objfun.c 19 KB

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  1. /*
  2. * This file is part of the MicroPython project, http://micropython.org/
  3. *
  4. * The MIT License (MIT)
  5. *
  6. * Copyright (c) 2013, 2014 Damien P. George
  7. * Copyright (c) 2014 Paul Sokolovsky
  8. *
  9. * Permission is hereby granted, free of charge, to any person obtaining a copy
  10. * of this software and associated documentation files (the "Software"), to deal
  11. * in the Software without restriction, including without limitation the rights
  12. * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  13. * copies of the Software, and to permit persons to whom the Software is
  14. * furnished to do so, subject to the following conditions:
  15. *
  16. * The above copyright notice and this permission notice shall be included in
  17. * all copies or substantial portions of the Software.
  18. *
  19. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  20. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  21. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  22. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  23. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  24. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  25. * THE SOFTWARE.
  26. */
  27. #include <string.h>
  28. #include <assert.h>
  29. #include "py/objtuple.h"
  30. #include "py/objfun.h"
  31. #include "py/runtime.h"
  32. #include "py/bc.h"
  33. #include "py/stackctrl.h"
  34. #if MICROPY_DEBUG_VERBOSE // print debugging info
  35. #define DEBUG_PRINT (1)
  36. #else // don't print debugging info
  37. #define DEBUG_PRINT (0)
  38. #define DEBUG_printf(...) (void)0
  39. #endif
  40. // Note: the "name" entry in mp_obj_type_t for a function type must be
  41. // MP_QSTR_function because it is used to determine if an object is of generic
  42. // function type.
  43. /******************************************************************************/
  44. /* builtin functions */
  45. STATIC mp_obj_t fun_builtin_0_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  46. (void)args;
  47. assert(mp_obj_is_type(self_in, &mp_type_fun_builtin_0));
  48. mp_obj_fun_builtin_fixed_t *self = MP_OBJ_TO_PTR(self_in);
  49. mp_arg_check_num(n_args, n_kw, 0, 0, false);
  50. return self->fun._0();
  51. }
  52. const mp_obj_type_t mp_type_fun_builtin_0 = {
  53. { &mp_type_type },
  54. .name = MP_QSTR_function,
  55. .call = fun_builtin_0_call,
  56. .unary_op = mp_generic_unary_op,
  57. };
  58. STATIC mp_obj_t fun_builtin_1_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  59. assert(mp_obj_is_type(self_in, &mp_type_fun_builtin_1));
  60. mp_obj_fun_builtin_fixed_t *self = MP_OBJ_TO_PTR(self_in);
  61. mp_arg_check_num(n_args, n_kw, 1, 1, false);
  62. return self->fun._1(args[0]);
  63. }
  64. const mp_obj_type_t mp_type_fun_builtin_1 = {
  65. { &mp_type_type },
  66. .name = MP_QSTR_function,
  67. .call = fun_builtin_1_call,
  68. .unary_op = mp_generic_unary_op,
  69. };
  70. STATIC mp_obj_t fun_builtin_2_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  71. assert(mp_obj_is_type(self_in, &mp_type_fun_builtin_2));
  72. mp_obj_fun_builtin_fixed_t *self = MP_OBJ_TO_PTR(self_in);
  73. mp_arg_check_num(n_args, n_kw, 2, 2, false);
  74. return self->fun._2(args[0], args[1]);
  75. }
  76. const mp_obj_type_t mp_type_fun_builtin_2 = {
