A dynamic tracer for Linux

ply.c 12KB

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  1. #include <assert.h>
  2. #include <errno.h>
  3. #include <stdio.h>
  4. #include <stdlib.h>
  5. #include <string.h>
  6. #include "func.h"
  7. #include "node.h"
  8. #include "ply.h"
  9. #include "sym.h"
  10. #include "type.h"
  11. struct providers {
  12. struct provider **ps;
  13. size_t len;
  14. } providers;
  15. #define providers_foreach(_ps, _p) \
  16. for((_p) = (_ps)->ps; (_p) < &(_ps)->ps[(_ps)->len]; (_p)++)
  17. struct provider *provider_get(const char *name)
  18. {
  19. struct provider **p;
  20. providers_foreach(&providers, p) {
  21. if (strstr((*p)->name, name) == (*p)->name)
  22. return *p;
  23. }
  24. return NULL;
  25. }
  26. void provider_register(struct provider *p)
  27. {
  28. assert(p);
  29. assert(p->probe);
  30. assert(p->sym_alloc);
  31. providers.ps = realloc(providers.ps,
  32. ++providers.len * sizeof(*providers.ps));
  33. providers.ps[providers.len - 1] = p;
  34. }
  35. struct pass {
  36. int (*run)(struct pass *, struct ctx *);
  37. nwalk_fn pre;
  38. nwalk_fn post;
  39. };
  40. struct symtab syms = { .syms = NULL, .len = 0 };
  41. /* symtab_t locals = { .sym = NULL, .len = 0 }; */
  42. struct ctx *ctx_get(void)
  43. {
  44. struct ctx *ctx;
  45. struct prog *prog;
  46. ctx = calloc(1, sizeof(*ctx));
  47. ctx->globals = calloc(1, sizeof(*ctx->globals));
  48. ctx->progs = calloc(3, sizeof(*ctx->progs));
  49. /* PROBE0 */
  50. prog = calloc(1, sizeof(*prog));
  51. prog->locals = calloc(1, sizeof(*prog->locals));
  52. prog->globals = ctx->globals;
  53. prog->probe = "k:SyS_read";
  54. /* {
  55. * us = pid();
  56. * t[0, pid()] = time();
  57. * reads[pid()] = quantize(arg2);
  58. * }
  59. */
  60. prog->ast =
  61. node_expr(":block",
  62. node_expr("=",
  63. node_ident("us"),
  64. node_expr("pid", NULL),
  65. NULL),
  66. node_expr("=",
  67. node_expr("{}",
  68. node_ident("t"),
  69. node_num("0"),
  70. node_expr("pid", NULL),
  71. NULL),
  72. node_expr("time", NULL),
  73. NULL),
  74. node_expr("=",
  75. node_expr("{}",
  76. node_ident("reads"),
  77. node_expr("pid", NULL),
  78. NULL),
  79. node_expr("quantize", node_ident("arg2"), NULL),
  80. NULL),
  81. NULL);
  82. prog->provider = provider_get("k");
  83. prog->provider->probe(prog);
  84. /* prog->ir = ir_new(); */
  85. ctx->progs[0] = prog;
  86. /* PROBE1 */
  87. prog = calloc(1, sizeof(*prog));
  88. prog->locals = calloc(1, sizeof(*prog->locals));
  89. prog->globals = ctx->globals;
  90. /* TODO: k -> kret */
  91. prog->probe = "k:SyS_read2";
  92. /* { times[pid()] = quantize(time() - t[0, pid()]) } */
  93. prog->ast =
  94. node_expr("=",
  95. node_expr("{}",
  96. node_ident("times"),
  97. node_expr("pid", NULL),
  98. NULL),
  99. node_expr("quantize",
  100. node_expr("-",
  101. node_expr("time", NULL),
  102. node_expr("{}",
  103. node_ident("t"),
  104. node_num("0"),
  105. node_expr("pid", NULL),
  106. NULL),
  107. NULL),
  108. NULL),
  109. NULL);
  110. prog->provider = provider_get("k");
  111. prog->provider->probe(prog);
  112. /* prog->ir = ir_new(); */
  113. ctx->progs[1] = prog;
  114. return ctx;
  115. }
  116. int pass_sym_alloc(struct node *n, void *_prog)
  117. {
  118. struct prog *prog = _prog;
  119. struct provider *global = provider_get(":");
  120. int err = 0;
  121. switch (n->ntype) {
  122. case N_EXPR:
  123. case N_IDENT:
  124. err = prog->provider->sym_alloc(prog, n);
  125. if (!err || (err != -ENOENT))
