modffi.c 16 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. * Copyright (c) 2019 Armink (armink.ztl@gmail.com)
  9. *
  10. * Permission is hereby granted, free of charge, to any person obtaining a copy
  11. * of this software and associated documentation files (the "Software"), to deal
  12. * in the Software without restriction, including without limitation the rights
  13. * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  14. * copies of the Software, and to permit persons to whom the Software is
  15. * furnished to do so, subject to the following conditions:
  16. *
  17. * The above copyright notice and this permission notice shall be included in
  18. * all copies or substantial portions of the Software.
  19. *
  20. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  21. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  22. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  23. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  24. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  25. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  26. * THE SOFTWARE.
  27. */
  28. #include <assert.h>
  29. #include <string.h>
  30. #include <errno.h>
  31. #include <stdint.h>
  32. #include "py/runtime.h"
  33. #include "py/binary.h"
  34. #include "py/mperrno.h"
  35. #ifdef MICROPYTHON_USING_FFI
  36. #if !defined(__GNUC__)
  37. #error "The ffi module only supports GCC toolchain at present"
  38. #endif
  39. #include <dlfcn.h>
  40. #include <dlmodule.h>
  41. typedef enum {
  42. FFI_TYPE_UNKNOWN,
  43. FFI_TYPE_SCHAR,
  44. FFI_TYPE_UCHAR,
  45. FFI_TYPE_SSHORT,
  46. FFI_TYPE_USHORT,
  47. FFI_TYPE_SINT,
  48. FFI_TYPE_UINT,
  49. FFI_TYPE_SLONG,
  50. FFI_TYPE_ULONG,
  51. FFI_TYPE_SINT64,
  52. FFI_TYPE_UINT64,
  53. FFI_TYPE_FLOAT,
  54. FFI_TYPE_DOUBLE,
  55. FFI_TYPE_POINTER,
  56. FFI_TYPE_VOID,
  57. } ffi_type_t;
  58. typedef struct _mp_obj_opaque_t {
  59. mp_obj_base_t base;
  60. void *val;
  61. } mp_obj_opaque_t;
  62. typedef struct _mp_obj_ffimod_t {
  63. mp_obj_base_t base;
  64. void *handle;
  65. } mp_obj_ffimod_t;
  66. typedef struct _mp_obj_ffivar_t {
  67. mp_obj_base_t base;
  68. void *var;
  69. char type;
  70. } mp_obj_ffivar_t;
  71. typedef struct _mp_obj_ffifunc_t {
  72. mp_obj_base_t base;
  73. void *func;
  74. char rettype;
  75. uint32_t argc;
  76. const char *argtypes;
  77. ffi_type_t *params;
  78. } mp_obj_ffifunc_t;
  79. typedef struct _mp_obj_fficallback_t {
  80. mp_obj_base_t base;
  81. void *func;
  82. char rettype;
  83. ffi_type_t *params;
  84. } mp_obj_fficallback_t;
  85. typedef unsigned long ffi_arg;
  86. STATIC const mp_obj_type_t ffimod_type;
  87. STATIC const mp_obj_type_t ffifunc_type;
  88. STATIC const mp_obj_type_t fficallback_type;
  89. STATIC const mp_obj_type_t ffivar_type;
  90. STATIC ffi_type_t char2ffi_type(char c)
  91. {
  92. switch (c) {
  93. case 'b': return FFI_TYPE_SCHAR;
