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ymodem.c 11 KB

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  1. /*
  2. * COPYRIGHT (C) 2012, Real-Thread Information Technology Ltd
  3. * All rights reserved
  4. *
  5. * SPDX-License-Identifier: Apache-2.0
  6. *
  7. * Change Logs:
  8. * Date Author Notes
  9. * 2013-04-14 Grissiom initial implementation
  10. */
  11. #include <rthw.h>
  12. #include "ymodem.h"
  13. static const rt_uint16_t ccitt_table[256] = {
  14. 0x0000, 0x1021, 0x2042, 0x3063, 0x4084, 0x50A5, 0x60C6, 0x70E7,
  15. 0x8108, 0x9129, 0xA14A, 0xB16B, 0xC18C, 0xD1AD, 0xE1CE, 0xF1EF,
  16. 0x1231, 0x0210, 0x3273, 0x2252, 0x52B5, 0x4294, 0x72F7, 0x62D6,
  17. 0x9339, 0x8318, 0xB37B, 0xA35A, 0xD3BD, 0xC39C, 0xF3FF, 0xE3DE,
  18. 0x2462, 0x3443, 0x0420, 0x1401, 0x64E6, 0x74C7, 0x44A4, 0x5485,
  19. 0xA56A, 0xB54B, 0x8528, 0x9509, 0xE5EE, 0xF5CF, 0xC5AC, 0xD58D,
  20. 0x3653, 0x2672, 0x1611, 0x0630, 0x76D7, 0x66F6, 0x5695, 0x46B4,
  21. 0xB75B, 0xA77A, 0x9719, 0x8738, 0xF7DF, 0xE7FE, 0xD79D, 0xC7BC,
  22. 0x48C4, 0x58E5, 0x6886, 0x78A7, 0x0840, 0x1861, 0x2802, 0x3823,
  23. 0xC9CC, 0xD9ED, 0xE98E, 0xF9AF, 0x8948, 0x9969, 0xA90A, 0xB92B,
  24. 0x5AF5, 0x4AD4, 0x7AB7, 0x6A96, 0x1A71, 0x0A50, 0x3A33, 0x2A12,
  25. 0xDBFD, 0xCBDC, 0xFBBF, 0xEB9E, 0x9B79, 0x8B58, 0xBB3B, 0xAB1A,
  26. 0x6CA6, 0x7C87, 0x4CE4, 0x5CC5, 0x2C22, 0x3C03, 0x0C60, 0x1C41,
  27. 0xEDAE, 0xFD8F, 0xCDEC, 0xDDCD, 0xAD2A, 0xBD0B, 0x8D68, 0x9D49,
  28. 0x7E97, 0x6EB6, 0x5ED5, 0x4EF4, 0x3E13, 0x2E32, 0x1E51, 0x0E70,
  29. 0xFF9F, 0xEFBE, 0xDFDD, 0xCFFC, 0xBF1B, 0xAF3A, 0x9F59, 0x8F78,
  30. 0x9188, 0x81A9, 0xB1CA, 0xA1EB, 0xD10C, 0xC12D, 0xF14E, 0xE16F,
  31. 0x1080, 0x00A1, 0x30C2, 0x20E3, 0x5004, 0x4025, 0x7046, 0x6067,
  32. 0x83B9, 0x9398, 0xA3FB, 0xB3DA, 0xC33D, 0xD31C, 0xE37F, 0xF35E,
  33. 0x02B1, 0x1290, 0x22F3, 0x32D2, 0x4235, 0x5214, 0x6277, 0x7256,
  34. 0xB5EA, 0xA5CB, 0x95A8, 0x8589, 0xF56E, 0xE54F, 0xD52C, 0xC50D,
  35. 0x34E2, 0x24C3, 0x14A0, 0x0481, 0x7466, 0x6447, 0x5424, 0x4405,
  36. 0xA7DB, 0xB7FA, 0x8799, 0x97B8, 0xE75F, 0xF77E, 0xC71D, 0xD73C,
  37. 0x26D3, 0x36F2, 0x0691, 0x16B0, 0x6657, 0x7676, 0x4615, 0x5634,
  38. 0xD94C, 0xC96D, 0xF90E, 0xE92F, 0x99C8, 0x89E9, 0xB98A, 0xA9AB,
  39. 0x5844, 0x4865, 0x7806, 0x6827, 0x18C0, 0x08E1, 0x3882, 0x28A3,
  40. 0xCB7D, 0xDB5C, 0xEB3F, 0xFB1E, 0x8BF9, 0x9BD8, 0xABBB, 0xBB9A,
  41. 0x4A75, 0x5A54, 0x6A37, 0x7A16, 0x0AF1, 0x1AD0, 0x2AB3, 0x3A92,
  42. 0xFD2E, 0xED0F, 0xDD6C, 0xCD4D, 0xBDAA, 0xAD8B, 0x9DE8, 0x8DC9,
  43. 0x7C26, 0x6C07, 0x5C64, 0x4C45, 0x3CA2, 0x2C83, 0x1CE0, 0x0CC1,
  44. 0xEF1F, 0xFF3E, 0xCF5D, 0xDF7C, 0xAF9B, 0xBFBA, 0x8FD9, 0x9FF8,
  45. 0x6E17, 0x7E36, 0x4E55, 0x5E74, 0x2E93, 0x3EB2, 0x0ED1, 0x1EF0
  46. };
  47. rt_uint16_t CRC16(unsigned char *q, int len)
  48. {
  49. rt_uint16_t crc = 0;
  50. while (len-- > 0)
  51. crc = (crc << 8) ^ ccitt_table[((crc >> 8) ^ *q++) & 0xff];
  52. return crc;
  53. }
  54. // we could only use global varible because we could not use
  55. // rt_device_t->user_data(it is used by the serial driver)...