  77. { &mp_type_type },
  78. .name = MP_QSTR_function,
  79. .call = fun_builtin_2_call,
  80. .unary_op = mp_generic_unary_op,
  81. };
  82. STATIC mp_obj_t fun_builtin_3_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  83. assert(mp_obj_is_type(self_in, &mp_type_fun_builtin_3));
  84. mp_obj_fun_builtin_fixed_t *self = MP_OBJ_TO_PTR(self_in);
  85. mp_arg_check_num(n_args, n_kw, 3, 3, false);
  86. return self->fun._3(args[0], args[1], args[2]);
  87. }
  88. const mp_obj_type_t mp_type_fun_builtin_3 = {
  89. { &mp_type_type },
  90. .name = MP_QSTR_function,
  91. .call = fun_builtin_3_call,
  92. .unary_op = mp_generic_unary_op,
  93. };
  94. STATIC mp_obj_t fun_builtin_var_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  95. assert(mp_obj_is_type(self_in, &mp_type_fun_builtin_var));
  96. mp_obj_fun_builtin_var_t *self = MP_OBJ_TO_PTR(self_in);
  97. // check number of arguments
  98. mp_arg_check_num_sig(n_args, n_kw, self->sig);
  99. if (self->sig & 1) {
  100. // function allows keywords
  101. // we create a map directly from the given args array
  102. mp_map_t kw_args;
  103. mp_map_init_fixed_table(&kw_args, n_kw, args + n_args);
  104. return self->fun.kw(n_args, args, &kw_args);
  105. } else {
  106. // function takes a variable number of arguments, but no keywords
  107. return self->fun.var(n_args, args);
  108. }
  109. }
  110. const mp_obj_type_t mp_type_fun_builtin_var = {
  111. { &mp_type_type },
  112. .name = MP_QSTR_function,
  113. .call = fun_builtin_var_call,
  114. .unary_op = mp_generic_unary_op,
  115. };
  116. /******************************************************************************/
  117. /* byte code functions */
  118. qstr mp_obj_code_get_name(const byte *code_info) {
  119. MP_BC_PRELUDE_SIZE_DECODE(code_info);
  120. #if MICROPY_PERSISTENT_CODE
  121. return code_info[0] | (code_info[1] << 8);
  122. #else
  123. return mp_decode_uint_value(code_info);
  124. #endif
  125. }
  126. #if MICROPY_EMIT_NATIVE
  127. STATIC const mp_obj_type_t mp_type_fun_native;
  128. #endif
  129. qstr mp_obj_fun_get_name(mp_const_obj_t fun_in) {
  130. const mp_obj_fun_bc_t *fun = MP_OBJ_TO_PTR(fun_in);
  131. #if MICROPY_EMIT_NATIVE
  132. if (fun->base.type == &mp_type_fun_native || fun->base.type == &mp_type_native_gen_wrap) {
  133. // TODO native functions don't have name stored
  134. return MP_QSTR_;
  135. }
  136. #endif
  137. const byte *bc = fun->bytecode;
  138. MP_BC_PRELUDE_SIG_DECODE(bc);
  139. return mp_obj_code_get_name(bc);
  140. }
  141. #if MICROPY_CPYTHON_COMPAT
  142. STATIC void fun_bc_print(const mp_print_t *print, mp_obj_t o_in, mp_print_kind_t kind) {
  143. (void)kind;
  144. mp_obj_fun_bc_t *o = MP_OBJ_TO_PTR(o_in);
  145. mp_printf(print, "<function %q at 0x%p>", mp_obj_fun_get_name(o_in), o);
  146. }
  147. #endif
  148. #if DEBUG_PRINT
  149. STATIC void dump_args(const mp_obj_t *a, size_t sz) {
  150. DEBUG_printf("%p: ", a);
  151. for (size_t i = 0; i < sz; i++) {
  152. DEBUG_printf("%p ", a[i]);
  153. }
  154. DEBUG_printf("\n");
  155. }
  156. #else
  157. #define dump_args(...) (void)0
  158. #endif
  159. // With this macro you can tune the maximum number of function state bytes
  160. // that will be allocated on the stack. Any function that needs more
  161. // than this will try to use the heap, with fallback to stack allocation.
