machine_i2c.c 24 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) 2016 Damien P. George
  7. *
  8. * Permission is hereby granted, free of charge, to any person obtaining a copy
  9. * of this software and associated documentation files (the "Software"), to deal
  10. * in the Software without restriction, including without limitation the rights
  11. * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  12. * copies of the Software, and to permit persons to whom the Software is
  13. * furnished to do so, subject to the following conditions:
  14. *
  15. * The above copyright notice and this permission notice shall be included in
  16. * all copies or substantial portions of the Software.
  17. *
  18. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  19. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  20. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  21. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  22. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  23. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  24. * THE SOFTWARE.
  25. */
  26. #include <stdio.h>
  27. #include <stdint.h>
  28. #include <string.h>
  29. #include "py/mperrno.h"
  30. #include "py/mphal.h"
  31. #include "py/runtime.h"
  32. #include "extmod/machine_i2c.h"
  33. #if MICROPY_PY_MACHINE_I2C
  34. typedef mp_machine_soft_i2c_obj_t machine_i2c_obj_t;
  35. STATIC void mp_hal_i2c_delay(machine_i2c_obj_t *self) {
  36. // We need to use an accurate delay to get acceptable I2C
  37. // speeds (eg 1us should be not much more than 1us).
  38. mp_hal_delay_us_fast(self->us_delay);
  39. }
  40. STATIC void mp_hal_i2c_scl_low(machine_i2c_obj_t *self) {
  41. mp_hal_pin_od_low(self->scl);
  42. }
  43. STATIC int mp_hal_i2c_scl_release(machine_i2c_obj_t *self) {
  44. uint32_t count = self->us_timeout;
  45. mp_hal_pin_od_high(self->scl);
  46. mp_hal_i2c_delay(self);
  47. // For clock stretching, wait for the SCL pin to be released, with timeout.
  48. for (; mp_hal_pin_read(self->scl) == 0 && count; --count) {
  49. mp_hal_delay_us_fast(1);
  50. }
  51. if (count == 0) {
  52. return -MP_ETIMEDOUT;
  53. }
  54. return 0; // success
  55. }
  56. STATIC void mp_hal_i2c_sda_low(machine_i2c_obj_t *self) {
  57. mp_hal_pin_od_low(self->sda);
  58. }
  59. STATIC void mp_hal_i2c_sda_release(machine_i2c_obj_t *self) {
  60. mp_hal_pin_od_high(self->sda);
  61. }
  62. STATIC int mp_hal_i2c_sda_read(machine_i2c_obj_t *self) {
  63. return mp_hal_pin_read(self->sda);
  64. }
  65. STATIC int mp_hal_i2c_start(machine_i2c_obj_t *self) {
  66. mp_hal_i2c_sda_release(self);
  67. mp_hal_i2c_delay(self);
  68. int ret = mp_hal_i2c_scl_release(self);
  69. if (ret != 0) {
  70. return ret;
  71. }
  72. mp_hal_i2c_sda_low(self);
  73. mp_hal_i2c_delay(self);
  74. return 0; // success
  75. }
  76. STATIC int mp_hal_i2c_stop(machine_i2c_obj_t *self) {
  77. mp_hal_i2c_delay(self);
  78. mp_hal_i2c_sda_low(self);
  79. mp_hal_i2c_delay(self);
  80. int ret = mp_hal_i2c_scl_release(self);
  81. mp_hal_i2c_sda_release(self);
  82. mp_hal_i2c_delay(self);
  83. return ret;
  84. }
  85. STATIC void mp_hal_i2c_init(machine_i2c_obj_t *self, uint32_t freq) {
  86. self->us_delay = 500000 / freq;
