd = 200;
  3412. pollfd.events = POLLHUP;
  3413. EXPECT_GT(poll(&pollfd, 1, 2000), 0);
  3414. EXPECT_GT((pollfd.revents & POLLHUP) ?: 0, 0);
  3415. }
  3416. TEST(user_notification_addfd)
  3417. {
  3418. pid_t pid;
  3419. long ret;
  3420. int status, listener, memfd, fd, nextfd;
  3421. struct seccomp_notif_addfd addfd = {};
  3422. struct seccomp_notif_addfd_small small = {};
  3423. struct seccomp_notif_addfd_big big = {};
  3424. struct seccomp_notif req = {};
  3425. struct seccomp_notif_resp resp = {};
  3426. /* 100 ms */
  3427. struct timespec delay = { .tv_nsec = 100000000 };
  3428. /* There may be arbitrary already-open fds at test start. */
  3429. memfd = memfd_create("test", 0);
  3430. ASSERT_GE(memfd, 0);
  3431. nextfd = memfd + 1;
  3432. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3433. ASSERT_EQ(0, ret) {
  3434. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3435. }
  3436. /* fd: 4 */
  3437. /* Check that the basic notification machinery works */
  3438. listener = user_notif_syscall(__NR_getppid,
  3439. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3440. ASSERT_EQ(listener, nextfd++);
  3441. pid = fork();
  3442. ASSERT_GE(pid, 0);
  3443. if (pid == 0) {
  3444. /* fds will be added and this value is expected */
  3445. if (syscall(__NR_getppid) != USER_NOTIF_MAGIC)
  3446. exit(1);
  3447. /* Atomic addfd+send is received here. Check it is a valid fd */
  3448. if (fcntl(syscall(__NR_getppid), F_GETFD) == -1)
  3449. exit(1);
  3450. exit(syscall(__NR_getppid) != USER_NOTIF_MAGIC);
  3451. }
  3452. ASSERT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3453. addfd.srcfd = memfd;
  3454. addfd.newfd = 0;
  3455. addfd.id = req.id;
  3456. addfd.flags = 0x0;
  3457. /* Verify bad newfd_flags cannot be set */
  3458. addfd.newfd_flags = ~O_CLOEXEC;
  3459. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd), -1);
  3460. EXPECT_EQ(errno, EINVAL);
  3461. addfd.newfd_flags = O_CLOEXEC;
  3462. /* Verify bad flags cannot be set */
  3463. addfd.flags = 0xff;
  3464. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd), -1);
  3465. EXPECT_EQ(errno, EINVAL);
  3466. addfd.flags = 0;
  3467. /* Verify that remote_fd cannot be set without setting flags */
  3468. addfd.newfd = 1;
  3469. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd), -1);
  3470. EXPECT_EQ(errno, EINVAL);
  3471. addfd.newfd = 0;
  3472. /* Verify small size cannot be set */
  3473. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD_SMALL, &small), -1);
  3474. EXPECT_EQ(errno, EINVAL);
  3475. /* Verify we can't send bits filled in unknown buffer area */
  3476. memset(&big, 0xAA, sizeof(big));
  3477. big.addfd = addfd;
  3478. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD_BIG, &big), -1);
  3479. EXPECT_EQ(errno, E2BIG);
  3480. /* Verify we can set an arbitrary remote fd */
  3481. fd = ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd);
  3482. EXPECT_EQ(fd, nextfd++);
  3483. EXPECT_EQ(filecmp(getpid(), pid, memfd, fd), 0);
  3484. /* Verify we can set an arbitrary remote fd with large size */
  3485. memset(&big, 0x0, sizeof(big));
  3486. big.addfd = addfd;
  3487. fd = ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD_BIG, &big);
  3488. EXPECT_EQ(fd, nextfd++);
  3489. /* Verify we can set a specific remote fd */
  3490. addfd.newfd = 42;
  3491. addfd.flags = SECCOMP_ADDFD_FLAG_SETFD;
  3492. fd = ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd);
  3493. EXPECT_EQ(fd, 42);
  3494. EXPECT_EQ(filecmp(getpid(), pid, memfd, fd), 0);
  3495. /* Resume syscall */
  3496. resp.id = req.id;
  3497. resp.error = 0;
  3498. resp.val = USER_NOTIF_MAGIC;
  3499. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3500. /*
  3501. * This sets the ID of the ADD FD to the last request plus 1. The
  3502. * notification ID increments 1 per notification.