  162. #define VM_MAX_STATE_ON_STACK (11 * sizeof(mp_uint_t))
  163. #define DECODE_CODESTATE_SIZE(bytecode, n_state_out_var, state_size_out_var) \
  164. { \
  165. const uint8_t *ip = bytecode; \
  166. size_t n_exc_stack, scope_flags, n_pos_args, n_kwonly_args, n_def_args; \
  167. MP_BC_PRELUDE_SIG_DECODE_INTO(ip, n_state_out_var, n_exc_stack, scope_flags, n_pos_args, n_kwonly_args, n_def_args); \
  168. \
  169. /* state size in bytes */ \
  170. state_size_out_var = n_state_out_var * sizeof(mp_obj_t) \
  171. + n_exc_stack * sizeof(mp_exc_stack_t); \
  172. }
  173. #define INIT_CODESTATE(code_state, _fun_bc, _n_state, n_args, n_kw, args) \
  174. code_state->fun_bc = _fun_bc; \
  175. code_state->ip = 0; \
  176. code_state->n_state = _n_state; \
  177. mp_setup_code_state(code_state, n_args, n_kw, args); \
  178. code_state->old_globals = mp_globals_get();
  179. #if MICROPY_STACKLESS
  180. mp_code_state_t *mp_obj_fun_bc_prepare_codestate(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  181. MP_STACK_CHECK();
  182. mp_obj_fun_bc_t *self = MP_OBJ_TO_PTR(self_in);
  183. size_t n_state, state_size;
  184. DECODE_CODESTATE_SIZE(self->bytecode, n_state, state_size);
  185. mp_code_state_t *code_state;
  186. #if MICROPY_ENABLE_PYSTACK
  187. code_state = mp_pystack_alloc(sizeof(mp_code_state_t) + state_size);
  188. #else
  189. // If we use m_new_obj_var(), then on no memory, MemoryError will be
  190. // raised. But this is not correct exception for a function call,
  191. // RuntimeError should be raised instead. So, we use m_new_obj_var_maybe(),
  192. // return NULL, then vm.c takes the needed action (either raise
  193. // RuntimeError or fallback to stack allocation).
  194. code_state = m_new_obj_var_maybe(mp_code_state_t, byte, state_size);
  195. if (!code_state) {
  196. return NULL;
  197. }
  198. #endif
  199. INIT_CODESTATE(code_state, self, n_state, n_args, n_kw, args);
  200. // execute the byte code with the correct globals context
  201. mp_globals_set(self->globals);
  202. return code_state;
  203. }
  204. #endif
  205. STATIC mp_obj_t fun_bc_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  206. MP_STACK_CHECK();
  207. DEBUG_printf("Input n_args: " UINT_FMT ", n_kw: " UINT_FMT "\n", n_args, n_kw);
  208. DEBUG_printf("Input pos args: ");
  209. dump_args(args, n_args);
  210. DEBUG_printf("Input kw args: ");
  211. dump_args(args + n_args, n_kw * 2);
  212. mp_obj_fun_bc_t *self = MP_OBJ_TO_PTR(self_in);
  213. size_t n_state, state_size;
  214. DECODE_CODESTATE_SIZE(self->bytecode, n_state, state_size);
  215. // allocate state for locals and stack
  216. mp_code_state_t *code_state = NULL;
  217. #if MICROPY_ENABLE_PYSTACK
  218. code_state = mp_pystack_alloc(sizeof(mp_code_state_t) + state_size);
  219. #else
  220. if (state_size > VM_MAX_STATE_ON_STACK) {
  221. code_state = m_new_obj_var_maybe(mp_code_state_t, byte, state_size);
  222. #if MICROPY_DEBUG_VM_STACK_OVERFLOW
  223. if (code_state != NULL) {
  224. memset(code_state->state, 0, state_size);
  225. }
  226. #endif
  227. }
  228. if (code_state == NULL) {
  229. code_state = alloca(sizeof(mp_code_state_t) + state_size);
  230. #if MICROPY_DEBUG_VM_STACK_OVERFLOW
  231. memset(code_state->state, 0, state_size);
  232. #endif
  233. state_size = 0; // indicate that we allocated using alloca
