plugin_kvm.c 14 KB

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  1. /*
  2. * Copyright (C) 2009 Red Hat Inc, Steven Rostedt <srostedt@redhat.com>
  3. *
  4. * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
  5. * This program is free software; you can redistribute it and/or
  6. * modify it under the terms of the GNU Lesser General Public
  7. * License as published by the Free Software Foundation;
  8. * version 2.1 of the License (not later!)
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU Lesser General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU Lesser General Public
  16. * License along with this program; if not, see <http://www.gnu.org/licenses>
  17. *
  18. * ~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
  19. */
  20. #include <stdio.h>
  21. #include <stdlib.h>
  22. #include <string.h>
  23. #include <stdint.h>
  24. #include "event-parse.h"
  25. #include "trace-seq.h"
  26. #ifdef HAVE_UDIS86
  27. #include <udis86.h>
  28. static ud_t ud;
  29. static void init_disassembler(void)
  30. {
  31. ud_init(&ud);
  32. ud_set_syntax(&ud, UD_SYN_ATT);
  33. }
  34. static const char *disassemble(unsigned char *insn, int len, uint64_t rip,
  35. int cr0_pe, int eflags_vm,
  36. int cs_d, int cs_l)
  37. {
  38. int mode;
  39. if (!cr0_pe)
  40. mode = 16;
  41. else if (eflags_vm)
  42. mode = 16;
  43. else if (cs_l)
  44. mode = 64;
  45. else if (cs_d)
  46. mode = 32;
  47. else
  48. mode = 16;
  49. ud_set_pc(&ud, rip);
  50. ud_set_mode(&ud, mode);
  51. ud_set_input_buffer(&ud, insn, len);
  52. ud_disassemble(&ud);
  53. return ud_insn_asm(&ud);
  54. }
  55. #else
  56. static void init_disassembler(void)
  57. {
  58. }
  59. static const char *disassemble(unsigned char *insn, int len, uint64_t rip,
  60. int cr0_pe, int eflags_vm,
  61. int cs_d, int cs_l)
  62. {
  63. static char out[15*3+1];
  64. int i;
  65. for (i = 0; i < len; ++i)
  66. sprintf(out + i * 3, "%02x ", insn[i]);
  67. out[len*3-1] = '\0';
  68. return out;
  69. }
  70. #endif
  71. #define VMX_EXIT_REASONS \
  72. _ER(EXCEPTION_NMI, 0) \
  73. _ER(EXTERNAL_INTERRUPT, 1) \
  74. _ER(TRIPLE_FAULT, 2) \
  75. _ER(PENDING_INTERRUPT, 7) \
  76. _ER(NMI_WINDOW, 8) \
  77. _ER(TASK_SWITCH, 9) \
  78. _ER(CPUID, 10) \
  79. _ER(HLT, 12) \
  80. _ER(INVD, 13) \
  81. _ER(INVLPG, 14) \
  82. _ER(RDPMC, 15) \
  83. _ER(RDTSC, 16) \
  84. _ER(VMCALL, 18) \
  85. _ER(VMCLEAR, 19) \
  86. _ER(VMLAUNCH, 20) \
  87. _ER(VMPTRLD, 21) \
  88. _ER(VMPTRST, 22) \
  89. _ER(VMREAD, 23) \
  90. _ER(VMRESUME, 24) \
  91. _ER(VMWRITE, 25) \
  92. _ER(VMOFF, 26) \
  93. _ER(VMON, 27) \
  94. _ER(CR_ACCESS, 28) \
  95. _ER(DR_ACCESS, 29) \
  96. _ER(IO_INSTRUCTION, 30) \
  97. _ER(MSR_READ, 31) \
  98. _ER(MSR_WRITE, 32) \
  99. _ER(MWAIT_INSTRUCTION, 36) \
  100. _ER(MONITOR_INSTRUCTION, 39) \
  101. _ER(PAUSE_INSTRUCTION, 40) \
  102. _ER(MCE_DURING_VMENTRY, 41) \
  103. _ER(TPR_BELOW_THRESHOLD, 43) \
  104. _ER(APIC_ACCESS, 44) \
  105. _ER(EOI_INDUCED, 45) \
  106. _ER(EPT_VIOLATION, 48) \
  107. _ER(EPT_MISCONFIG, 49) \
  108. _ER(INVEPT, 50) \