  3503. */
  3504. addfd.id = req.id + 1;
  3505. /* This spins until the underlying notification is generated */
  3506. while (ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd) != -1 &&
  3507. errno != -EINPROGRESS)
  3508. nanosleep(&delay, NULL);
  3509. memset(&req, 0, sizeof(req));
  3510. ASSERT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3511. ASSERT_EQ(addfd.id, req.id);
  3512. /* Verify we can do an atomic addfd and send */
  3513. addfd.newfd = 0;
  3514. addfd.flags = SECCOMP_ADDFD_FLAG_SEND;
  3515. fd = ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd);
  3516. /*
  3517. * Child has earlier "low" fds and now 42, so we expect the next
  3518. * lowest available fd to be assigned here.
  3519. */
  3520. EXPECT_EQ(fd, nextfd++);
  3521. ASSERT_EQ(filecmp(getpid(), pid, memfd, fd), 0);
  3522. /*
  3523. * This sets the ID of the ADD FD to the last request plus 1. The
  3524. * notification ID increments 1 per notification.
  3525. */
  3526. addfd.id = req.id + 1;
  3527. /* This spins until the underlying notification is generated */
  3528. while (ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd) != -1 &&
  3529. errno != -EINPROGRESS)
  3530. nanosleep(&delay, NULL);
  3531. memset(&req, 0, sizeof(req));
  3532. ASSERT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3533. ASSERT_EQ(addfd.id, req.id);
  3534. resp.id = req.id;
  3535. resp.error = 0;
  3536. resp.val = USER_NOTIF_MAGIC;
  3537. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3538. /* Wait for child to finish. */
  3539. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3540. EXPECT_EQ(true, WIFEXITED(status));
  3541. EXPECT_EQ(0, WEXITSTATUS(status));
  3542. close(memfd);
  3543. }
  3544. TEST(user_notification_addfd_rlimit)
  3545. {
  3546. pid_t pid;
  3547. long ret;
  3548. int status, listener, memfd;
  3549. struct seccomp_notif_addfd addfd = {};
  3550. struct seccomp_notif req = {};
  3551. struct seccomp_notif_resp resp = {};
  3552. const struct rlimit lim = {
  3553. .rlim_cur = 0,
  3554. .rlim_max = 0,
  3555. };
  3556. memfd = memfd_create("test", 0);
  3557. ASSERT_GE(memfd, 0);
  3558. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3559. ASSERT_EQ(0, ret) {
  3560. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3561. }
  3562. /* Check that the basic notification machinery works */
  3563. listener = user_notif_syscall(__NR_getppid,
  3564. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3565. ASSERT_GE(listener, 0);
  3566. pid = fork();
  3567. ASSERT_GE(pid, 0);
  3568. if (pid == 0)
  3569. exit(syscall(__NR_getppid) != USER_NOTIF_MAGIC);
  3570. ASSERT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3571. ASSERT_EQ(prlimit(pid, RLIMIT_NOFILE, &lim, NULL), 0);
  3572. addfd.srcfd = memfd;
  3573. addfd.newfd_flags = O_CLOEXEC;
  3574. addfd.newfd = 0;
  3575. addfd.id = req.id;
  3576. addfd.flags = 0;