  87. if (self->us_delay == 0) {
  88. self->us_delay = 1;
  89. }
  90. mp_hal_pin_open_drain(self->scl);
  91. mp_hal_pin_open_drain(self->sda);
  92. mp_hal_i2c_stop(self); // ignore error
  93. }
  94. // return value:
  95. // 0 - byte written and ack received
  96. // 1 - byte written and nack received
  97. // <0 - error, with errno being the negative of the return value
  98. STATIC int mp_hal_i2c_write_byte(machine_i2c_obj_t *self, uint8_t val) {
  99. mp_hal_i2c_delay(self);
  100. mp_hal_i2c_scl_low(self);
  101. for (int i = 7; i >= 0; i--) {
  102. if ((val >> i) & 1) {
  103. mp_hal_i2c_sda_release(self);
  104. } else {
  105. mp_hal_i2c_sda_low(self);
  106. }
  107. mp_hal_i2c_delay(self);
  108. int ret = mp_hal_i2c_scl_release(self);
  109. if (ret != 0) {
  110. mp_hal_i2c_sda_release(self);
  111. return ret;
  112. }
  113. mp_hal_i2c_scl_low(self);
  114. }
  115. mp_hal_i2c_sda_release(self);
  116. mp_hal_i2c_delay(self);
  117. int ret = mp_hal_i2c_scl_release(self);
  118. if (ret != 0) {
  119. return ret;
  120. }
  121. int ack = mp_hal_i2c_sda_read(self);
  122. mp_hal_i2c_delay(self);
  123. mp_hal_i2c_scl_low(self);
  124. return ack;
  125. }
  126. // return value:
  127. // 0 - success
  128. // <0 - error, with errno being the negative of the return value
  129. STATIC int mp_hal_i2c_read_byte(machine_i2c_obj_t *self, uint8_t *val, int nack) {
  130. mp_hal_i2c_delay(self);
  131. mp_hal_i2c_scl_low(self);
  132. mp_hal_i2c_delay(self);
  133. uint8_t data = 0;
  134. for (int i = 7; i >= 0; i--) {
  135. int ret = mp_hal_i2c_scl_release(self);
  136. if (ret != 0) {
  137. return ret;
  138. }
  139. data = (data << 1) | mp_hal_i2c_sda_read(self);
  140. mp_hal_i2c_scl_low(self);
  141. mp_hal_i2c_delay(self);
  142. }
  143. *val = data;
  144. // send ack/nack bit
  145. if (!nack) {
  146. mp_hal_i2c_sda_low(self);
  147. }
  148. mp_hal_i2c_delay(self);
  149. int ret = mp_hal_i2c_scl_release(self);
  150. if (ret != 0) {
  151. mp_hal_i2c_sda_release(self);
  152. return ret;
  153. }
  154. mp_hal_i2c_scl_low(self);
  155. mp_hal_i2c_sda_release(self);
  156. return 0; // success
  157. }
  158. // return value:
  159. // >=0 - success; for read it's 0, for write it's number of acks received
  160. // <0 - error, with errno being the negative of the return value
  161. int mp_machine_soft_i2c_transfer(mp_obj_base_t *self_in, uint16_t addr, size_t n, mp_machine_i2c_buf_t *bufs, unsigned int flags) {
  162. machine_i2c_obj_t *self = (machine_i2c_obj_t*)self_in;
  163. // start the I2C transaction
  164. int ret = mp_hal_i2c_start(self);
  165. if (ret != 0) {
  166. return ret;
  167. }
  168. // write the slave address
  169. ret = mp_hal_i2c_write_byte(self, (addr << 1) | (flags & MP_MACHINE_I2C_FLAG_READ));
  170. if (ret < 0) {
  171. return ret;
  172. } else if (ret != 0) {
  173. // nack received, release the bus cleanly
  174. mp_hal_i2c_stop(self);
  175. return -MP_ENODEV;
  176. }
  177. int transfer_ret = 0;
  178. for (; n--; ++bufs) {
  179. size_t len = bufs->len;
  180. uint8_t *buf = bufs->buf;
  181. if (flags & MP_MACHINE_I2C_FLAG_READ) {
  182. // read bytes from the slave into the given buffer(s)
  183. while (len--) {