  56. static struct rym_ctx *_rym_the_ctx;
  57. static rt_err_t _rym_rx_ind(rt_device_t dev, rt_size_t size)
  58. {
  59. return rt_sem_release(&_rym_the_ctx->sem);
  60. }
  61. /* SOH/STX + seq + payload + crc */
  62. #define _RYM_SOH_PKG_SZ (1+2+128+2)
  63. #define _RYM_STX_PKG_SZ (1+2+1024+2)
  64. static enum rym_code _rym_read_code(
  65. struct rym_ctx *ctx,
  66. rt_tick_t timeout)
  67. {
  68. /* Fast path */
  69. if (rt_device_read(ctx->dev, 0, ctx->buf, 1) == 1)
  70. return (enum rym_code)(*ctx->buf);
  71. /* Slow path */
  72. do {
  73. rt_size_t rsz;
  74. /* No data yet, wait for one */
  75. if (rt_sem_take(&ctx->sem, timeout) != RT_EOK)
  76. return RYM_CODE_NONE;
  77. /* Try to read one */
  78. rsz = rt_device_read(ctx->dev, 0, ctx->buf, 1);
  79. if (rsz == 1)
  80. return (enum rym_code)(*ctx->buf);
  81. } while (1);
  82. }
  83. /* the caller should at least alloc _RYM_STX_PKG_SZ buffer */
  84. static rt_size_t _rym_read_data(
  85. struct rym_ctx *ctx,
  86. rt_size_t len)
  87. {
  88. /* we should already have had the code */
  89. rt_uint8_t *buf = ctx->buf + 1;
  90. rt_size_t readlen = 0;
  91. do
  92. {
  93. readlen += rt_device_read(ctx->dev,
  94. 0, buf+readlen, len-readlen);
  95. if (readlen >= len)
  96. return readlen;
  97. } while (rt_sem_take(&ctx->sem, RYM_WAIT_CHR_TICK) == RT_EOK);
  98. return readlen;
  99. }
  100. static rt_size_t _rym_putchar(struct rym_ctx *ctx, rt_uint8_t code)
  101. {
  102. rt_device_write(ctx->dev, 0, &code, sizeof(code));
  103. return 1;
  104. }
  105. static rt_err_t _rym_do_handshake(
  106. struct rym_ctx *ctx,
  107. int tm_sec)
  108. {
  109. enum rym_code code;
  110. rt_size_t i;
  111. rt_uint16_t recv_crc, cal_crc;
  112. rt_size_t data_sz;
  113. ctx->stage = RYM_STAGE_ESTABLISHING;
  114. /* send C every second, so the sender could know we are waiting for it. */
  115. for (i = 0; i < tm_sec; i++)
  116. {
  117. _rym_putchar(ctx, RYM_CODE_C);
  118. code = _rym_read_code(ctx,
  119. RYM_CHD_INTV_TICK);
  120. if (code == RYM_CODE_SOH)
  121. {
  122. data_sz = _RYM_SOH_PKG_SZ;
  123. break;
  124. }
  125. else if(code == RYM_CODE_STX)
  126. {
  127. data_sz = _RYM_STX_PKG_SZ;
  128. break;
  129. }
  130. }
  131. if (i == tm_sec)
  132. {
  133. return -RYM_ERR_TMO;
  134. }
  135. i = _rym_read_data(ctx, data_sz-1);
  136. if (i != (data_sz-1))
  137. return -RYM_ERR_DSZ;
  138. /* sanity check */
  139. if (ctx->buf[1] != 0 || ctx->buf[2] != 0xFF)
  140. return -RYM_ERR_SEQ;
  141. recv_crc = (rt_uint16_t)(*(ctx->buf+data_sz-2) << 8) | *(ctx->buf+data_sz-1);
  142. cal_crc = CRC16(ctx->buf+3, data_sz-5);
  143. if (recv_crc != cal_crc)
  144. return -RYM_ERR_CRC;
  145. /* congratulations, check passed. */
  146. if (ctx->on_begin && ctx->on_begin(ctx, ctx->buf+3, data_sz-5) != RYM_CODE_ACK)
  147. return -RYM_ERR_CAN;
  148. return RT_EOK;