  126. break;
  127. err = global->sym_alloc(prog, n);
  128. break;
  129. case N_NUM:
  130. case N_STRING:
  131. err = global->sym_alloc(prog, n);
  132. }
  133. if (err) {
  134. if ((err == -ENOENT))
  135. _e("%#N: unknown symbol %N.\n", n, n);
  136. }
  137. return err;
  138. }
  139. /* int infer_type_list(struct prog *prog, struct node *n) */
  140. /* { */
  141. /* type_t *t; */
  142. /* /\* list of lists (code block) => void *\/ */
  143. /* if (n->list->ntype == N_LIST) { */
  144. /* n->type = &t_void; */
  145. /* return 0; */
  146. /* } */
  147. /* t = n->list->type; */
  148. /* if (!t) */
  149. /* return 0; */
  150. /* switch (t->ttype) { */
  151. /* case T_FUNC: */
  152. /* n->type = t->t.func.type; */
  153. /* break; */
  154. /* default: */
  155. /* n->type = t; */
  156. /* } */
  157. /* return 0; */
  158. /* } */
  159. /* int infer_type_keyword(struct prog *prog, struct node *n) */
  160. /* { */
  161. /* struct node *dst, *src; */
  162. /* switch (n->keyword.class) { */
  163. /* case KW_ASSIGN: */
  164. /* dst = node_next(n); */
  165. /* src = node_next(dst); */
  166. /* assert(dst && src); */
  167. /* if (!src->type) */
  168. /* return 0; */
  169. /* /\* TODO: assignment is statement for now. do we need */
  170. /* * c-style assignment expressions? e.g `a = b = 2;` *\/ */
  171. /* n->type = &t_void; */
  172. /* if (dst->type) */
  173. /* return 0; */
  174. /* dst->type = src->type; */
  175. /* if (dst->ntype != N_IDENT) */
  176. /* return 0; */
  177. /* return sym_add(dst->sym->st, dst->ident, dst->type, NULL); */
  178. /* case KW_BINOP: */
  179. /* dst = node_next(n); */
  180. /* src = node_next(dst); */
  181. /* assert(dst && src); */
  182. /* if (!(src->type && dst->type && type_equal(src->type, dst->type))) */
  183. /* return 0; */
  184. /* n->type = dst->type; */
  185. /* return 0; */
  186. /* default: */
  187. /* n->type = &t_void; */
  188. /* return 0; */
  189. /* } */
  190. /* return -ENOSYS; */
  191. /* } */
  192. /* int infer_type_sym(struct prog *prog, struct node *n) */
  193. /* { */
  194. /* struct node *parent, *key; */
  195. /* if (n->sym->type) { */
  196. /* /\* the symbol type could have been inferred in another */
  197. /* * probe, in that case copy the type to this node. *\/ */
  198. /* if (!n->type) */
  199. /* n->type = n->sym->type; */
  200. /* return 0; */
  201. /* } */
  202. /* parent = node_up(n); */
  203. /* key = node_next(n); */
  204. /* /\* match `somemap[somekey]` where the type of the entire */
  205. /* * expression and the type of the key is known, since that */
  206. /* * means the type of the map itself is also known. *\/ */
  207. /* if (parent && parent->type */
  208. /* && (parent->list->ntype == N_KEYWORD) */
  209. /* && (parent->list->keyword.class == KW_SUBSCRIPT) */
  210. /* && key && key->type) { */
  211. /* n->type = type_map_of(key->type, parent->type); */
  212. /* return sym_add(n->sym->st, n->ident, n->type, NULL); */
  213. /* } */
  214. /* return 0; */
  215. /* } */
  216. int pass_type_infer(struct node *n, void *_prog)
  217. {
  218. struct prog *prog = _prog;
  219. if (n->sym->func->type_infer)
  220. return n->sym->func->type_infer(n->sym->func, n);
  221. return 0;
  222. }
  223. /* int validate_func(struct node *n) */
  224. /* { */
  225. /* struct node *arg; */
  226. /* field_t *f; */
  227. /* int i; */
  228. /* for (arg = node_next(n), f = n->type->t.func.args, i = 1; */
  229. /* arg && f && f->type; arg = node_next(arg), f++, i++) { */
