serial.c 40 KB

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  1. /*
  2. * Copyright (c) 2006-2021, RT-Thread Development Team
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. *
  6. * Change Logs:
  7. * Date Author Notes
  8. * 2006-03-13 bernard first version
  9. * 2012-05-15 lgnq modified according bernard's implementation.
  10. * 2012-05-28 bernard code cleanup
  11. * 2012-11-23 bernard fix compiler warning.
  12. * 2013-02-20 bernard use RT_SERIAL_RB_BUFSZ to define
  13. * the size of ring buffer.
  14. * 2014-07-10 bernard rewrite serial framework
  15. * 2014-12-31 bernard use open_flag for poll_tx stream mode.
  16. * 2015-05-19 Quintin fix DMA tx mod tx_dma->activated flag !=RT_FALSE BUG
  17. * in open function.
  18. * 2015-11-10 bernard fix the poll rx issue when there is no data.
  19. * 2016-05-10 armink add fifo mode to DMA rx when serial->config.bufsz != 0.
  20. * 2017-01-19 aubr.cool prevent change serial rx bufsz when serial is opened.
  21. * 2017-11-07 JasonJia fix data bits error issue when using tcsetattr.
  22. * 2017-11-15 JasonJia fix poll rx issue when data is full.
  23. * add TCFLSH and FIONREAD support.
  24. * 2018-12-08 Ernest Chen add DMA choice
  25. * 2020-09-14 WillianChan add a line feed to the carriage return character
  26. * when using interrupt tx
  27. * 2020-12-14 Meco Man implement function of setting window's size(TIOCSWINSZ)
  28. * 2021-08-22 Meco Man implement function of getting window's size(TIOCGWINSZ)
  29. */
  30. #include <rthw.h>
  31. #include <rtthread.h>
  32. #include <rtdevice.h>
  33. #define DBG_TAG "UART"
  34. #define DBG_LVL DBG_INFO
  35. #include <rtdbg.h>
  36. #ifdef RT_USING_POSIX_STDIO
  37. #include <dfs_file.h>
  38. #include <fcntl.h>
  39. #include <unistd.h>
  40. #include <poll.h>
  41. #include <sys/ioctl.h>
  42. #ifdef RT_USING_POSIX_TERMIOS
  43. #include <termios.h>
  44. #endif
  45. /* it's possible the 'getc/putc' is defined by stdio.h in gcc/newlib. */
  46. #ifdef getc
  47. #undef getc
  48. #endif
  49. #ifdef putc
  50. #undef putc
  51. #endif
  52. static rt_err_t serial_fops_rx_ind(rt_device_t dev, rt_size_t size)
  53. {
  54. rt_wqueue_wakeup(&(dev->wait_queue), (void*)POLLIN);
  55. return RT_EOK;
  56. }
  57. /* fops for serial */
  58. static int serial_fops_open(struct dfs_fd *fd)
  59. {
  60. rt_err_t ret = 0;
  61. rt_uint16_t flags = 0;
  62. rt_device_t device;
  63. device = (rt_device_t)fd->data;
  64. RT_ASSERT(device != RT_NULL);
  65. switch (fd->flags & O_ACCMODE)
  66. {
  67. case O_RDONLY:
  68. LOG_D("fops open: O_RDONLY!");
  69. flags = RT_DEVICE_FLAG_INT_RX | RT_DEVICE_FLAG_RDONLY;
  70. break;
  71. case O_WRONLY:
  72. LOG_D("fops open: O_WRONLY!");
  73. flags = RT_DEVICE_FLAG_WRONLY;
  74. break;
  75. case O_RDWR:
  76. LOG_D("fops open: O_RDWR!");