  149. }
  150. static rt_err_t _rym_trans_data(
  151. struct rym_ctx *ctx,
  152. rt_size_t data_sz,
  153. enum rym_code *code)
  154. {
  155. const rt_size_t tsz = 2+data_sz+2;
  156. rt_uint16_t recv_crc;
  157. /* seq + data + crc */
  158. rt_size_t i = _rym_read_data(ctx, tsz);
  159. if (i != tsz)
  160. return -RYM_ERR_DSZ;
  161. if ((ctx->buf[1] + ctx->buf[2]) != 0xFF)
  162. {
  163. return -RYM_ERR_SEQ;
  164. }
  165. /* As we are sending C continuously, there is a chance that the
  166. * sender(remote) receive an C after sending the first handshake package.
  167. * So the sender will interpret it as NAK and re-send the package. So we
  168. * just ignore it and proceed. */
  169. if (ctx->stage == RYM_STAGE_ESTABLISHED && ctx->buf[1] == 0x00)
  170. {
  171. *code = RYM_CODE_NONE;
  172. return RT_EOK;
  173. }
  174. ctx->stage = RYM_STAGE_TRANSMITTING;
  175. /* sanity check */
  176. recv_crc = (rt_uint16_t)(*(ctx->buf+tsz-1) << 8) | *(ctx->buf+tsz);
  177. if (recv_crc != CRC16(ctx->buf+3, data_sz))
  178. return -RYM_ERR_CRC;
  179. /* congratulations, check passed. */
  180. if (ctx->on_data)
  181. *code = ctx->on_data(ctx, ctx->buf+3, data_sz);
  182. else
  183. *code = RYM_CODE_ACK;
  184. return RT_EOK;
  185. }
  186. static rt_err_t _rym_do_trans(struct rym_ctx *ctx)
  187. {
  188. _rym_putchar(ctx, RYM_CODE_ACK);
  189. _rym_putchar(ctx, RYM_CODE_C);
  190. ctx->stage = RYM_STAGE_ESTABLISHED;
  191. while (1)
  192. {
  193. rt_err_t err;
  194. enum rym_code code;
  195. rt_size_t data_sz, i;
  196. code = _rym_read_code(ctx,
  197. RYM_WAIT_PKG_TICK);
  198. switch (code)
  199. {
  200. case RYM_CODE_SOH:
  201. data_sz = 128;
  202. break;
  203. case RYM_CODE_STX:
  204. data_sz = 1024;
  205. break;
  206. case RYM_CODE_EOT:
  207. return RT_EOK;
  208. default:
  209. return -RYM_ERR_CODE;
  210. };
  211. err = _rym_trans_data(ctx, data_sz, &code);
  212. if (err != RT_EOK)
  213. return err;
  214. switch (code)
  215. {
  216. case RYM_CODE_CAN:
  217. /* the spec require multiple CAN */
  218. for (i = 0; i < RYM_END_SESSION_SEND_CAN_NUM; i++) {
  219. _rym_putchar(ctx, RYM_CODE_CAN);
  220. }
  221. return -RYM_ERR_CAN;
  222. case RYM_CODE_ACK:
  223. _rym_putchar(ctx, RYM_CODE_ACK);
  224. break;
  225. default:
  226. // wrong code
  227. break;
  228. };
  229. }
  230. }
  231. static rt_err_t _rym_do_fin(struct rym_ctx *ctx)
  232. {
  233. enum rym_code code;
  234. rt_uint16_t recv_crc;
  235. rt_size_t i;
  236. ctx->stage = RYM_STAGE_FINISHING;
  237. /* we already got one EOT in the caller. invoke the callback if there is
  238. * one. */
  239. if (ctx->on_end)
  240. ctx->on_end(ctx, ctx->buf+3, 128);
  241. _rym_putchar(ctx, RYM_CODE_NAK);
  242. code = _rym_read_code(ctx, RYM_WAIT_PKG_TICK);
  243. if (code != RYM_CODE_EOT)
  244. return -RYM_ERR_CODE;
  245. _rym_putchar(ctx, RYM_CODE_ACK);