  94. case 'B': return FFI_TYPE_UCHAR;
  95. case 'h': return FFI_TYPE_SSHORT;
  96. case 'H': return FFI_TYPE_USHORT;
  97. case 'i': return FFI_TYPE_SINT;
  98. case 'I': return FFI_TYPE_UINT;
  99. case 'l': return FFI_TYPE_SLONG;
  100. case 'L': return FFI_TYPE_ULONG;
  101. case 'q': return FFI_TYPE_SINT64;
  102. case 'Q': return FFI_TYPE_UINT64;
  103. #if MICROPY_PY_BUILTINS_FLOAT
  104. case 'f': return FFI_TYPE_FLOAT;
  105. case 'd': return FFI_TYPE_DOUBLE;
  106. #endif
  107. case 'O': // mp_obj_t
  108. case 'C': // (*)()
  109. case 'P': // const void*
  110. case 'p': // void*
  111. case 's': return FFI_TYPE_POINTER;
  112. case 'v': return FFI_TYPE_VOID;
  113. default: return FFI_TYPE_UNKNOWN;
  114. }
  115. }
  116. STATIC ffi_type_t get_ffi_type(mp_obj_t o_in)
  117. {
  118. if (MP_OBJ_IS_STR(o_in)) {
  119. const char *s = mp_obj_str_get_str(o_in);
  120. ffi_type_t t = char2ffi_type(*s);
  121. if (t != FFI_TYPE_UNKNOWN) {
  122. return t;
  123. }
  124. }
  125. // TODO: Support actual libffi type objects
  126. mp_raise_TypeError("Unknown type");
  127. }
  128. STATIC mp_obj_t return_ffi_value(void *val, char type)
  129. {
  130. switch (type) {
  131. case 's': {
  132. const char *s = (const char *)(intptr_t)val;
  133. if (!s) {
  134. return mp_const_none;
  135. }
  136. return mp_obj_new_str(s, strlen(s));
  137. }
  138. case 'v':
  139. return mp_const_none;
  140. #if MICROPY_PY_BUILTINS_FLOAT
  141. case 'f': {
  142. union { void *ffi; float flt; } val_union = { .ffi = val };
  143. return mp_obj_new_float(val_union.flt);
  144. }
  145. case 'd': {
  146. double *p = (double*)&val;
  147. mp_raise_NotImplementedError("The double return type NOT supported");
  148. return mp_obj_new_float(*p);
  149. }
  150. #endif
  151. case 'O':
  152. return (mp_obj_t)(intptr_t)val;
  153. default:
  154. return mp_obj_new_int((mp_int_t)val);
  155. }
  156. }
  157. // FFI module
  158. STATIC void ffimod_print(const mp_print_t *print, mp_obj_t self_in, mp_print_kind_t kind) {
  159. (void)kind;
  160. mp_obj_ffimod_t *self = MP_OBJ_TO_PTR(self_in);
  161. mp_printf(print, "<ffimod %p>", self->handle);
  162. }
  163. STATIC mp_obj_t ffimod_close(mp_obj_t self_in) {
  164. mp_obj_ffimod_t *self = MP_OBJ_TO_PTR(self_in);
  165. dlclose(self->handle);
  166. return mp_const_none;
  167. }
  168. STATIC MP_DEFINE_CONST_FUN_OBJ_1(ffimod_close_obj, ffimod_close);
  169. STATIC mp_obj_t make_func(mp_obj_t rettype_in, void *func, mp_obj_t argtypes_in) {
  170. const char *rettype = mp_obj_str_get_str(rettype_in);
  171. const char *argtypes = mp_obj_str_get_str(argtypes_in);
  172. mp_int_t nparams = MP_OBJ_SMALL_INT_VALUE(mp_obj_len_maybe(argtypes_in));
  173. mp_obj_ffifunc_t *o = m_new_obj_var(mp_obj_ffifunc_t, ffi_type_t, nparams);
  174. o->base.type = &ffifunc_type;
  175. o->func = func;
  176. o->rettype = *rettype;
  177. o->argtypes = argtypes;