  184. ret = mp_hal_i2c_read_byte(self, buf++, (n | len) == 0);
  185. if (ret != 0) {
  186. return ret;
  187. }
  188. }
  189. } else {
  190. // write bytes from the given buffer(s) to the slave
  191. while (len--) {
  192. ret = mp_hal_i2c_write_byte(self, *buf++);
  193. if (ret < 0) {
  194. return ret;
  195. } else if (ret != 0) {
  196. // nack received, stop sending
  197. n = 0;
  198. break;
  199. }
  200. ++transfer_ret; // count the number of acks
  201. }
  202. }
  203. }
  204. // finish the I2C transaction
  205. if (flags & MP_MACHINE_I2C_FLAG_STOP) {
  206. ret = mp_hal_i2c_stop(self);
  207. if (ret != 0) {
  208. return ret;
  209. }
  210. }
  211. return transfer_ret;
  212. }
  213. /******************************************************************************/
  214. // Generic helper functions
  215. // For use by ports that require a single buffer of data for a read/write transfer
  216. int mp_machine_i2c_transfer_adaptor(mp_obj_base_t *self, uint16_t addr, size_t n, mp_machine_i2c_buf_t *bufs, unsigned int flags) {
  217. size_t len;
  218. uint8_t *buf;
  219. if (n == 1) {
  220. // Use given single buffer
  221. len = bufs[0].len;
  222. buf = bufs[0].buf;
  223. } else {
  224. // Combine buffers into a single one
  225. len = 0;
  226. for (size_t i = 0; i < n; ++i) {
  227. len += bufs[i].len;
  228. }
  229. buf = m_new(uint8_t, len);
  230. if (!(flags & MP_MACHINE_I2C_FLAG_READ)) {
  231. len = 0;
  232. for (size_t i = 0; i < n; ++i) {
  233. memcpy(buf + len, bufs[i].buf, bufs[i].len);
  234. len += bufs[i].len;
  235. }
  236. }
  237. }
  238. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  239. int ret = i2c_p->transfer_single(self, addr, len, buf, flags);
  240. if (n > 1) {
  241. if (flags & MP_MACHINE_I2C_FLAG_READ) {
  242. // Copy data from single buffer to individual ones
  243. len = 0;
  244. for (size_t i = 0; i < n; ++i) {
  245. memcpy(bufs[i].buf, buf + len, bufs[i].len);
  246. len += bufs[i].len;
  247. }
  248. }
  249. m_del(uint8_t, buf, len);
  250. }
  251. return ret;
  252. }
  253. STATIC int mp_machine_i2c_readfrom(mp_obj_base_t *self, uint16_t addr, uint8_t *dest, size_t len, bool stop) {
  254. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  255. mp_machine_i2c_buf_t buf = {.len = len, .buf = dest};
  256. unsigned int flags = MP_MACHINE_I2C_FLAG_READ | (stop ? MP_MACHINE_I2C_FLAG_STOP : 0);
  257. return i2c_p->transfer(self, addr, 1, &buf, flags);
  258. }
  259. STATIC int mp_machine_i2c_writeto(mp_obj_base_t *self, uint16_t addr, const uint8_t *src, size_t len, bool stop) {
  260. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  261. mp_machine_i2c_buf_t buf = {.len = len, .buf = (uint8_t*)src};
  262. unsigned int flags = stop ? MP_MACHINE_I2C_FLAG_STOP : 0;
  263. return i2c_p->transfer(self, addr, 1, &buf, flags);
  264. }
  265. /******************************************************************************/
  266. // MicroPython bindings for I2C
  267. STATIC void machine_i2c_obj_init_helper(machine_i2c_obj_t *self, size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
  268. enum { ARG_scl, ARG_sda, ARG_freq, ARG_timeout };
  269. static const mp_arg_t allowed_args[] = {