  109. _ER(PREEMPTION_TIMER, 52) \
  110. _ER(WBINVD, 54) \
  111. _ER(XSETBV, 55) \
  112. _ER(APIC_WRITE, 56) \
  113. _ER(INVPCID, 58) \
  114. _ER(PML_FULL, 62) \
  115. _ER(XSAVES, 63) \
  116. _ER(XRSTORS, 64)
  117. #define SVM_EXIT_REASONS \
  118. _ER(EXIT_READ_CR0, 0x000) \
  119. _ER(EXIT_READ_CR3, 0x003) \
  120. _ER(EXIT_READ_CR4, 0x004) \
  121. _ER(EXIT_READ_CR8, 0x008) \
  122. _ER(EXIT_WRITE_CR0, 0x010) \
  123. _ER(EXIT_WRITE_CR3, 0x013) \
  124. _ER(EXIT_WRITE_CR4, 0x014) \
  125. _ER(EXIT_WRITE_CR8, 0x018) \
  126. _ER(EXIT_READ_DR0, 0x020) \
  127. _ER(EXIT_READ_DR1, 0x021) \
  128. _ER(EXIT_READ_DR2, 0x022) \
  129. _ER(EXIT_READ_DR3, 0x023) \
  130. _ER(EXIT_READ_DR4, 0x024) \
  131. _ER(EXIT_READ_DR5, 0x025) \
  132. _ER(EXIT_READ_DR6, 0x026) \
  133. _ER(EXIT_READ_DR7, 0x027) \
  134. _ER(EXIT_WRITE_DR0, 0x030) \
  135. _ER(EXIT_WRITE_DR1, 0x031) \
  136. _ER(EXIT_WRITE_DR2, 0x032) \
  137. _ER(EXIT_WRITE_DR3, 0x033) \
  138. _ER(EXIT_WRITE_DR4, 0x034) \
  139. _ER(EXIT_WRITE_DR5, 0x035) \
  140. _ER(EXIT_WRITE_DR6, 0x036) \
  141. _ER(EXIT_WRITE_DR7, 0x037) \
  142. _ER(EXIT_EXCP_BASE, 0x040) \
  143. _ER(EXIT_INTR, 0x060) \
  144. _ER(EXIT_NMI, 0x061) \
  145. _ER(EXIT_SMI, 0x062) \
  146. _ER(EXIT_INIT, 0x063) \
  147. _ER(EXIT_VINTR, 0x064) \
  148. _ER(EXIT_CR0_SEL_WRITE, 0x065) \
  149. _ER(EXIT_IDTR_READ, 0x066) \
  150. _ER(EXIT_GDTR_READ, 0x067) \
  151. _ER(EXIT_LDTR_READ, 0x068) \
  152. _ER(EXIT_TR_READ, 0x069) \
  153. _ER(EXIT_IDTR_WRITE, 0x06a) \
  154. _ER(EXIT_GDTR_WRITE, 0x06b) \
  155. _ER(EXIT_LDTR_WRITE, 0x06c) \
  156. _ER(EXIT_TR_WRITE, 0x06d) \
  157. _ER(EXIT_RDTSC, 0x06e) \
  158. _ER(EXIT_RDPMC, 0x06f) \
  159. _ER(EXIT_PUSHF, 0x070) \
  160. _ER(EXIT_POPF, 0x071) \
  161. _ER(EXIT_CPUID, 0x072) \
  162. _ER(EXIT_RSM, 0x073) \
  163. _ER(EXIT_IRET, 0x074) \
  164. _ER(EXIT_SWINT, 0x075) \
  165. _ER(EXIT_INVD, 0x076) \
  166. _ER(EXIT_PAUSE, 0x077) \
  167. _ER(EXIT_HLT, 0x078) \
  168. _ER(EXIT_INVLPG, 0x079) \
  169. _ER(EXIT_INVLPGA, 0x07a) \
  170. _ER(EXIT_IOIO, 0x07b) \
  171. _ER(EXIT_MSR, 0x07c) \
  172. _ER(EXIT_TASK_SWITCH, 0x07d) \
  173. _ER(EXIT_FERR_FREEZE, 0x07e) \
  174. _ER(EXIT_SHUTDOWN, 0x07f) \
  175. _ER(EXIT_VMRUN, 0x080) \
  176. _ER(EXIT_VMMCALL, 0x081) \
  177. _ER(EXIT_VMLOAD, 0x082) \
  178. _ER(EXIT_VMSAVE, 0x083) \
  179. _ER(EXIT_STGI, 0x084) \
  180. _ER(EXIT_CLGI, 0x085) \
  181. _ER(EXIT_SKINIT, 0x086) \
  182. _ER(EXIT_RDTSCP, 0x087) \
  183. _ER(EXIT_ICEBP, 0x088) \
  184. _ER(EXIT_WBINVD, 0x089) \
  185. _ER(EXIT_MONITOR, 0x08a) \
  186. _ER(EXIT_MWAIT, 0x08b) \
  187. _ER(EXIT_MWAIT_COND, 0x08c) \
  188. _ER(EXIT_NPF, 0x400) \
  189. _ER(EXIT_ERR, -1)
  190. #define _ER(reason, val) { #reason, val },
  191. struct str_values {
  192. const char *str;
  193. int val;
  194. };
  195. static struct str_values vmx_exit_reasons[] = {
  196. VMX_EXIT_REASONS
  197. { NULL, -1}
  198. };
  199. static struct str_values svm_exit_reasons[] = {
  200. SVM_EXIT_REASONS
  201. { NULL, -1}
  202. };
  203. static struct isa_exit_reasons {
  204. unsigned isa;
  205. struct str_values *strings;