  3577. /* Should probably spot check /proc/sys/fs/file-nr */
  3578. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd), -1);
  3579. EXPECT_EQ(errno, EMFILE);
  3580. addfd.flags = SECCOMP_ADDFD_FLAG_SEND;
  3581. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd), -1);
  3582. EXPECT_EQ(errno, EMFILE);
  3583. addfd.newfd = 100;
  3584. addfd.flags = SECCOMP_ADDFD_FLAG_SETFD;
  3585. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_ADDFD, &addfd), -1);
  3586. EXPECT_EQ(errno, EBADF);
  3587. resp.id = req.id;
  3588. resp.error = 0;
  3589. resp.val = USER_NOTIF_MAGIC;
  3590. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3591. /* Wait for child to finish. */
  3592. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3593. EXPECT_EQ(true, WIFEXITED(status));
  3594. EXPECT_EQ(0, WEXITSTATUS(status));
  3595. close(memfd);
  3596. }
  3597. /* Make sure PTRACE_O_SUSPEND_SECCOMP requires CAP_SYS_ADMIN. */
  3598. FIXTURE(O_SUSPEND_SECCOMP) {
  3599. pid_t pid;
  3600. };
  3601. FIXTURE_SETUP(O_SUSPEND_SECCOMP)
  3602. {
  3603. ERRNO_FILTER(block_read, E2BIG);
  3604. cap_value_t cap_list[] = { CAP_SYS_ADMIN };
  3605. cap_t caps;
  3606. self->pid = 0;
  3607. /* make sure we don't have CAP_SYS_ADMIN */
  3608. caps = cap_get_proc();
  3609. ASSERT_NE(NULL, caps);
  3610. ASSERT_EQ(0, cap_set_flag(caps, CAP_EFFECTIVE, 1, cap_list, CAP_CLEAR));
  3611. ASSERT_EQ(0, cap_set_proc(caps));
  3612. cap_free(caps);
  3613. ASSERT_EQ(0, prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0));
  3614. ASSERT_EQ(0, prctl(PR_SET_SECCOMP, SECCOMP_MODE_FILTER, &prog_block_read));
  3615. self->pid = fork();
  3616. ASSERT_GE(self->pid, 0);
  3617. if (self->pid == 0) {
  3618. while (1)
  3619. pause();
  3620. _exit(127);
  3621. }
  3622. }
  3623. FIXTURE_TEARDOWN(O_SUSPEND_SECCOMP)
  3624. {
  3625. if (self->pid)
  3626. kill(self->pid, SIGKILL);
  3627. }
  3628. TEST_F(O_SUSPEND_SECCOMP, setoptions)
  3629. {
  3630. int wstatus;
  3631. ASSERT_EQ(0, ptrace(PTRACE_ATTACH, self->pid, NULL, 0));
  3632. ASSERT_EQ(self->pid, wait(&wstatus));
  3633. ASSERT_EQ(-1, ptrace(PTRACE_SETOPTIONS, self->pid, NULL, PTRACE_O_SUSPEND_SECCOMP));
  3634. if (errno == EINVAL)
  3635. SKIP(return, "Kernel does not support PTRACE_O_SUSPEND_SECCOMP (missing CONFIG_CHECKPOINT_RESTORE?)");
  3636. ASSERT_EQ(EPERM, errno);
  3637. }
  3638. TEST_F(O_SUSPEND_SECCOMP, seize)
  3639. {
  3640. int ret;
  3641. ret = ptrace(PTRACE_SEIZE, self->pid, NULL, PTRACE_O_SUSPEND_SECCOMP);
  3642. ASSERT_EQ(-1, ret);
  3643. if (errno == EINVAL)
  3644. SKIP(return, "Kernel does not support PTRACE_O_SUSPEND_SECCOMP (missing CONFIG_CHECKPOINT_RESTORE?)");
  3645. ASSERT_EQ(EPERM, errno);
  3646. }
  3647. /*
  3648. * get_nth - Get the nth, space separated entry in a file.
  3649. *
  3650. * Returns the length of the read field.
  3651. * Throws error if field is zero-lengthed.