  234. }
  235. #endif
  236. INIT_CODESTATE(code_state, self, n_state, n_args, n_kw, args);
  237. // execute the byte code with the correct globals context
  238. mp_globals_set(self->globals);
  239. mp_vm_return_kind_t vm_return_kind = mp_execute_bytecode(code_state, MP_OBJ_NULL);
  240. mp_globals_set(code_state->old_globals);
  241. #if MICROPY_DEBUG_VM_STACK_OVERFLOW
  242. if (vm_return_kind == MP_VM_RETURN_NORMAL) {
  243. if (code_state->sp < code_state->state) {
  244. mp_printf(MICROPY_DEBUG_PRINTER, "VM stack underflow: " INT_FMT "\n", code_state->sp - code_state->state);
  245. assert(0);
  246. }
  247. }
  248. const byte *bytecode_ptr = self->bytecode;
  249. size_t n_state_unused, n_exc_stack_unused, scope_flags_unused;
  250. size_t n_pos_args, n_kwonly_args, n_def_args_unused;
  251. MP_BC_PRELUDE_SIG_DECODE_INTO(bytecode_ptr, n_state_unused, n_exc_stack_unused,
  252. scope_flags_unused, n_pos_args, n_kwonly_args, n_def_args_unused);
  253. // We can't check the case when an exception is returned in state[0]
  254. // and there are no arguments, because in this case our detection slot may have
  255. // been overwritten by the returned exception (which is allowed).
  256. if (!(vm_return_kind == MP_VM_RETURN_EXCEPTION && n_pos_args + n_kwonly_args == 0)) {
  257. // Just check to see that we have at least 1 null object left in the state.
  258. bool overflow = true;
  259. for (size_t i = 0; i < n_state - n_pos_args - n_kwonly_args; ++i) {
  260. if (code_state->state[i] == MP_OBJ_NULL) {
  261. overflow = false;
  262. break;
  263. }
  264. }
  265. if (overflow) {
  266. mp_printf(MICROPY_DEBUG_PRINTER, "VM stack overflow state=%p n_state+1=" UINT_FMT "\n", code_state->state, n_state);
  267. assert(0);
  268. }
  269. }
  270. #endif
  271. mp_obj_t result;
  272. if (vm_return_kind == MP_VM_RETURN_NORMAL) {
  273. // return value is in *sp
  274. result = *code_state->sp;
  275. } else {
  276. // must be an exception because normal functions can't yield
  277. assert(vm_return_kind == MP_VM_RETURN_EXCEPTION);
  278. // returned exception is in state[0]
  279. result = code_state->state[0];
  280. }
  281. #if MICROPY_ENABLE_PYSTACK
  282. mp_pystack_free(code_state);
  283. #else
  284. // free the state if it was allocated on the heap
  285. if (state_size != 0) {
  286. m_del_var(mp_code_state_t, byte, state_size, code_state);
  287. }
  288. #endif
  289. if (vm_return_kind == MP_VM_RETURN_NORMAL) {
  290. return result;
  291. } else { // MP_VM_RETURN_EXCEPTION
  292. nlr_raise(result);
  293. }
  294. }
  295. #if MICROPY_PY_FUNCTION_ATTRS
  296. void mp_obj_fun_bc_attr(mp_obj_t self_in, qstr attr, mp_obj_t *dest) {
  297. if (dest[0] != MP_OBJ_NULL) {
  298. // not load attribute
  299. return;
  300. }
  301. if (attr == MP_QSTR___name__) {
  302. dest[0] = MP_OBJ_NEW_QSTR(mp_obj_fun_get_name(self_in));
  303. }
  304. }
  305. #endif
  306. const mp_obj_type_t mp_type_fun_bc = {
  307. { &mp_type_type },
  308. .name = MP_QSTR_function,
  309. #if MICROPY_CPYTHON_COMPAT
  310. .print = fun_bc_print,
  311. #endif
  312. .call = fun_bc_call,
  313. .unary_op = mp_generic_unary_op,
  314. #if MICROPY_PY_FUNCTION_ATTRS
  315. .attr = mp_obj_fun_bc_attr,
  316. #endif
  317. };