  230. /* if (type_compatible(arg->type, f->type)) */
  231. /* continue; */
  232. /* node_print(n, stderr); */
  233. /* fprintf(stderr, ": incompatible type of argument %d (", i); */
  234. /* type_dump(arg->type, stderr); */
  235. /* fputs("), expected ", stderr); */
  236. /* type_dump(f->type, stderr); */
  237. /* fputs("\n", stderr); */
  238. /* return -EINVAL; */
  239. /* } */
  240. /* if (!arg && (!f || !f->type)) */
  241. /* return 0; */
  242. /* if (arg) { */
  243. /* node_print(n, stderr); */
  244. /* fprintf(stderr, ": too many arguments, expected %d", i); */
  245. /* return -EINVAL; */
  246. /* } */
  247. /* if (f->optional) */
  248. /* return 0; */
  249. /* node_print(n, stderr); */
  250. /* fputs(": too few arguments", stderr); */
  251. /* return -EINVAL; */
  252. /* } */
  253. /* int pass_validate_types(struct node *n, void *_prog) */
  254. /* { */
  255. /* struct prog *prog = _prog; */
  256. /* node_print(n, stdout); putchar('\n'); */
  257. /* if (!n->type) { */
  258. /* node_print(n, stderr); */
  259. /* fputs(": type unknown\n", stderr); */
  260. /* return -EINVAL; */
  261. /* } */
  262. /* if (n->ntype != N_LIST) */
  263. /* return 0; */
  264. /* if (n->list->ntype != N_IDENT) */
  265. /* return 0; */
  266. /* assert(n->list->type->ttype == T_FUNC); */
  267. /* return validate_func(n->list); */
  268. /* } */
  269. /* int validate_syms(struct prog *prog) */
  270. /* { */
  271. /* return 0; */
  272. /* } */
  273. /* int run_validate_types(struct pass *pass, struct ctx *ctx) */
  274. /* { */
  275. /* struct prog **prog; */
  276. /* int err; */
  277. /* for (prog = ctx->progs; *prog; prog++) { */
  278. /* /\* check syms first to give better error messages. */
  279. /* * e.g. "i: type unknown", not "b-: type unknown" *\/ */
  280. /* err = validate_syms(*prog); */
  281. /* if (err) */
  282. /* return err; */
  283. /* err = node_walk((*prog)->ast, pass->pre, pass->post, *prog); */
  284. /* if (err) */
  285. /* return err; */
  286. /* } */
  287. /* return 0; */
  288. /* } */
  289. /* int rewrite_const_math(struct node *n) */
  290. /* { */
  291. /* int64_t result; */
  292. /* struct node *a, *b, *new; */
  293. /* int op; */
  294. /* /\* TODO: handle L/UL/ULL correctly *\/ */
  295. /* op = n->list->keyword.op; */
  296. /* a = node_next(n->list); */
  297. /* b = node_next(a); */
  298. /* switch (op) { */
  299. /* case '*': result = a->num * b->num; break; */
  300. /* case '/': result = a->num / b->num; break; */
  301. /* case '%': result = a->num % b->num; break; */
  302. /* case '+': result = a->num + b->num; break; */
  303. /* case '-': result = a->num - b->num; break; */
  304. /* case '<': result = a->num << b->num; break; */
  305. /* case '>': result = a->num >> b->num; break; */
  306. /* default: return 0; */
  307. /* } */
  308. /* new = node_num(result); */
  309. /* new->type = n->type; */
  310. /* return node_replace(n, new); */
  311. /* } */
  312. /* int pass_rewrite_ast(struct node *n, void *_prog) */
  313. /* { */
  314. /* struct prog *prog = _prog; */
  315. /* provider_t *global = provider_get(":"); */
  316. /* int err; */
  317. /* if (prog->provider->rewrite_node) { */
  318. /* err = prog->provider->rewrite_node(prog, n); */
  319. /* if (err) */
  320. /* return err; */
  321. /* } */
  322. /* if (global->rewrite_node) { */
  323. /* err = global->rewrite_node(prog, n); */
  324. /* if (err) */
  325. /* return err; */
  326. /* } */
  327. /* /\* pre-compute binops where both sides are constants *\/ */