  178. o->argc = nparams;
  179. o->params = (uint8_t *)o + sizeof(mp_obj_ffifunc_t);
  180. mp_obj_iter_buf_t iter_buf;
  181. mp_obj_t iterable = mp_getiter(argtypes_in, &iter_buf);
  182. mp_obj_t item;
  183. int i = 0;
  184. while ((item = mp_iternext(iterable)) != MP_OBJ_STOP_ITERATION) {
  185. o->params[i++] = get_ffi_type(item);
  186. }
  187. /* when param is void change the argc to 0 */
  188. if (o->argc == 1 && o->params[0] == FFI_TYPE_VOID) {
  189. o->argc = 0;
  190. }
  191. return MP_OBJ_FROM_PTR(o);
  192. }
  193. STATIC mp_obj_t ffimod_func(size_t n_args, const mp_obj_t *args) {
  194. (void)n_args; // always 4
  195. mp_obj_ffimod_t *self = MP_OBJ_TO_PTR(args[0]);
  196. const char *symname = mp_obj_str_get_str(args[2]);
  197. void *sym = dlsym(self->handle, symname);
  198. if (sym == NULL) {
  199. mp_raise_ValueError("input symbol NOT found");
  200. }
  201. return make_func(args[1], sym, args[3]);
  202. }
  203. MP_DEFINE_CONST_FUN_OBJ_VAR_BETWEEN(ffimod_func_obj, 4, 4, ffimod_func);
  204. STATIC mp_obj_t mod_ffi_func(mp_obj_t rettype, mp_obj_t addr_in, mp_obj_t argtypes) {
  205. void *addr;
  206. /* find the built-in function address when address is string type */
  207. if (mp_obj_is_str(addr_in)) {
  208. addr = (void *) dlmodule_symbol_find(mp_obj_str_get_str(addr_in));
  209. if (addr == NULL) {
  210. mp_raise_ValueError("input symbol NOT found");
  211. }
  212. } else {
  213. addr = (void*) MP_OBJ_TO_PTR(mp_obj_int_get_truncated(addr_in));
  214. }
  215. return make_func(rettype, addr, argtypes);
  216. }
  217. MP_DEFINE_CONST_FUN_OBJ_3(mod_ffi_func_obj, mod_ffi_func);
  218. STATIC void call_py_func(void *ret, int argc, void** args, void *func) {
  219. mp_obj_t *pyargs = m_new(mp_obj_t, argc);
  220. for (int i = 0; i < argc; i++) {
  221. pyargs[i] = mp_obj_new_int(*(mp_int_t*)args[i]);
  222. }
  223. mp_obj_t res = mp_call_function_n_kw(MP_OBJ_FROM_PTR(func), argc, 0, pyargs);
  224. m_free(pyargs);
  225. if (res != mp_const_none) {
  226. *(ffi_arg*)ret = mp_obj_int_get_truncated(res);
  227. }
  228. }
  229. STATIC mp_obj_t mod_ffi_callback(mp_obj_t rettype_in, mp_obj_t func_in, mp_obj_t paramtypes_in) {
  230. const char *rettype = mp_obj_str_get_str(rettype_in);
  231. mp_int_t nparams = MP_OBJ_SMALL_INT_VALUE(mp_obj_len_maybe(paramtypes_in));
  232. mp_obj_fficallback_t *o = m_new_obj_var(mp_obj_fficallback_t, ffi_type_t, nparams);
  233. //TODO add callback impl
  234. mp_raise_NotImplementedError("The callback NOT supported");
  235. return MP_OBJ_FROM_PTR(o);
  236. }
  237. MP_DEFINE_CONST_FUN_OBJ_3(mod_ffi_callback_obj, mod_ffi_callback);
  238. STATIC mp_obj_t ffimod_var(mp_obj_t self_in, mp_obj_t vartype_in, mp_obj_t symname_in) {
  239. mp_obj_ffimod_t *self = MP_OBJ_TO_PTR(self_in);
  240. const char *rettype = mp_obj_str_get_str(vartype_in);
  241. const char *symname = mp_obj_str_get_str(symname_in);