  3652. */
  3653. static ssize_t get_nth(struct __test_metadata *_metadata, const char *path,
  3654. const unsigned int position, char **entry)
  3655. {
  3656. char *line = NULL;
  3657. unsigned int i;
  3658. ssize_t nread;
  3659. size_t len = 0;
  3660. FILE *f;
  3661. f = fopen(path, "r");
  3662. ASSERT_NE(f, NULL) {
  3663. TH_LOG("Could not open %s: %s", path, strerror(errno));
  3664. }
  3665. for (i = 0; i < position; i++) {
  3666. nread = getdelim(&line, &len, ' ', f);
  3667. ASSERT_GE(nread, 0) {
  3668. TH_LOG("Failed to read %d entry in file %s", i, path);
  3669. }
  3670. }
  3671. fclose(f);
  3672. ASSERT_GT(nread, 0) {
  3673. TH_LOG("Entry in file %s had zero length", path);
  3674. }
  3675. *entry = line;
  3676. return nread - 1;
  3677. }
  3678. /* For a given PID, get the task state (D, R, etc...) */
  3679. static char get_proc_stat(struct __test_metadata *_metadata, pid_t pid)
  3680. {
  3681. char proc_path[100] = {0};
  3682. char status;
  3683. char *line;
  3684. snprintf(proc_path, sizeof(proc_path), "/proc/%d/stat", pid);
  3685. ASSERT_EQ(get_nth(_metadata, proc_path, 3, &line), 1);
  3686. status = *line;
  3687. free(line);
  3688. return status;
  3689. }
  3690. TEST(user_notification_fifo)
  3691. {
  3692. struct seccomp_notif_resp resp = {};
  3693. struct seccomp_notif req = {};
  3694. int i, status, listener;
  3695. pid_t pid, pids[3];
  3696. __u64 baseid;
  3697. long ret;
  3698. /* 100 ms */
  3699. struct timespec delay = { .tv_nsec = 100000000 };
  3700. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3701. ASSERT_EQ(0, ret) {
  3702. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3703. }
  3704. /* Setup a listener */
  3705. listener = user_notif_syscall(__NR_getppid,
  3706. SECCOMP_FILTER_FLAG_NEW_LISTENER);
  3707. ASSERT_GE(listener, 0);
  3708. pid = fork();
  3709. ASSERT_GE(pid, 0);
  3710. if (pid == 0) {
  3711. ret = syscall(__NR_getppid);
  3712. exit(ret != USER_NOTIF_MAGIC);
  3713. }
  3714. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3715. baseid = req.id + 1;
  3716. resp.id = req.id;
  3717. resp.error = 0;
  3718. resp.val = USER_NOTIF_MAGIC;
  3719. /* check that we make sure flags == 0 */
  3720. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3721. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3722. EXPECT_EQ(true, WIFEXITED(status));
  3723. EXPECT_EQ(0, WEXITSTATUS(status));
  3724. /* Start children, and generate notifications */
  3725. for (i = 0; i < ARRAY_SIZE(pids); i++) {
  3726. pid = fork();
  3727. if (pid == 0) {
  3728. ret = syscall(__NR_getppid);
  3729. exit(ret != USER_NOTIF_MAGIC);
  3730. }
  3731. pids[i] = pid;
  3732. }
  3733. /* This spins until all of the children are sleeping */
  3734. restart_wait:
  3735. for (i = 0; i < ARRAY_SIZE(pids); i++) {
  3736. if (get_proc_stat(_metadata, pids[i]) != 'S') {
  3737. nanosleep(&delay, NULL);
  3738. goto restart_wait;
  3739. }
  3740. }
  3741. /* Read the notifications in order (and respond) */
  3742. for (i = 0; i < ARRAY_SIZE(pids); i++) {
  3743. memset(&req, 0, sizeof(req));
  3744. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3745. EXPECT_EQ(req.id, baseid + i);
  3746. resp.id = req.id;
  3747. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3748. }
  3749. /* Make sure notifications were received */
  3750. for (i = 0; i < ARRAY_SIZE(pids); i++) {
  3751. EXPECT_EQ(waitpid(pids[i], &status, 0), pids[i]);
  3752. EXPECT_EQ(true, WIFEXITED(status));
  3753. EXPECT_EQ(0, WEXITSTATUS(status));
  3754. }
  3755. }
  3756. /* get_proc_syscall - Get the syscall in progress for a given pid
  3757. *
  3758. * Returns the current syscall number for a given process
  3759. * Returns -1 if not in syscall (running or blocked)
  3760. */
  3761. static long get_proc_syscall(struct __test_metadata *_metadata, int pid)
  3762. {
  3763. char proc_path[100] = {0};
  3764. long ret = -1;
  3765. ssize_t nread;
  3766. char *line;