  77. flags = RT_DEVICE_FLAG_INT_RX | RT_DEVICE_FLAG_RDWR;
  78. break;
  79. default:
  80. LOG_E("fops open: unknown mode - %d!", fd->flags & O_ACCMODE);
  81. break;
  82. }
  83. if ((fd->flags & O_ACCMODE) != O_WRONLY)
  84. rt_device_set_rx_indicate(device, serial_fops_rx_ind);
  85. ret = rt_device_open(device, flags);
  86. if (ret == RT_EOK) return 0;
  87. return ret;
  88. }
  89. static int serial_fops_close(struct dfs_fd *fd)
  90. {
  91. rt_device_t device;
  92. device = (rt_device_t)fd->data;
  93. rt_device_set_rx_indicate(device, RT_NULL);
  94. rt_device_close(device);
  95. return 0;
  96. }
  97. static int serial_fops_ioctl(struct dfs_fd *fd, int cmd, void *args)
  98. {
  99. rt_device_t device;
  100. device = (rt_device_t)fd->data;
  101. switch (cmd)
  102. {
  103. case FIONREAD:
  104. break;
  105. case FIONWRITE:
  106. break;
  107. }
  108. return rt_device_control(device, cmd, args);
  109. }
  110. static int serial_fops_read(struct dfs_fd *fd, void *buf, size_t count)
  111. {
  112. int size = 0;
  113. rt_device_t device;
  114. device = (rt_device_t)fd->data;
  115. do
  116. {
  117. size = rt_device_read(device, -1, buf, count);
  118. if (size <= 0)
  119. {
  120. if (fd->flags & O_NONBLOCK)
  121. {
  122. size = -EAGAIN;
  123. break;
  124. }
  125. rt_wqueue_wait(&(device->wait_queue), 0, RT_WAITING_FOREVER);
  126. }
  127. }while (size <= 0);
  128. return size;
  129. }
  130. static int serial_fops_write(struct dfs_fd *fd, const void *buf, size_t count)
  131. {
  132. rt_device_t device;
  133. device = (rt_device_t)fd->data;
  134. return rt_device_write(device, -1, buf, count);
  135. }
  136. static int serial_fops_poll(struct dfs_fd *fd, struct rt_pollreq *req)
  137. {
  138. int mask = 0;
  139. int flags = 0;
  140. rt_device_t device;
  141. struct rt_serial_device *serial;
  142. device = (rt_device_t)fd->data;
  143. RT_ASSERT(device != RT_NULL);
  144. serial = (struct rt_serial_device *)device;
  145. /* only support POLLIN */
  146. flags = fd->flags & O_ACCMODE;
  147. if (flags == O_RDONLY || flags == O_RDWR)
  148. {
  149. rt_base_t level;
  150. struct rt_serial_rx_fifo* rx_fifo;
  151. rt_poll_add(&(device->wait_queue), req);
  152. rx_fifo = (struct rt_serial_rx_fifo*) serial->serial_rx;
  153. level = rt_hw_interrupt_disable();
  154. if ((rx_fifo->get_index != rx_fifo->put_index) || (rx_fifo->get_index == rx_fifo->put_index && rx_fifo->is_full == RT_TRUE))
  155. mask |= POLLIN;
  156. rt_hw_interrupt_enable(level);
  157. }
  158. return mask;
  159. }
  160. const static struct dfs_file_ops _serial_fops =
  161. {
  162. serial_fops_open,
  163. serial_fops_close,
  164. serial_fops_ioctl,
  165. serial_fops_read,
  166. serial_fops_write,
  167. RT_NULL, /* flush */
  168. RT_NULL, /* lseek */
  169. RT_NULL, /* getdents */
  170. serial_fops_poll,
  171. };