  270. { MP_QSTR_scl, MP_ARG_REQUIRED | MP_ARG_OBJ },
  271. { MP_QSTR_sda, MP_ARG_REQUIRED | MP_ARG_OBJ },
  272. { MP_QSTR_freq, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = 400000} },
  273. { MP_QSTR_timeout, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = 255} },
  274. };
  275. mp_arg_val_t args[MP_ARRAY_SIZE(allowed_args)];
  276. mp_arg_parse_all(n_args, pos_args, kw_args, MP_ARRAY_SIZE(allowed_args), allowed_args, args);
  277. self->scl = mp_hal_get_pin_obj(args[ARG_scl].u_obj);
  278. self->sda = mp_hal_get_pin_obj(args[ARG_sda].u_obj);
  279. self->us_timeout = args[ARG_timeout].u_int;
  280. mp_hal_i2c_init(self, args[ARG_freq].u_int);
  281. }
  282. STATIC mp_obj_t machine_i2c_make_new(const mp_obj_type_t *type, size_t n_args, size_t n_kw, const mp_obj_t *args) {
  283. // check the id argument, if given
  284. if (n_args > 0) {
  285. if (args[0] != MP_OBJ_NEW_SMALL_INT(-1)) {
  286. #if defined(MICROPY_PY_MACHINE_I2C_MAKE_NEW)
  287. // dispatch to port-specific constructor
  288. extern mp_obj_t MICROPY_PY_MACHINE_I2C_MAKE_NEW(const mp_obj_type_t *type, size_t n_args, size_t n_kw, const mp_obj_t *all_args);
  289. return MICROPY_PY_MACHINE_I2C_MAKE_NEW(type, n_args, n_kw, args);
  290. #else
  291. mp_raise_ValueError("invalid I2C peripheral");
  292. #endif
  293. }
  294. --n_args;
  295. ++args;
  296. }
  297. // create new soft I2C object
  298. machine_i2c_obj_t *self = m_new_obj(machine_i2c_obj_t);
  299. self->base.type = &machine_i2c_type;
  300. mp_map_t kw_args;
  301. mp_map_init_fixed_table(&kw_args, n_kw, args + n_args);
  302. machine_i2c_obj_init_helper(self, n_args, args, &kw_args);
  303. return MP_OBJ_FROM_PTR(self);
  304. }
  305. STATIC mp_obj_t machine_i2c_obj_init(size_t n_args, const mp_obj_t *args, mp_map_t *kw_args) {
  306. machine_i2c_obj_init_helper(MP_OBJ_TO_PTR(args[0]), n_args - 1, args + 1, kw_args);
  307. return mp_const_none;
  308. }
  309. MP_DEFINE_CONST_FUN_OBJ_KW(machine_i2c_init_obj, 1, machine_i2c_obj_init);
  310. STATIC mp_obj_t machine_i2c_scan(mp_obj_t self_in) {
  311. mp_obj_base_t *self = MP_OBJ_TO_PTR(self_in);
  312. mp_obj_t list = mp_obj_new_list(0, NULL);
  313. // 7-bit addresses 0b0000xxx and 0b1111xxx are reserved
  314. for (int addr = 0x08; addr < 0x78; ++addr) {
  315. int ret = mp_machine_i2c_writeto(self, addr, NULL, 0, true);
  316. if (ret == 0) {
  317. mp_obj_list_append(list, MP_OBJ_NEW_SMALL_INT(addr));
  318. }
  319. }
  320. return list;
  321. }
  322. MP_DEFINE_CONST_FUN_OBJ_1(machine_i2c_scan_obj, machine_i2c_scan);
  323. STATIC mp_obj_t machine_i2c_start(mp_obj_t self_in) {
  324. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(self_in);
  325. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  326. if (i2c_p->start == NULL) {
  327. mp_raise_msg(&mp_type_OSError, "I2C operation not supported");
  328. }
  329. int ret = i2c_p->start(self);
  330. if (ret != 0) {
  331. mp_raise_OSError(-ret);
  332. }
  333. return mp_const_none;
  334. }
  335. MP_DEFINE_CONST_FUN_OBJ_1(machine_i2c_start_obj, machine_i2c_start);
  336. STATIC mp_obj_t machine_i2c_stop(mp_obj_t self_in) {
  337. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(self_in);