  3767. snprintf(proc_path, sizeof(proc_path), "/proc/%d/syscall", pid);
  3768. nread = get_nth(_metadata, proc_path, 1, &line);
  3769. ASSERT_GT(nread, 0);
  3770. if (!strncmp("running", line, MIN(7, nread)))
  3771. ret = strtol(line, NULL, 16);
  3772. free(line);
  3773. return ret;
  3774. }
  3775. /* Ensure non-fatal signals prior to receive are unmodified */
  3776. TEST(user_notification_wait_killable_pre_notification)
  3777. {
  3778. struct sigaction new_action = {
  3779. .sa_handler = signal_handler,
  3780. };
  3781. int listener, status, sk_pair[2];
  3782. pid_t pid;
  3783. long ret;
  3784. char c;
  3785. /* 100 ms */
  3786. struct timespec delay = { .tv_nsec = 100000000 };
  3787. ASSERT_EQ(sigemptyset(&new_action.sa_mask), 0);
  3788. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3789. ASSERT_EQ(0, ret)
  3790. {
  3791. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3792. }
  3793. ASSERT_EQ(socketpair(PF_LOCAL, SOCK_SEQPACKET, 0, sk_pair), 0);
  3794. listener = user_notif_syscall(
  3795. __NR_getppid, SECCOMP_FILTER_FLAG_NEW_LISTENER |
  3796. SECCOMP_FILTER_FLAG_WAIT_KILLABLE_RECV);
  3797. ASSERT_GE(listener, 0);
  3798. /*
  3799. * Check that we can kill the process with SIGUSR1 prior to receiving
  3800. * the notification. SIGUSR1 is wired up to a custom signal handler,
  3801. * and make sure it gets called.
  3802. */
  3803. pid = fork();
  3804. ASSERT_GE(pid, 0);
  3805. if (pid == 0) {
  3806. close(sk_pair[0]);
  3807. handled = sk_pair[1];
  3808. /* Setup the non-fatal sigaction without SA_RESTART */
  3809. if (sigaction(SIGUSR1, &new_action, NULL)) {
  3810. perror("sigaction");
  3811. exit(1);
  3812. }
  3813. ret = syscall(__NR_getppid);
  3814. /* Make sure we got a return from a signal interruption */
  3815. exit(ret != -1 || errno != EINTR);
  3816. }
  3817. /*
  3818. * Make sure we've gotten to the seccomp user notification wait
  3819. * from getppid prior to sending any signals
  3820. */
  3821. while (get_proc_syscall(_metadata, pid) != __NR_getppid &&
  3822. get_proc_stat(_metadata, pid) != 'S')
  3823. nanosleep(&delay, NULL);
  3824. /* Send non-fatal kill signal */
  3825. EXPECT_EQ(kill(pid, SIGUSR1), 0);
  3826. /* wait for process to exit (exit checks for EINTR) */
  3827. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3828. EXPECT_EQ(true, WIFEXITED(status));
  3829. EXPECT_EQ(0, WEXITSTATUS(status));
  3830. EXPECT_EQ(read(sk_pair[0], &c, 1), 1);
  3831. }
  3832. /* Ensure non-fatal signals after receive are blocked */
  3833. TEST(user_notification_wait_killable)
  3834. {
  3835. struct sigaction new_action = {
  3836. .sa_handler = signal_handler,
  3837. };
  3838. struct seccomp_notif_resp resp = {};
  3839. struct seccomp_notif req = {};
  3840. int listener, status, sk_pair[2];
  3841. pid_t pid;
  3842. long ret;
  3843. char c;
  3844. /* 100 ms */
  3845. struct timespec delay = { .tv_nsec = 100000000 };
  3846. ASSERT_EQ(sigemptyset(&new_action.sa_mask), 0);
  3847. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3848. ASSERT_EQ(0, ret)
  3849. {
  3850. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3851. }
  3852. ASSERT_EQ(socketpair(PF_LOCAL, SOCK_SEQPACKET, 0, sk_pair), 0);
  3853. listener = user_notif_syscall(
  3854. __NR_getppid, SECCOMP_FILTER_FLAG_NEW_LISTENER |
  3855. SECCOMP_FILTER_FLAG_WAIT_KILLABLE_RECV);
  3856. ASSERT_GE(listener, 0);
  3857. pid = fork();
  3858. ASSERT_GE(pid, 0);
  3859. if (pid == 0) {
  3860. close(sk_pair[0]);
  3861. handled = sk_pair[1];
  3862. /* Setup the sigaction without SA_RESTART */
  3863. if (sigaction(SIGUSR1, &new_action, NULL)) {
  3864. perror("sigaction");
  3865. exit(1);
  3866. }
  3867. /* Make sure that the syscall is completed (no EINTR) */
  3868. ret = syscall(__NR_getppid);
  3869. exit(ret != USER_NOTIF_MAGIC);
  3870. }
  3871. /*
  3872. * Get the notification, to make move the notifying process into a
  3873. * non-preemptible (TASK_KILLABLE) state.