  172. #endif /* RT_USING_POSIX_STDIO */
  173. /*
  174. * Serial poll routines
  175. */
  176. rt_inline int _serial_poll_rx(struct rt_serial_device *serial, rt_uint8_t *data, int length)
  177. {
  178. int ch;
  179. int size;
  180. RT_ASSERT(serial != RT_NULL);
  181. size = length;
  182. while (length)
  183. {
  184. ch = serial->ops->getc(serial);
  185. if (ch == -1) break;
  186. *data = ch;
  187. data ++; length --;
  188. if(serial->parent.open_flag & RT_DEVICE_FLAG_STREAM)
  189. {
  190. if (ch == '\n') break;
  191. }
  192. }
  193. return size - length;
  194. }
  195. rt_inline int _serial_poll_tx(struct rt_serial_device *serial, const rt_uint8_t *data, int length)
  196. {
  197. int size;
  198. RT_ASSERT(serial != RT_NULL);
  199. size = length;
  200. while (length)
  201. {
  202. /*
  203. * to be polite with serial console add a line feed
  204. * to the carriage return character
  205. */
  206. if (*data == '\n' && (serial->parent.open_flag & RT_DEVICE_FLAG_STREAM))
  207. {
  208. serial->ops->putc(serial, '\r');
  209. }
  210. serial->ops->putc(serial, *data);
  211. ++ data;
  212. -- length;
  213. }
  214. return size - length;
  215. }
  216. /*
  217. * Serial interrupt routines
  218. */
  219. rt_inline int _serial_int_rx(struct rt_serial_device *serial, rt_uint8_t *data, int length)
  220. {
  221. int size;
  222. struct rt_serial_rx_fifo* rx_fifo;
  223. RT_ASSERT(serial != RT_NULL);
  224. size = length;
  225. rx_fifo = (struct rt_serial_rx_fifo*) serial->serial_rx;
  226. RT_ASSERT(rx_fifo != RT_NULL);
  227. /* read from software FIFO */
  228. while (length)
  229. {
  230. int ch;
  231. rt_base_t level;
  232. /* disable interrupt */
  233. level = rt_hw_interrupt_disable();
  234. /* there's no data: */
  235. if ((rx_fifo->get_index == rx_fifo->put_index) && (rx_fifo->is_full == RT_FALSE))
  236. {
  237. /* no data, enable interrupt and break out */
  238. rt_hw_interrupt_enable(level);
  239. break;
  240. }
  241. /* otherwise there's the data: */
  242. ch = rx_fifo->buffer[rx_fifo->get_index];
  243. rx_fifo->get_index += 1;
  244. if (rx_fifo->get_index >= serial->config.bufsz) rx_fifo->get_index = 0;
  245. if (rx_fifo->is_full == RT_TRUE)
  246. {
  247. rx_fifo->is_full = RT_FALSE;
  248. }
  249. /* enable interrupt */
  250. rt_hw_interrupt_enable(level);
  251. *data = ch & 0xff;
  252. data ++; length --;
  253. }
  254. return size - length;
  255. }
  256. rt_inline int _serial_int_tx(struct rt_serial_device *serial, const rt_uint8_t *data, int length)
  257. {
  258. int size;
  259. struct rt_serial_tx_fifo *tx;
  260. RT_ASSERT(serial != RT_NULL);
  261. size = length;
  262. tx = (struct rt_serial_tx_fifo*) serial->serial_tx;
  263. RT_ASSERT(tx != RT_NULL);
  264. while (length)
  265. {
  266. /*
  267. * to be polite with serial console add a line feed