  206. } isa_exit_reasons[] = {
  207. { .isa = 1, .strings = vmx_exit_reasons },
  208. { .isa = 2, .strings = svm_exit_reasons },
  209. { }
  210. };
  211. static const char *find_exit_reason(unsigned isa, int val)
  212. {
  213. struct str_values *strings = NULL;
  214. int i;
  215. for (i = 0; isa_exit_reasons[i].strings; ++i)
  216. if (isa_exit_reasons[i].isa == isa) {
  217. strings = isa_exit_reasons[i].strings;
  218. break;
  219. }
  220. if (!strings)
  221. return "UNKNOWN-ISA";
  222. for (i = 0; strings[i].val >= 0; i++)
  223. if (strings[i].val == val)
  224. break;
  225. return strings[i].str;
  226. }
  227. static int print_exit_reason(struct trace_seq *s, struct tep_record *record,
  228. struct tep_event_format *event, const char *field)
  229. {
  230. unsigned long long isa;
  231. unsigned long long val;
  232. const char *reason;
  233. if (tep_get_field_val(s, event, field, record, &val, 1) < 0)
  234. return -1;
  235. if (tep_get_field_val(s, event, "isa", record, &isa, 0) < 0)
  236. isa = 1;
  237. reason = find_exit_reason(isa, val);
  238. if (reason)
  239. trace_seq_printf(s, "reason %s", reason);
  240. else
  241. trace_seq_printf(s, "reason UNKNOWN (%llu)", val);
  242. return 0;
  243. }
  244. static int kvm_exit_handler(struct trace_seq *s, struct tep_record *record,
  245. struct tep_event_format *event, void *context)
  246. {
  247. unsigned long long info1 = 0, info2 = 0;
  248. if (print_exit_reason(s, record, event, "exit_reason") < 0)
  249. return -1;
  250. tep_print_num_field(s, " rip 0x%lx", event, "guest_rip", record, 1);
  251. if (tep_get_field_val(s, event, "info1", record, &info1, 0) >= 0
  252. && tep_get_field_val(s, event, "info2", record, &info2, 0) >= 0)
  253. trace_seq_printf(s, " info %llx %llx", info1, info2);
  254. return 0;
  255. }
  256. #define KVM_EMUL_INSN_F_CR0_PE (1 << 0)
  257. #define KVM_EMUL_INSN_F_EFL_VM (1 << 1)
  258. #define KVM_EMUL_INSN_F_CS_D (1 << 2)
  259. #define KVM_EMUL_INSN_F_CS_L (1 << 3)
  260. static int kvm_emulate_insn_handler(struct trace_seq *s,
  261. struct tep_record *record,
  262. struct tep_event_format *event, void *context)
  263. {
  264. unsigned long long rip, csbase, len, flags, failed;
  265. int llen;
  266. uint8_t *insn;
  267. const char *disasm;
  268. if (tep_get_field_val(s, event, "rip", record, &rip, 1) < 0)
  269. return -1;
  270. if (tep_get_field_val(s, event, "csbase", record, &csbase, 1) < 0)
  271. return -1;
  272. if (tep_get_field_val(s, event, "len", record, &len, 1) < 0)
  273. return -1;
  274. if (tep_get_field_val(s, event, "flags", record, &flags, 1) < 0)
  275. return -1;
  276. if (tep_get_field_val(s, event, "failed", record, &failed, 1) < 0)
  277. return -1;
  278. insn = tep_get_field_raw(s, event, "insn", record, &llen, 1);
  279. if (!insn)
  280. return -1;
  281. disasm = disassemble(insn, len, rip,
  282. flags & KVM_EMUL_INSN_F_CR0_PE,
  283. flags & KVM_EMUL_INSN_F_EFL_VM,
  284. flags & KVM_EMUL_INSN_F_CS_D,
  285. flags & KVM_EMUL_INSN_F_CS_L);
  286. trace_seq_printf(s, "%llx:%llx: %s%s", csbase, rip, disasm,