  3874. */
  3875. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3876. /* Send non-fatal kill signal */
  3877. EXPECT_EQ(kill(pid, SIGUSR1), 0);
  3878. /*
  3879. * Make sure the task enters moves to TASK_KILLABLE by waiting for
  3880. * D (Disk Sleep) state after receiving non-fatal signal.
  3881. */
  3882. while (get_proc_stat(_metadata, pid) != 'D')
  3883. nanosleep(&delay, NULL);
  3884. resp.id = req.id;
  3885. resp.val = USER_NOTIF_MAGIC;
  3886. /* Make sure the notification is found and able to be replied to */
  3887. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_SEND, &resp), 0);
  3888. /*
  3889. * Make sure that the signal handler does get called once we're back in
  3890. * userspace.
  3891. */
  3892. EXPECT_EQ(read(sk_pair[0], &c, 1), 1);
  3893. /* wait for process to exit (exit checks for USER_NOTIF_MAGIC) */
  3894. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3895. EXPECT_EQ(true, WIFEXITED(status));
  3896. EXPECT_EQ(0, WEXITSTATUS(status));
  3897. }
  3898. /* Ensure fatal signals after receive are not blocked */
  3899. TEST(user_notification_wait_killable_fatal)
  3900. {
  3901. struct seccomp_notif req = {};
  3902. int listener, status;
  3903. pid_t pid;
  3904. long ret;
  3905. /* 100 ms */
  3906. struct timespec delay = { .tv_nsec = 100000000 };
  3907. ret = prctl(PR_SET_NO_NEW_PRIVS, 1, 0, 0, 0);
  3908. ASSERT_EQ(0, ret)
  3909. {
  3910. TH_LOG("Kernel does not support PR_SET_NO_NEW_PRIVS!");
  3911. }
  3912. listener = user_notif_syscall(
  3913. __NR_getppid, SECCOMP_FILTER_FLAG_NEW_LISTENER |
  3914. SECCOMP_FILTER_FLAG_WAIT_KILLABLE_RECV);
  3915. ASSERT_GE(listener, 0);
  3916. pid = fork();
  3917. ASSERT_GE(pid, 0);
  3918. if (pid == 0) {
  3919. /* This should never complete as it should get a SIGTERM */
  3920. syscall(__NR_getppid);
  3921. exit(1);
  3922. }
  3923. while (get_proc_stat(_metadata, pid) != 'S')
  3924. nanosleep(&delay, NULL);
  3925. /*
  3926. * Get the notification, to make move the notifying process into a
  3927. * non-preemptible (TASK_KILLABLE) state.
  3928. */
  3929. EXPECT_EQ(ioctl(listener, SECCOMP_IOCTL_NOTIF_RECV, &req), 0);
  3930. /* Kill the process with a fatal signal */
  3931. EXPECT_EQ(kill(pid, SIGTERM), 0);
  3932. /*
  3933. * Wait for the process to exit, and make sure the process terminated
  3934. * due to the SIGTERM signal.
  3935. */
  3936. EXPECT_EQ(waitpid(pid, &status, 0), pid);
  3937. EXPECT_EQ(true, WIFSIGNALED(status));
  3938. EXPECT_EQ(SIGTERM, WTERMSIG(status));
  3939. }
  3940. /*
  3941. * TODO:
  3942. * - expand NNP testing
  3943. * - better arch-specific TRACE and TRAP handlers.
  3944. * - endianness checking when appropriate
  3945. * - 64-bit arg prodding
  3946. * - arch value testing (x86 modes especially)
  3947. * - verify that FILTER_FLAG_LOG filters generate log messages
  3948. * - verify that RET_LOG generates log messages
  3949. */
  3950. TEST_HARNESS_MAIN