  242. void *sym = dlsym(self->handle, symname);
  243. if (sym == NULL) {
  244. mp_raise_OSError(MP_ENOENT);
  245. }
  246. mp_obj_ffivar_t *o = m_new_obj(mp_obj_ffivar_t);
  247. o->base.type = &ffivar_type;
  248. o->var = sym;
  249. o->type = *rettype;
  250. return MP_OBJ_FROM_PTR(o);
  251. }
  252. MP_DEFINE_CONST_FUN_OBJ_3(ffimod_var_obj, ffimod_var);
  253. STATIC mp_obj_t ffimod_addr(mp_obj_t self_in, mp_obj_t symname_in) {
  254. mp_obj_ffimod_t *self = MP_OBJ_TO_PTR(self_in);
  255. const char *symname = mp_obj_str_get_str(symname_in);
  256. void *sym = dlsym(self->handle, symname);
  257. if (sym == NULL) {
  258. mp_raise_OSError(MP_ENOENT);
  259. }
  260. return mp_obj_new_int((uintptr_t)sym);
  261. }
  262. MP_DEFINE_CONST_FUN_OBJ_2(ffimod_addr_obj, ffimod_addr);
  263. STATIC mp_obj_t ffimod_make_new(const mp_obj_type_t *type, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  264. (void)n_args;
  265. (void)n_kw;
  266. const char *fname = NULL;
  267. if (args[0] != mp_const_none) {
  268. fname = mp_obj_str_get_str(args[0]);
  269. }
  270. void *mod = dlopen(fname, RTLD_NOW | RTLD_LOCAL);
  271. if (mod == NULL) {
  272. mp_raise_OSError(errno);
  273. }
  274. mp_obj_ffimod_t *o = m_new_obj(mp_obj_ffimod_t);
  275. o->base.type = type;
  276. o->handle = mod;
  277. return MP_OBJ_FROM_PTR(o);
  278. }
  279. STATIC const mp_rom_map_elem_t ffimod_locals_dict_table[] = {
  280. { MP_ROM_QSTR(MP_QSTR_func), MP_ROM_PTR(&ffimod_func_obj) },
  281. { MP_ROM_QSTR(MP_QSTR_var), MP_ROM_PTR(&ffimod_var_obj) },
  282. { MP_ROM_QSTR(MP_QSTR_addr), MP_ROM_PTR(&ffimod_addr_obj) },
  283. { MP_ROM_QSTR(MP_QSTR_close), MP_ROM_PTR(&ffimod_close_obj) },
  284. };
  285. STATIC MP_DEFINE_CONST_DICT(ffimod_locals_dict, ffimod_locals_dict_table);
  286. STATIC const mp_obj_type_t ffimod_type = {
  287. { &mp_type_type },
  288. .name = MP_QSTR_ffimod,
  289. .print = ffimod_print,
  290. .make_new = ffimod_make_new,
  291. .locals_dict = (mp_obj_dict_t*)&ffimod_locals_dict,
  292. };
  293. // FFI function
  294. STATIC void ffifunc_print(const mp_print_t *print, mp_obj_t self_in, mp_print_kind_t kind) {
  295. (void)kind;
  296. mp_obj_ffifunc_t *self = MP_OBJ_TO_PTR(self_in);
  297. mp_printf(print, "<ffifunc %p>", self->func);
  298. }
  299. STATIC void ffi_call(void *func, ffi_arg *retval, uint32_t argc, ffi_arg *argv)
  300. {
  301. typedef ffi_arg(*f6_t)(ffi_arg, ffi_arg, ffi_arg, ffi_arg, ffi_arg, ffi_arg);
  302. ffi_arg dummy = 0;
  303. ffi_arg args[6];
  304. uint32_t i;
  305. for (i = 0; i < sizeof(args) / sizeof(args[0]); i ++) {
  306. if (i < argc) {
  307. args[i] = argv[i];
  308. } else {
  309. args[i] = (ffi_arg)&dummy;
  310. }
  311. }
  312. *retval = ((f6_t)(func))(args[0], args[1], args[2], args[3], args[4], args[5]);
  313. }
  314. STATIC mp_obj_t ffifunc_call(mp_obj_t self_in, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  315. (void)n_kw;