  287. failed ? " FAIL" : "");
  288. return 0;
  289. }
  290. static int kvm_nested_vmexit_inject_handler(struct trace_seq *s, struct tep_record *record,
  291. struct tep_event_format *event, void *context)
  292. {
  293. if (print_exit_reason(s, record, event, "exit_code") < 0)
  294. return -1;
  295. tep_print_num_field(s, " info1 %llx", event, "exit_info1", record, 1);
  296. tep_print_num_field(s, " info2 %llx", event, "exit_info2", record, 1);
  297. tep_print_num_field(s, " int_info %llx", event, "exit_int_info", record, 1);
  298. tep_print_num_field(s, " int_info_err %llx", event, "exit_int_info_err", record, 1);
  299. return 0;
  300. }
  301. static int kvm_nested_vmexit_handler(struct trace_seq *s, struct tep_record *record,
  302. struct tep_event_format *event, void *context)
  303. {
  304. tep_print_num_field(s, "rip %llx ", event, "rip", record, 1);
  305. return kvm_nested_vmexit_inject_handler(s, record, event, context);
  306. }
  307. union kvm_mmu_page_role {
  308. unsigned word;
  309. struct {
  310. unsigned level:4;
  311. unsigned cr4_pae:1;
  312. unsigned quadrant:2;
  313. unsigned direct:1;
  314. unsigned access:3;
  315. unsigned invalid:1;
  316. unsigned nxe:1;
  317. unsigned cr0_wp:1;
  318. unsigned smep_and_not_wp:1;
  319. unsigned smap_and_not_wp:1;
  320. unsigned pad_for_nice_hex_output:8;
  321. unsigned smm:8;
  322. };
  323. };
  324. static int kvm_mmu_print_role(struct trace_seq *s, struct tep_record *record,
  325. struct tep_event_format *event, void *context)
  326. {
  327. unsigned long long val;
  328. static const char *access_str[] = {
  329. "---", "--x", "w--", "w-x", "-u-", "-ux", "wu-", "wux"
  330. };
  331. union kvm_mmu_page_role role;
  332. if (tep_get_field_val(s, event, "role", record, &val, 1) < 0)
  333. return -1;
  334. role.word = (int)val;
  335. /*
  336. * We can only use the structure if file is of the same
  337. * endianess.
  338. */
  339. if (tep_is_file_bigendian(event->pevent) ==
  340. tep_is_host_bigendian(event->pevent)) {
  341. trace_seq_printf(s, "%u q%u%s %s%s %spae %snxe %swp%s%s%s",
  342. role.level,
  343. role.quadrant,
  344. role.direct ? " direct" : "",
  345. access_str[role.access],
  346. role.invalid ? " invalid" : "",
  347. role.cr4_pae ? "" : "!",
  348. role.nxe ? "" : "!",
  349. role.cr0_wp ? "" : "!",
  350. role.smep_and_not_wp ? " smep" : "",
  351. role.smap_and_not_wp ? " smap" : "",
  352. role.smm ? " smm" : "");
  353. } else
  354. trace_seq_printf(s, "WORD: %08x", role.word);
  355. tep_print_num_field(s, " root %u ", event,
  356. "root_count", record, 1);
  357. if (tep_get_field_val(s, event, "unsync", record, &val, 1) < 0)
  358. return -1;
  359. trace_seq_printf(s, "%s%c", val ? "unsync" : "sync", 0);
  360. return 0;
  361. }
  362. static int kvm_mmu_get_page_handler(struct trace_seq *s,
  363. struct tep_record *record,
  364. struct tep_event_format *event, void *context)
  365. {
  366. unsigned long long val;
  367. if (tep_get_field_val(s, event, "created", record, &val, 1) < 0)
  368. return -1;