  268. * to the carriage return character
  269. */
  270. if (*data == '\n' && (serial->parent.open_flag & RT_DEVICE_FLAG_STREAM))
  271. {
  272. if (serial->ops->putc(serial, '\r') == -1)
  273. {
  274. rt_completion_wait(&(tx->completion), RT_WAITING_FOREVER);
  275. continue;
  276. }
  277. }
  278. if (serial->ops->putc(serial, *(char*)data) == -1)
  279. {
  280. rt_completion_wait(&(tx->completion), RT_WAITING_FOREVER);
  281. continue;
  282. }
  283. data ++; length --;
  284. }
  285. return size - length;
  286. }
  287. static void _serial_check_buffer_size(void)
  288. {
  289. static rt_bool_t already_output = RT_FALSE;
  290. if (already_output == RT_FALSE)
  291. {
  292. #if !defined(RT_USING_ULOG) || defined(ULOG_USING_ISR_LOG)
  293. LOG_W("Warning: There is no enough buffer for saving data,"
  294. " please increase the RT_SERIAL_RB_BUFSZ option.");
  295. #endif
  296. already_output = RT_TRUE;
  297. }
  298. }
  299. #if defined(RT_USING_POSIX_STDIO) || defined(RT_SERIAL_USING_DMA)
  300. static rt_size_t _serial_fifo_calc_recved_len(struct rt_serial_device *serial)
  301. {
  302. struct rt_serial_rx_fifo *rx_fifo = (struct rt_serial_rx_fifo *) serial->serial_rx;
  303. RT_ASSERT(rx_fifo != RT_NULL);
  304. if (rx_fifo->put_index == rx_fifo->get_index)
  305. {
  306. return (rx_fifo->is_full == RT_FALSE ? 0 : serial->config.bufsz);
  307. }
  308. else
  309. {
  310. if (rx_fifo->put_index > rx_fifo->get_index)
  311. {
  312. return rx_fifo->put_index - rx_fifo->get_index;
  313. }
  314. else
  315. {
  316. return serial->config.bufsz - (rx_fifo->get_index - rx_fifo->put_index);
  317. }
  318. }
  319. }
  320. #endif /* RT_USING_POSIX_STDIO || RT_SERIAL_USING_DMA */
  321. #ifdef RT_SERIAL_USING_DMA
  322. /**
  323. * Calculate DMA received data length.
  324. *
  325. * @param serial serial device
  326. *
  327. * @return length
  328. */
  329. static rt_size_t rt_dma_calc_recved_len(struct rt_serial_device *serial)
  330. {
  331. return _serial_fifo_calc_recved_len(serial);
  332. }
  333. /**
  334. * Read data finish by DMA mode then update the get index for receive fifo.
  335. *
  336. * @param serial serial device
  337. * @param len get data length for this operate
  338. */
  339. static void rt_dma_recv_update_get_index(struct rt_serial_device *serial, rt_size_t len)
  340. {
  341. struct rt_serial_rx_fifo *rx_fifo = (struct rt_serial_rx_fifo *) serial->serial_rx;
  342. RT_ASSERT(rx_fifo != RT_NULL);
  343. RT_ASSERT(len <= rt_dma_calc_recved_len(serial));
  344. if (rx_fifo->is_full && len != 0) rx_fifo->is_full = RT_FALSE;
  345. rx_fifo->get_index += len;
  346. if (rx_fifo->get_index >= serial->config.bufsz)
  347. {
  348. rx_fifo->get_index %= serial->config.bufsz;
  349. }
  350. }
  351. /**
  352. * DMA received finish then update put index for receive fifo.