  316. mp_obj_ffifunc_t *self = MP_OBJ_TO_PTR(self_in);
  317. assert(n_kw == 0);
  318. if (self->argc > n_args) {
  319. mp_raise_ValueError("input function parameter number mismatch");
  320. }
  321. ffi_arg *values = m_new(ffi_arg, n_args);
  322. const char *argtype = self->argtypes;
  323. for (uint i = 0; i < n_args; i++, argtype++) {
  324. mp_obj_t a = args[i];
  325. if (*argtype == 'O') {
  326. values[i] = (ffi_arg)(intptr_t)a;
  327. #if MICROPY_PY_BUILTINS_FLOAT
  328. } else if (*argtype == 'f') {
  329. float *p = (float*)&values[i];
  330. *p = mp_obj_get_float(a);
  331. } else if (*argtype == 'd') {
  332. double *p = (double*)&values[i];
  333. *p = mp_obj_get_float(a);
  334. //TODO add double and long long supported
  335. mp_raise_NotImplementedError("The double parameter NOT supported");
  336. #endif
  337. } else if (a == mp_const_none) {
  338. values[i] = 0;
  339. } else if (mp_obj_is_int(a)) {
  340. values[i] = mp_obj_int_get_truncated(a);
  341. } else if (mp_obj_is_str(a)) {
  342. const char *s = mp_obj_str_get_str(a);
  343. values[i] = (ffi_arg)(intptr_t)s;
  344. } else if (((mp_obj_base_t*)MP_OBJ_TO_PTR(a))->type->buffer_p.get_buffer != NULL) {
  345. mp_obj_base_t *o = (mp_obj_base_t*)MP_OBJ_TO_PTR(a);
  346. mp_buffer_info_t bufinfo;
  347. int ret = o->type->buffer_p.get_buffer(MP_OBJ_FROM_PTR(o), &bufinfo, MP_BUFFER_READ); // TODO: MP_BUFFER_READ?
  348. if (ret != 0) {
  349. goto __error;
  350. }
  351. values[i] = (ffi_arg)(intptr_t)bufinfo.buf;
  352. } else if (mp_obj_is_type(a, &fficallback_type)) {
  353. mp_obj_fficallback_t *p = MP_OBJ_TO_PTR(a);
  354. values[i] = (ffi_arg)(intptr_t)p->func;
  355. } else {
  356. goto __error;
  357. }
  358. }
  359. // If ffi_arg is not big enough to hold a double, then we must pass along a
  360. // pointer to a memory location of the correct size.
  361. // TODO check if this needs to be done for other types which don't fit into
  362. // ffi_arg.
  363. #if MICROPY_PY_BUILTINS_FLOAT
  364. if (sizeof(ffi_arg) == 4 && self->rettype == 'd') {
  365. double retval;
  366. //TODO add double supported
  367. mp_raise_NotImplementedError("The double return type NOT supported");
  368. // ffi_call(self->func, &retval, n_args, values);
  369. return mp_obj_new_float(retval);
  370. } else
  371. #endif
  372. {
  373. ffi_arg retval;
  374. ffi_call(self->func, &retval, n_args, values);
  375. m_free(values);
  376. return return_ffi_value((void *)retval, self->rettype);
  377. }
  378. __error:
  379. mp_raise_TypeError("Don't know how to pass object to native function");
  380. m_free(values);
  381. }
  382. STATIC const mp_obj_type_t ffifunc_type = {
  383. { &mp_type_type },
  384. .name = MP_QSTR_ffifunc,
  385. .print = ffifunc_print,
  386. .call = ffifunc_call,
  387. };
  388. // FFI callback for Python function
  389. STATIC void fficallback_print(const mp_print_t *print, mp_obj_t self_in, mp_print_kind_t kind) {