  246. _rym_putchar(ctx, RYM_CODE_C);
  247. code = _rym_read_code(ctx, RYM_WAIT_PKG_TICK);
  248. if (code != RYM_CODE_SOH)
  249. return -RYM_ERR_CODE;
  250. i = _rym_read_data(ctx, _RYM_SOH_PKG_SZ-1);
  251. if (i != (_RYM_SOH_PKG_SZ-1))
  252. return -RYM_ERR_DSZ;
  253. /* sanity check
  254. *
  255. * TODO: multiple files transmission
  256. */
  257. if (ctx->buf[1] != 0 || ctx->buf[2] != 0xFF)
  258. return -RYM_ERR_SEQ;
  259. recv_crc = (rt_uint16_t)(*(ctx->buf+_RYM_SOH_PKG_SZ-2) << 8) | *(ctx->buf+_RYM_SOH_PKG_SZ-1);
  260. if (recv_crc != CRC16(ctx->buf+3, _RYM_SOH_PKG_SZ-5))
  261. return -RYM_ERR_CRC;
  262. /* congratulations, check passed. */
  263. ctx->stage = RYM_STAGE_FINISHED;
  264. /* put the last ACK */
  265. _rym_putchar(ctx, RYM_CODE_ACK);
  266. return RT_EOK;
  267. }
  268. static rt_err_t _rym_do_recv(
  269. struct rym_ctx *ctx,
  270. int handshake_timeout)
  271. {
  272. rt_err_t err;
  273. ctx->stage = RYM_STAGE_NONE;
  274. ctx->buf = rt_malloc(_RYM_STX_PKG_SZ);
  275. if (ctx->buf == RT_NULL)
  276. return -RT_ENOMEM;
  277. err = _rym_do_handshake(ctx, handshake_timeout);
  278. if (err != RT_EOK)
  279. return err;
  280. err = _rym_do_trans(ctx);
  281. if (err != RT_EOK)
  282. return err;
  283. return _rym_do_fin(ctx);
  284. }
  285. rt_err_t rym_recv_on_device(
  286. struct rym_ctx *ctx,
  287. rt_device_t dev,
  288. rt_uint16_t oflag,
  289. rym_callback on_begin,
  290. rym_callback on_data,
  291. rym_callback on_end,
  292. int handshake_timeout)
  293. {
  294. rt_err_t res;
  295. rt_err_t (*odev_rx_ind)(rt_device_t dev, rt_size_t size);
  296. rt_uint16_t odev_flag;
  297. int int_lvl;
  298. RT_ASSERT(_rym_the_ctx == 0);
  299. _rym_the_ctx = ctx;
  300. ctx->on_begin = on_begin;
  301. ctx->on_data = on_data;
  302. ctx->on_end = on_end;
  303. ctx->dev = dev;
  304. rt_sem_init(&ctx->sem, "rymsem", 0, RT_IPC_FLAG_FIFO);
  305. odev_rx_ind = dev->rx_indicate;
  306. /* no data should be received before the device has been fully setted up.
  307. */
  308. int_lvl = rt_hw_interrupt_disable();
  309. rt_device_set_rx_indicate(dev, _rym_rx_ind);
  310. odev_flag = dev->flag;
  311. /* make sure the device don't change the content. */
  312. dev->flag &= ~RT_DEVICE_FLAG_STREAM;
  313. rt_hw_interrupt_enable(int_lvl);
  314. res = rt_device_open(dev, oflag);
  315. if (res != RT_EOK)
  316. goto __exit;
  317. res = _rym_do_recv(ctx, handshake_timeout);
  318. rt_device_close(dev);
  319. __exit:
  320. /* no rx_ind should be called before the callback has been fully detached.
  321. */
  322. int_lvl = rt_hw_interrupt_disable();
  323. rt_sem_detach(&ctx->sem);
  324. dev->flag = odev_flag;
  325. rt_device_set_rx_indicate(dev, odev_rx_ind);
  326. rt_hw_interrupt_enable(int_lvl);
  327. rt_free(ctx->buf);
  328. _rym_the_ctx = RT_NULL;
  329. return res;
  330. }