  369. trace_seq_printf(s, "%s ", val ? "new" : "existing");
  370. if (tep_get_field_val(s, event, "gfn", record, &val, 1) < 0)
  371. return -1;
  372. trace_seq_printf(s, "sp gfn %llx ", val);
  373. return kvm_mmu_print_role(s, record, event, context);
  374. }
  375. #define PT_WRITABLE_SHIFT 1
  376. #define PT_WRITABLE_MASK (1ULL << PT_WRITABLE_SHIFT)
  377. static unsigned long long
  378. process_is_writable_pte(struct trace_seq *s, unsigned long long *args)
  379. {
  380. unsigned long pte = args[0];
  381. return pte & PT_WRITABLE_MASK;
  382. }
  383. int TEP_PLUGIN_LOADER(struct tep_handle *pevent)
  384. {
  385. init_disassembler();
  386. tep_register_event_handler(pevent, -1, "kvm", "kvm_exit",
  387. kvm_exit_handler, NULL);
  388. tep_register_event_handler(pevent, -1, "kvm", "kvm_emulate_insn",
  389. kvm_emulate_insn_handler, NULL);
  390. tep_register_event_handler(pevent, -1, "kvm", "kvm_nested_vmexit",
  391. kvm_nested_vmexit_handler, NULL);
  392. tep_register_event_handler(pevent, -1, "kvm", "kvm_nested_vmexit_inject",
  393. kvm_nested_vmexit_inject_handler, NULL);
  394. tep_register_event_handler(pevent, -1, "kvmmmu", "kvm_mmu_get_page",
  395. kvm_mmu_get_page_handler, NULL);
  396. tep_register_event_handler(pevent, -1, "kvmmmu", "kvm_mmu_sync_page",
  397. kvm_mmu_print_role, NULL);
  398. tep_register_event_handler(pevent, -1,
  399. "kvmmmu", "kvm_mmu_unsync_page",
  400. kvm_mmu_print_role, NULL);
  401. tep_register_event_handler(pevent, -1, "kvmmmu", "kvm_mmu_zap_page",
  402. kvm_mmu_print_role, NULL);
  403. tep_register_event_handler(pevent, -1, "kvmmmu",
  404. "kvm_mmu_prepare_zap_page", kvm_mmu_print_role,
  405. NULL);
  406. tep_register_print_function(pevent,
  407. process_is_writable_pte,
  408. TEP_FUNC_ARG_INT,
  409. "is_writable_pte",
  410. TEP_FUNC_ARG_LONG,
  411. TEP_FUNC_ARG_VOID);
  412. return 0;
  413. }
  414. void TEP_PLUGIN_UNLOADER(struct tep_handle *pevent)
  415. {
  416. tep_unregister_event_handler(pevent, -1, "kvm", "kvm_exit",
  417. kvm_exit_handler, NULL);
  418. tep_unregister_event_handler(pevent, -1, "kvm", "kvm_emulate_insn",
  419. kvm_emulate_insn_handler, NULL);
  420. tep_unregister_event_handler(pevent, -1, "kvm", "kvm_nested_vmexit",
  421. kvm_nested_vmexit_handler, NULL);
  422. tep_unregister_event_handler(pevent, -1, "kvm", "kvm_nested_vmexit_inject",
  423. kvm_nested_vmexit_inject_handler, NULL);
  424. tep_unregister_event_handler(pevent, -1, "kvmmmu", "kvm_mmu_get_page",
  425. kvm_mmu_get_page_handler, NULL);
  426. tep_unregister_event_handler(pevent, -1, "kvmmmu", "kvm_mmu_sync_page",
  427. kvm_mmu_print_role, NULL);
  428. tep_unregister_event_handler(pevent, -1,
  429. "kvmmmu", "kvm_mmu_unsync_page",
  430. kvm_mmu_print_role, NULL);
  431. tep_unregister_event_handler(pevent, -1, "kvmmmu", "kvm_mmu_zap_page",
  432. kvm_mmu_print_role, NULL);
  433. tep_unregister_event_handler(pevent, -1, "kvmmmu",
  434. "kvm_mmu_prepare_zap_page", kvm_mmu_print_role,
  435. NULL);
  436. tep_unregister_print_function(pevent, process_is_writable_pte,
  437. "is_writable_pte");
  438. }