  318. mp_obj_t mp_obj_new_fun_bc(mp_obj_t def_args_in, mp_obj_t def_kw_args, const byte *code, const mp_uint_t *const_table) {
  319. size_t n_def_args = 0;
  320. size_t n_extra_args = 0;
  321. mp_obj_tuple_t *def_args = MP_OBJ_TO_PTR(def_args_in);
  322. if (def_args_in != MP_OBJ_NULL) {
  323. assert(mp_obj_is_type(def_args_in, &mp_type_tuple));
  324. n_def_args = def_args->len;
  325. n_extra_args = def_args->len;
  326. }
  327. if (def_kw_args != MP_OBJ_NULL) {
  328. n_extra_args += 1;
  329. }
  330. mp_obj_fun_bc_t *o = m_new_obj_var(mp_obj_fun_bc_t, mp_obj_t, n_extra_args);
  331. o->base.type = &mp_type_fun_bc;
  332. o->globals = mp_globals_get();
  333. o->bytecode = code;
  334. o->const_table = const_table;
  335. if (def_args != NULL) {
  336. memcpy(o->extra_args, def_args->items, n_def_args * sizeof(mp_obj_t));
  337. }
  338. if (def_kw_args != MP_OBJ_NULL) {
  339. o->extra_args[n_def_args] = def_kw_args;
  340. }
  341. return MP_OBJ_FROM_PTR(o);
  342. }
  343. /******************************************************************************/
  344. /* native functions */
  345. #if MICROPY_EMIT_NATIVE
  346. STATIC mp_obj_t fun_native_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  347. MP_STACK_CHECK();
  348. mp_obj_fun_bc_t *self = self_in;
  349. mp_call_fun_t fun = MICROPY_MAKE_POINTER_CALLABLE((void*)self->bytecode);
  350. return fun(self_in, n_args, n_kw, args);
  351. }
  352. STATIC const mp_obj_type_t mp_type_fun_native = {
  353. { &mp_type_type },
  354. .name = MP_QSTR_function,
  355. .call = fun_native_call,
  356. .unary_op = mp_generic_unary_op,
  357. };
  358. mp_obj_t mp_obj_new_fun_native(mp_obj_t def_args_in, mp_obj_t def_kw_args, const void *fun_data, const mp_uint_t *const_table) {
  359. mp_obj_fun_bc_t *o = mp_obj_new_fun_bc(def_args_in, def_kw_args, (const byte*)fun_data, const_table);
  360. o->base.type = &mp_type_fun_native;
  361. return o;
  362. }
  363. #endif // MICROPY_EMIT_NATIVE
  364. /******************************************************************************/
  365. /* inline assembler functions */
  366. #if MICROPY_EMIT_INLINE_ASM
  367. typedef struct _mp_obj_fun_asm_t {
  368. mp_obj_base_t base;
  369. size_t n_args;
  370. const void *fun_data; // GC must be able to trace this pointer
  371. mp_uint_t type_sig;
  372. } mp_obj_fun_asm_t;
  373. typedef mp_uint_t (*inline_asm_fun_0_t)(void);
  374. typedef mp_uint_t (*inline_asm_fun_1_t)(mp_uint_t);
  375. typedef mp_uint_t (*inline_asm_fun_2_t)(mp_uint_t, mp_uint_t);
  376. typedef mp_uint_t (*inline_asm_fun_3_t)(mp_uint_t, mp_uint_t, mp_uint_t);
  377. typedef mp_uint_t (*inline_asm_fun_4_t)(mp_uint_t, mp_uint_t, mp_uint_t, mp_uint_t);
  378. // convert a MicroPython object to a sensible value for inline asm
  379. STATIC mp_uint_t convert_obj_for_inline_asm(mp_obj_t obj) {
  380. // TODO for byte_array, pass pointer to the array
  381. if (mp_obj_is_small_int(obj)) {
  382. return MP_OBJ_SMALL_INT_VALUE(obj);
  383. } else if (obj == mp_const_none) {
  384. return 0;
  385. } else if (obj == mp_const_false) {
  386. return 0;
  387. } else if (obj == mp_const_true) {
  388. return 1;
  389. } else if (mp_obj_is_type(obj, &mp_type_int)) {
  390. return mp_obj_int_get_truncated(obj);
  391. } else if (mp_obj_is_str(obj)) {
  392. // pointer to the string (it's probably constant though!)