  338. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  339. if (i2c_p->stop == NULL) {
  340. mp_raise_msg(&mp_type_OSError, "I2C operation not supported");
  341. }
  342. int ret = i2c_p->stop(self);
  343. if (ret != 0) {
  344. mp_raise_OSError(-ret);
  345. }
  346. return mp_const_none;
  347. }
  348. MP_DEFINE_CONST_FUN_OBJ_1(machine_i2c_stop_obj, machine_i2c_stop);
  349. STATIC mp_obj_t machine_i2c_readinto(size_t n_args, const mp_obj_t *args) {
  350. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(args[0]);
  351. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  352. if (i2c_p->read == NULL) {
  353. mp_raise_msg(&mp_type_OSError, "I2C operation not supported");
  354. }
  355. // get the buffer to read into
  356. mp_buffer_info_t bufinfo;
  357. mp_get_buffer_raise(args[1], &bufinfo, MP_BUFFER_WRITE);
  358. // work out if we want to send a nack at the end
  359. bool nack = (n_args == 2) ? true : mp_obj_is_true(args[2]);
  360. // do the read
  361. int ret = i2c_p->read(self, bufinfo.buf, bufinfo.len, nack);
  362. if (ret != 0) {
  363. mp_raise_OSError(-ret);
  364. }
  365. return mp_const_none;
  366. }
  367. MP_DEFINE_CONST_FUN_OBJ_VAR_BETWEEN(machine_i2c_readinto_obj, 2, 3, machine_i2c_readinto);
  368. STATIC mp_obj_t machine_i2c_write(mp_obj_t self_in, mp_obj_t buf_in) {
  369. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(self_in);
  370. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  371. if (i2c_p->write == NULL) {
  372. mp_raise_msg(&mp_type_OSError, "I2C operation not supported");
  373. }
  374. // get the buffer to write from
  375. mp_buffer_info_t bufinfo;
  376. mp_get_buffer_raise(buf_in, &bufinfo, MP_BUFFER_READ);
  377. // do the write
  378. int ret = i2c_p->write(self, bufinfo.buf, bufinfo.len);
  379. if (ret < 0) {
  380. mp_raise_OSError(-ret);
  381. }
  382. // return number of acks received
  383. return MP_OBJ_NEW_SMALL_INT(ret);
  384. }
  385. MP_DEFINE_CONST_FUN_OBJ_2(machine_i2c_write_obj, machine_i2c_write);
  386. STATIC mp_obj_t machine_i2c_readfrom(size_t n_args, const mp_obj_t *args) {
  387. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(args[0]);
  388. mp_int_t addr = mp_obj_get_int(args[1]);
  389. vstr_t vstr;
  390. vstr_init_len(&vstr, mp_obj_get_int(args[2]));
  391. bool stop = (n_args == 3) ? true : mp_obj_is_true(args[3]);
  392. int ret = mp_machine_i2c_readfrom(self, addr, (uint8_t*)vstr.buf, vstr.len, stop);
  393. if (ret < 0) {
  394. mp_raise_OSError(-ret);
  395. }
  396. return mp_obj_new_str_from_vstr(&mp_type_bytes, &vstr);
  397. }
  398. MP_DEFINE_CONST_FUN_OBJ_VAR_BETWEEN(machine_i2c_readfrom_obj, 3, 4, machine_i2c_readfrom);
  399. STATIC mp_obj_t machine_i2c_readfrom_into(size_t n_args, const mp_obj_t *args) {
  400. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(args[0]);
  401. mp_int_t addr = mp_obj_get_int(args[1]);
  402. mp_buffer_info_t bufinfo;
  403. mp_get_buffer_raise(args[2], &bufinfo, MP_BUFFER_WRITE);
  404. bool stop = (n_args == 3) ? true : mp_obj_is_true(args[3]);
  405. int ret = mp_machine_i2c_readfrom(self, addr, bufinfo.buf, bufinfo.len, stop);
  406. if (ret < 0) {
  407. mp_raise_OSError(-ret);
  408. }
  409. return mp_const_none;
  410. }