  328. /* if ((n->ntype == N_LIST) */
  329. /* && (n->list->ntype == N_KEYWORD) */
  330. /* && (n->list->keyword.class == KW_BINOP) */
  331. /* && (node_next(n->list)->ntype == N_NUM) */
  332. /* && (node_next(node_next(n->list))->ntype == N_NUM)) */
  333. /* return rewrite_const_math(n); */
  334. /* return 0; */
  335. /* } */
  336. /* int generate_ir_ident(struct prog *prog, struct node *n) */
  337. /* { */
  338. /* switch (n->sym->type->ttype) { */
  339. /* case T_FUNC: */
  340. /* return n->sym->type->t.func.generate_ir(prog, n); */
  341. /* case T_MAP: */
  342. /* ir_emit_ldmap(prog->ir, BPF_REG_0, n->sym); */
  343. /* return 0; */
  344. /* default: */
  345. /* break; */
  346. /* } */
  347. /* return 0; */
  348. /* } */
  349. /* int pass_generate_ir(struct node *n, void *_prog) */
  350. /* { */
  351. /* struct prog *prog = _prog; */
  352. /* switch (n->ntype) { */
  353. /* case N_LIST: */
  354. /* return 0; */
  355. /* case N_IDENT: */
  356. /* return generate_ir_ident(prog, n); */
  357. /* default: */
  358. /* break; */
  359. /* } */
  360. /* return 0; */
  361. /* } */
  362. /* int run_generate_ir(struct pass *pass, struct ctx *ctx) */
  363. /* { */
  364. /* struct prog **progp; */
  365. /* int err; */
  366. /* for (progp = ctx->progs; *progp; progp++) { */
  367. /* struct prog *prog = *progp; */
  368. /* int return_label = ir_alloc_label(prog->ir); */
  369. /* err = prog->provider->ir_prologue ? */
  370. /* prog->provider->ir_prologue(prog) : 0; */
  371. /* if (err) */
  372. /* return err; */
  373. /* err = node_walk(prog->ast, NULL, pass_generate_ir, prog); */
  374. /* if (err) */
  375. /* return err; */
  376. /* err = prog->provider->ir_epilogue ? */
  377. /* prog->provider->ir_epilogue(prog) : 0; */
  378. /* if (err) */
  379. /* return err; */
  380. /* ir_emit_label(prog->ir, return_label); */
  381. /* ir_emit_insn(prog->ir, EXIT, 0, 0); */
  382. /* } */
  383. /* return 0; */
  384. /* } */
  385. int run_walk(struct pass *pass, struct ctx *ctx)
  386. {
  387. struct prog **prog;
  388. int err;
  389. for (prog = ctx->progs; *prog; prog++) {
  390. err = node_walk((*prog)->ast, pass->pre, pass->post, *prog);
  391. if (err)
  392. return err;
  393. }
  394. return 0;
  395. }
  396. struct pass passes[] = {
  397. { .run = run_walk, .post = pass_sym_alloc },
  398. { .run = run_walk, .post = pass_type_infer },
  399. /* { .run = run_walk, .post = pass_infer_types }, */
  400. /* { .run = run_walk, .post = pass_infer_types }, */
  401. /* { .run = run_validate_types, .post = pass_validate_types }, */
  402. /* { .run = run_walk, .post = pass_rewrite_ast }, */
  403. /* { .run = run_generate_ir }, */
  404. { NULL }
  405. };
  406. int main(void)
  407. {
  408. struct ctx *ctx = ctx_get();
  409. struct prog **prog;
  410. struct pass *pass;
  411. int err = 0;
  412. for (pass = passes; pass->run; pass++) {
  413. err = pass->run(pass, ctx);
  414. if (err)
  415. break;
  416. }
  417. for (prog = ctx->progs; *prog; prog++) {
  418. printf("\n\e[34m%s\e[0m\n", (*prog)->probe);
  419. ast_fprint(stdout, (*prog)->ast);
  420. printf("\n-- locals\n");
  421. symtab_dump((*prog)->locals, stdout);
  422. /* printf("-- ir\n"); */
  423. /* ir_dump((*prog)->ir, stdout); */
  424. }
  425. printf("\n\n-- globals\n");
  426. symtab_dump(ctx->globals, stdout);
  427. /* printf("\n\n-- decls\n"); */
  428. /* type_dump_decls(stdout); */
  429. if (err)
  430. printf("ERR: %d\n", err);
  431. return err;
  432. }