  390. (void)kind;
  391. mp_obj_fficallback_t *self = MP_OBJ_TO_PTR(self_in);
  392. mp_printf(print, "<fficallback %p>", self->func);
  393. }
  394. STATIC const mp_obj_type_t fficallback_type = {
  395. { &mp_type_type },
  396. .name = MP_QSTR_fficallback,
  397. .print = fficallback_print,
  398. };
  399. // FFI variable
  400. STATIC void ffivar_print(const mp_print_t *print, mp_obj_t self_in, mp_print_kind_t kind) {
  401. (void)kind;
  402. mp_obj_ffivar_t *self = MP_OBJ_TO_PTR(self_in);
  403. // Variable value printed as cast to int
  404. mp_printf(print, "<ffivar @%p: 0x%x>", self->var, *(int*)self->var);
  405. }
  406. STATIC mp_obj_t ffivar_get(mp_obj_t self_in) {
  407. mp_obj_ffivar_t *self = MP_OBJ_TO_PTR(self_in);
  408. return mp_binary_get_val_array(self->type, self->var, 0);
  409. }
  410. MP_DEFINE_CONST_FUN_OBJ_1(ffivar_get_obj, ffivar_get);
  411. STATIC mp_obj_t ffivar_set(mp_obj_t self_in, mp_obj_t val_in) {
  412. mp_obj_ffivar_t *self = MP_OBJ_TO_PTR(self_in);
  413. mp_binary_set_val_array(self->type, self->var, 0, val_in);
  414. return mp_const_none;
  415. }
  416. MP_DEFINE_CONST_FUN_OBJ_2(ffivar_set_obj, ffivar_set);
  417. STATIC const mp_rom_map_elem_t ffivar_locals_dict_table[] = {
  418. { MP_ROM_QSTR(MP_QSTR_get), MP_ROM_PTR(&ffivar_get_obj) },
  419. { MP_ROM_QSTR(MP_QSTR_set), MP_ROM_PTR(&ffivar_set_obj) },
  420. };
  421. STATIC MP_DEFINE_CONST_DICT(ffivar_locals_dict, ffivar_locals_dict_table);
  422. STATIC const mp_obj_type_t ffivar_type = {
  423. { &mp_type_type },
  424. .name = MP_QSTR_ffivar,
  425. .print = ffivar_print,
  426. .locals_dict = (mp_obj_dict_t*)&ffivar_locals_dict,
  427. };
  428. STATIC mp_obj_t mod_ffi_open(size_t n_args, const mp_obj_t *args) {
  429. return ffimod_make_new(&ffimod_type, n_args, 0, args);
  430. }
  431. MP_DEFINE_CONST_FUN_OBJ_VAR_BETWEEN(mod_ffi_open_obj, 1, 2, mod_ffi_open);
  432. STATIC mp_obj_t mod_ffi_as_bytearray(mp_obj_t ptr, mp_obj_t size) {
  433. return mp_obj_new_bytearray_by_ref(mp_obj_int_get_truncated(size), (void*)(uintptr_t)mp_obj_int_get_truncated(ptr));
  434. }
  435. MP_DEFINE_CONST_FUN_OBJ_2(mod_ffi_as_bytearray_obj, mod_ffi_as_bytearray);
  436. STATIC const mp_rom_map_elem_t mp_module_ffi_globals_table[] = {
  437. { MP_ROM_QSTR(MP_QSTR___name__), MP_ROM_QSTR(MP_QSTR_ffi) },
  438. { MP_ROM_QSTR(MP_QSTR_open), MP_ROM_PTR(&mod_ffi_open_obj) },
  439. { MP_ROM_QSTR(MP_QSTR_callback), MP_ROM_PTR(&mod_ffi_callback_obj) },
  440. { MP_ROM_QSTR(MP_QSTR_func), MP_ROM_PTR(&mod_ffi_func_obj) },
  441. { MP_ROM_QSTR(MP_QSTR_as_bytearray), MP_ROM_PTR(&mod_ffi_as_bytearray_obj) },
  442. };
  443. STATIC MP_DEFINE_CONST_DICT(mp_module_ffi_globals, mp_module_ffi_globals_table);
  444. const mp_obj_module_t mp_module_ffi = {
  445. .base = { &mp_type_module },
  446. .globals = (mp_obj_dict_t*)&mp_module_ffi_globals,
  447. };
  448. #endif /* MICROPY_PY_FFI */