  411. MP_DEFINE_CONST_FUN_OBJ_VAR_BETWEEN(machine_i2c_readfrom_into_obj, 3, 4, machine_i2c_readfrom_into);
  412. STATIC mp_obj_t machine_i2c_writeto(size_t n_args, const mp_obj_t *args) {
  413. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(args[0]);
  414. mp_int_t addr = mp_obj_get_int(args[1]);
  415. mp_buffer_info_t bufinfo;
  416. mp_get_buffer_raise(args[2], &bufinfo, MP_BUFFER_READ);
  417. bool stop = (n_args == 3) ? true : mp_obj_is_true(args[3]);
  418. int ret = mp_machine_i2c_writeto(self, addr, bufinfo.buf, bufinfo.len, stop);
  419. if (ret < 0) {
  420. mp_raise_OSError(-ret);
  421. }
  422. // return number of acks received
  423. return MP_OBJ_NEW_SMALL_INT(ret);
  424. }
  425. STATIC MP_DEFINE_CONST_FUN_OBJ_VAR_BETWEEN(machine_i2c_writeto_obj, 3, 4, machine_i2c_writeto);
  426. STATIC mp_obj_t machine_i2c_writevto(size_t n_args, const mp_obj_t *args) {
  427. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(args[0]);
  428. mp_int_t addr = mp_obj_get_int(args[1]);
  429. // Get the list of data buffer(s) to write
  430. size_t nitems;
  431. const mp_obj_t *items;
  432. mp_obj_get_array(args[2], &nitems, (mp_obj_t**)&items);
  433. // Get the stop argument
  434. bool stop = (n_args == 3) ? true : mp_obj_is_true(args[3]);
  435. // Extract all buffer data, skipping zero-length buffers
  436. size_t alloc = nitems == 0 ? 1 : nitems;
  437. size_t nbufs = 0;
  438. mp_machine_i2c_buf_t *bufs = mp_local_alloc(alloc * sizeof(mp_machine_i2c_buf_t));
  439. for (; nitems--; ++items) {
  440. mp_buffer_info_t bufinfo;
  441. mp_get_buffer_raise(*items, &bufinfo, MP_BUFFER_READ);
  442. if (bufinfo.len > 0) {
  443. bufs[nbufs].len = bufinfo.len;
  444. bufs[nbufs++].buf = bufinfo.buf;
  445. }
  446. }
  447. // Make sure there is at least one buffer, empty if needed
  448. if (nbufs == 0) {
  449. bufs[0].len = 0;
  450. bufs[0].buf = NULL;
  451. nbufs = 1;
  452. }
  453. // Do the I2C transfer
  454. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  455. int ret = i2c_p->transfer(self, addr, nbufs, bufs, stop ? MP_MACHINE_I2C_FLAG_STOP : 0);
  456. mp_local_free(bufs);
  457. if (ret < 0) {
  458. mp_raise_OSError(-ret);
  459. }
  460. // Return number of acks received
  461. return MP_OBJ_NEW_SMALL_INT(ret);
  462. }
  463. STATIC MP_DEFINE_CONST_FUN_OBJ_VAR_BETWEEN(machine_i2c_writevto_obj, 3, 4, machine_i2c_writevto);
  464. STATIC int read_mem(mp_obj_t self_in, uint16_t addr, uint32_t memaddr, uint8_t addrsize, uint8_t *buf, size_t len) {
  465. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(self_in);
  466. uint8_t memaddr_buf[4];
  467. size_t memaddr_len = 0;
  468. for (int16_t i = addrsize - 8; i >= 0; i -= 8) {
  469. memaddr_buf[memaddr_len++] = memaddr >> i;
  470. }
  471. int ret = mp_machine_i2c_writeto(self, addr, memaddr_buf, memaddr_len, false);
  472. if (ret != memaddr_len) {
  473. // must generate STOP
  474. mp_machine_i2c_writeto(self, addr, NULL, 0, true);
  475. return ret;
  476. }
  477. return mp_machine_i2c_readfrom(self, addr, buf, len, true);
  478. }
  479. STATIC int write_mem(mp_obj_t self_in, uint16_t addr, uint32_t memaddr, uint8_t addrsize, const uint8_t *buf, size_t len) {
  480. mp_obj_base_t *self = (mp_obj_base_t*)MP_OBJ_TO_PTR(self_in);