  393. size_t l;
  394. return (mp_uint_t)mp_obj_str_get_data(obj, &l);
  395. } else {
  396. mp_obj_type_t *type = mp_obj_get_type(obj);
  397. #if MICROPY_PY_BUILTINS_FLOAT
  398. if (type == &mp_type_float) {
  399. // convert float to int (could also pass in float registers)
  400. return (mp_int_t)mp_obj_float_get(obj);
  401. } else
  402. #endif
  403. if (type == &mp_type_tuple || type == &mp_type_list) {
  404. // pointer to start of tuple (could pass length, but then could use len(x) for that)
  405. size_t len;
  406. mp_obj_t *items;
  407. mp_obj_get_array(obj, &len, &items);
  408. return (mp_uint_t)items;
  409. } else {
  410. mp_buffer_info_t bufinfo;
  411. if (mp_get_buffer(obj, &bufinfo, MP_BUFFER_READ)) {
  412. // supports the buffer protocol, return a pointer to the data
  413. return (mp_uint_t)bufinfo.buf;
  414. } else {
  415. // just pass along a pointer to the object
  416. return (mp_uint_t)obj;
  417. }
  418. }
  419. }
  420. }
  421. STATIC mp_obj_t fun_asm_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  422. mp_obj_fun_asm_t *self = self_in;
  423. mp_arg_check_num(n_args, n_kw, self->n_args, self->n_args, false);
  424. const void *fun = MICROPY_MAKE_POINTER_CALLABLE(self->fun_data);
  425. mp_uint_t ret;
  426. if (n_args == 0) {
  427. ret = ((inline_asm_fun_0_t)fun)();
  428. } else if (n_args == 1) {
  429. ret = ((inline_asm_fun_1_t)fun)(convert_obj_for_inline_asm(args[0]));
  430. } else if (n_args == 2) {
  431. ret = ((inline_asm_fun_2_t)fun)(convert_obj_for_inline_asm(args[0]), convert_obj_for_inline_asm(args[1]));
  432. } else if (n_args == 3) {
  433. ret = ((inline_asm_fun_3_t)fun)(convert_obj_for_inline_asm(args[0]), convert_obj_for_inline_asm(args[1]), convert_obj_for_inline_asm(args[2]));
  434. } else {
  435. // compiler allows at most 4 arguments
  436. assert(n_args == 4);
  437. ret = ((inline_asm_fun_4_t)fun)(
  438. convert_obj_for_inline_asm(args[0]),
  439. convert_obj_for_inline_asm(args[1]),
  440. convert_obj_for_inline_asm(args[2]),
  441. convert_obj_for_inline_asm(args[3])
  442. );
  443. }
  444. return mp_native_to_obj(ret, self->type_sig);
  445. }
  446. STATIC const mp_obj_type_t mp_type_fun_asm = {
  447. { &mp_type_type },
  448. .name = MP_QSTR_function,
  449. .call = fun_asm_call,
  450. .unary_op = mp_generic_unary_op,
  451. };
  452. mp_obj_t mp_obj_new_fun_asm(size_t n_args, const void *fun_data, mp_uint_t type_sig) {
  453. mp_obj_fun_asm_t *o = m_new_obj(mp_obj_fun_asm_t);
  454. o->base.type = &mp_type_fun_asm;
  455. o->n_args = n_args;
  456. o->fun_data = fun_data;
  457. o->type_sig = type_sig;
  458. return o;
  459. }
  460. #endif // MICROPY_EMIT_INLINE_ASM