  481. // Create buffer with memory address
  482. size_t memaddr_len = 0;
  483. uint8_t memaddr_buf[4];
  484. for (int16_t i = addrsize - 8; i >= 0; i -= 8) {
  485. memaddr_buf[memaddr_len++] = memaddr >> i;
  486. }
  487. // Create partial write buffers
  488. mp_machine_i2c_buf_t bufs[2] = {
  489. {.len = memaddr_len, .buf = memaddr_buf},
  490. {.len = len, .buf = (uint8_t*)buf},
  491. };
  492. // Do I2C transfer
  493. mp_machine_i2c_p_t *i2c_p = (mp_machine_i2c_p_t*)self->type->protocol;
  494. return i2c_p->transfer(self, addr, 2, bufs, MP_MACHINE_I2C_FLAG_STOP);
  495. }
  496. STATIC const mp_arg_t machine_i2c_mem_allowed_args[] = {
  497. { MP_QSTR_addr, MP_ARG_REQUIRED | MP_ARG_INT, {.u_int = 0} },
  498. { MP_QSTR_memaddr, MP_ARG_REQUIRED | MP_ARG_INT, {.u_int = 0} },
  499. { MP_QSTR_arg, MP_ARG_REQUIRED | MP_ARG_OBJ, {.u_obj = MP_OBJ_NULL} },
  500. { MP_QSTR_addrsize, MP_ARG_KW_ONLY | MP_ARG_INT, {.u_int = 8} },
  501. };
  502. STATIC mp_obj_t machine_i2c_readfrom_mem(size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
  503. enum { ARG_addr, ARG_memaddr, ARG_n, ARG_addrsize };
  504. mp_arg_val_t args[MP_ARRAY_SIZE(machine_i2c_mem_allowed_args)];
  505. mp_arg_parse_all(n_args - 1, pos_args + 1, kw_args,
  506. MP_ARRAY_SIZE(machine_i2c_mem_allowed_args), machine_i2c_mem_allowed_args, args);
  507. // create the buffer to store data into
  508. vstr_t vstr;
  509. vstr_init_len(&vstr, mp_obj_get_int(args[ARG_n].u_obj));
  510. // do the transfer
  511. int ret = read_mem(pos_args[0], args[ARG_addr].u_int, args[ARG_memaddr].u_int,
  512. args[ARG_addrsize].u_int, (uint8_t*)vstr.buf, vstr.len);
  513. if (ret < 0) {
  514. mp_raise_OSError(-ret);
  515. }
  516. return mp_obj_new_str_from_vstr(&mp_type_bytes, &vstr);
  517. }
  518. MP_DEFINE_CONST_FUN_OBJ_KW(machine_i2c_readfrom_mem_obj, 1, machine_i2c_readfrom_mem);
  519. STATIC mp_obj_t machine_i2c_readfrom_mem_into(size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
  520. enum { ARG_addr, ARG_memaddr, ARG_buf, ARG_addrsize };
  521. mp_arg_val_t args[MP_ARRAY_SIZE(machine_i2c_mem_allowed_args)];
  522. mp_arg_parse_all(n_args - 1, pos_args + 1, kw_args,
  523. MP_ARRAY_SIZE(machine_i2c_mem_allowed_args), machine_i2c_mem_allowed_args, args);
  524. // get the buffer to store data into
  525. mp_buffer_info_t bufinfo;
  526. mp_get_buffer_raise(args[ARG_buf].u_obj, &bufinfo, MP_BUFFER_WRITE);
  527. // do the transfer
  528. int ret = read_mem(pos_args[0], args[ARG_addr].u_int, args[ARG_memaddr].u_int,
  529. args[ARG_addrsize].u_int, bufinfo.buf, bufinfo.len);
  530. if (ret < 0) {
  531. mp_raise_OSError(-ret);
  532. }
  533. return mp_const_none;
  534. }
  535. MP_DEFINE_CONST_FUN_OBJ_KW(machine_i2c_readfrom_mem_into_obj, 1, machine_i2c_readfrom_mem_into);
  536. STATIC mp_obj_t machine_i2c_writeto_mem(size_t n_args, const mp_obj_t *pos_args, mp_map_t *kw_args) {
  537. enum { ARG_addr, ARG_memaddr, ARG_buf, ARG_addrsize };
  538. mp_arg_val_t args[MP_ARRAY_SIZE(machine_i2c_mem_allowed_args)];
  539. mp_arg_parse_all(n_args - 1, pos_args + 1, kw_args,
  540. MP_ARRAY_SIZE(machine_i2c_mem_allowed_args), machine_i2c_mem_allowed_args, args);
  541. // get the buffer to write the data from
  542. mp_buffer_info_t bufinfo;
  543. mp_get_buffer_raise(args[ARG_buf].u_obj, &bufinfo, MP_BUFFER_READ);
  544. // do the transfer
  545. int ret = write_mem(pos_args[0], args[ARG_addr].u_int, args[ARG_memaddr].u_int,
  546. args[ARG_addrsize].u_int, bufinfo.buf, bufinfo.len);
  547. if (ret < 0) {
  548. mp_raise_OSError(-ret);
  549. }
  550. return mp_const_none;
  551. }
  552. STATIC MP_DEFINE_CONST_FUN_OBJ_KW(machine_i2c_writeto_mem_obj, 1, machine_i2c_writeto_mem);
  553. STATIC const mp_rom_map_elem_t machine_i2c_locals_dict_table[] = {
  554. { MP_ROM_QSTR(MP_QSTR_init), MP_ROM_PTR(&machine_i2c_init_obj) },
  555. { MP_ROM_QSTR(MP_QSTR_scan), MP_ROM_PTR(&machine_i2c_scan_obj) },
  556. // primitive I2C operations
  557. { MP_ROM_QSTR(MP_QSTR_start), MP_ROM_PTR(&machine_i2c_start_obj) },
  558. { MP_ROM_QSTR(MP_QSTR_stop), MP_ROM_PTR(&machine_i2c_stop_obj) },
  559. { MP_ROM_QSTR(MP_QSTR_readinto), MP_ROM_PTR(&machine_i2c_readinto_obj) },
  560. { MP_ROM_QSTR(MP_QSTR_write), MP_ROM_PTR(&machine_i2c_write_obj) },
  561. // standard bus operations
  562. { MP_ROM_QSTR(MP_QSTR_readfrom), MP_ROM_PTR(&machine_i2c_readfrom_obj) },
  563. { MP_ROM_QSTR(MP_QSTR_readfrom_into), MP_ROM_PTR(&machine_i2c_readfrom_into_obj) },
  564. { MP_ROM_QSTR(MP_QSTR_writeto), MP_ROM_PTR(&machine_i2c_writeto_obj) },
  565. { MP_ROM_QSTR(MP_QSTR_writevto), MP_ROM_PTR(&machine_i2c_writevto_obj) },
  566. // memory operations
  567. { MP_ROM_QSTR(MP_QSTR_readfrom_mem), MP_ROM_PTR(&machine_i2c_readfrom_mem_obj) },
  568. { MP_ROM_QSTR(MP_QSTR_readfrom_mem_into), MP_ROM_PTR(&machine_i2c_readfrom_mem_into_obj) },
  569. { MP_ROM_QSTR(MP_QSTR_writeto_mem), MP_ROM_PTR(&machine_i2c_writeto_mem_obj) },
  570. };
  571. MP_DEFINE_CONST_DICT(mp_machine_soft_i2c_locals_dict, machine_i2c_locals_dict_table);
  572. int mp_machine_soft_i2c_read(mp_obj_base_t *self_in, uint8_t *dest, size_t len, bool nack) {
  573. machine_i2c_obj_t *self = (machine_i2c_obj_t*)self_in;
  574. while (len--) {
  575. int ret = mp_hal_i2c_read_byte(self, dest++, nack && (len == 0));
  576. if (ret != 0) {
  577. return ret;
  578. }
  579. }
  580. return 0; // success
  581. }
  582. int mp_machine_soft_i2c_write(mp_obj_base_t *self_in, const uint8_t *src, size_t len) {
  583. machine_i2c_obj_t *self = (machine_i2c_obj_t*)self_in;
  584. int num_acks = 0;
  585. while (len--) {
  586. int ret = mp_hal_i2c_write_byte(self, *src++);
  587. if (ret < 0) {
  588. return ret;
  589. } else if (ret != 0) {
  590. // nack received, stop sending
  591. break;
  592. }
  593. ++num_acks;
  594. }
  595. return num_acks;
  596. }
  597. STATIC const mp_machine_i2c_p_t mp_machine_soft_i2c_p = {
  598. .start = (int(*)(mp_obj_base_t*))mp_hal_i2c_start,
  599. .stop = (int(*)(mp_obj_base_t*))mp_hal_i2c_stop,
  600. .read = mp_machine_soft_i2c_read,
  601. .write = mp_machine_soft_i2c_write,
  602. .transfer = mp_machine_soft_i2c_transfer,
  603. };
  604. const mp_obj_type_t machine_i2c_type = {
  605. { &mp_type_type },
  606. .name = MP_QSTR_I2C,
  607. .make_new = machine_i2c_make_new,
  608. .protocol = &mp_machine_soft_i2c_p,
  609. .locals_dict = (mp_obj_dict_t*)&mp_machine_soft_i2c_locals_dict,
  610. };
  611. #endif // MICROPY_PY_MACHINE_I2C