  353. *
  354. * @param serial serial device
  355. * @param len received length for this transmit
  356. */
  357. static void rt_dma_recv_update_put_index(struct rt_serial_device *serial, rt_size_t len)
  358. {
  359. struct rt_serial_rx_fifo *rx_fifo = (struct rt_serial_rx_fifo *)serial->serial_rx;
  360. RT_ASSERT(rx_fifo != RT_NULL);
  361. if (rx_fifo->get_index <= rx_fifo->put_index)
  362. {
  363. rx_fifo->put_index += len;
  364. /* beyond the fifo end */
  365. if (rx_fifo->put_index >= serial->config.bufsz)
  366. {
  367. rx_fifo->put_index %= serial->config.bufsz;
  368. /* force overwrite get index */
  369. if (rx_fifo->put_index >= rx_fifo->get_index)
  370. {
  371. rx_fifo->is_full = RT_TRUE;
  372. }
  373. }
  374. }
  375. else
  376. {
  377. rx_fifo->put_index += len;
  378. if (rx_fifo->put_index >= rx_fifo->get_index)
  379. {
  380. /* beyond the fifo end */
  381. if (rx_fifo->put_index >= serial->config.bufsz)
  382. {
  383. rx_fifo->put_index %= serial->config.bufsz;
  384. }
  385. /* force overwrite get index */
  386. rx_fifo->is_full = RT_TRUE;
  387. }
  388. }
  389. if(rx_fifo->is_full == RT_TRUE)
  390. {
  391. _serial_check_buffer_size();
  392. rx_fifo->get_index = rx_fifo->put_index;
  393. }
  394. }
  395. /*
  396. * Serial DMA routines
  397. */
  398. rt_inline int _serial_dma_rx(struct rt_serial_device *serial, rt_uint8_t *data, int length)
  399. {
  400. rt_base_t level;
  401. RT_ASSERT((serial != RT_NULL) && (data != RT_NULL));
  402. level = rt_hw_interrupt_disable();
  403. if (serial->config.bufsz == 0)
  404. {
  405. int result = RT_EOK;
  406. struct rt_serial_rx_dma *rx_dma;
  407. rx_dma = (struct rt_serial_rx_dma*)serial->serial_rx;
  408. RT_ASSERT(rx_dma != RT_NULL);
  409. if (rx_dma->activated != RT_TRUE)
  410. {
  411. rx_dma->activated = RT_TRUE;
  412. RT_ASSERT(serial->ops->dma_transmit != RT_NULL);
  413. serial->ops->dma_transmit(serial, data, length, RT_SERIAL_DMA_RX);
  414. }
  415. else result = -RT_EBUSY;
  416. rt_hw_interrupt_enable(level);
  417. if (result == RT_EOK) return length;
  418. rt_set_errno(result);
  419. return 0;
  420. }
  421. else
  422. {
  423. struct rt_serial_rx_fifo *rx_fifo = (struct rt_serial_rx_fifo *) serial->serial_rx;
  424. rt_size_t recv_len = 0, fifo_recved_len = rt_dma_calc_recved_len(serial);
  425. RT_ASSERT(rx_fifo != RT_NULL);
  426. if (length < (int)fifo_recved_len)
  427. recv_len = length;
  428. else
  429. recv_len = fifo_recved_len;
  430. if (rx_fifo->get_index + recv_len < serial->config.bufsz)
  431. rt_memcpy(data, rx_fifo->buffer + rx_fifo->get_index, recv_len);
  432. else
  433. {
  434. rt_memcpy(data, rx_fifo->buffer + rx_fifo->get_index,
  435. serial->config.bufsz - rx_fifo->get_index);
  436. rt_memcpy(data + serial->config.bufsz - rx_fifo->get_index, rx_fifo->buffer,
  437. recv_len + rx_fifo->get_index - serial->config.bufsz);
  438. }
  439. rt_dma_recv_update_get_index(serial, recv_len);
  440. rt_hw_interrupt_enable(level);
  441. return recv_len;
  442. }
  443. }
  444. rt_inline int _serial_dma_tx(struct rt_serial_device *serial, const rt_uint8_t *data, int length)
  445. {
  446. rt_base_t level;
  447. rt_err_t result;
  448. struct rt_serial_tx_dma *tx_dma;
  449. tx_dma = (struct rt_serial_tx_dma*)(serial->serial_tx);
  450. result = rt_data_queue_push(&(tx_dma->data_queue), data, length, RT_WAITING_FOREVER);
  451. if (result == RT_EOK)
  452. {
  453. level = rt_hw_interrupt_disable();
  454. if (tx_dma->activated != RT_TRUE)
  455. {
  456. tx_dma->activated = RT_TRUE;
  457. rt_hw_interrupt_enable(level);
  458. /* make a DMA transfer */
  459. serial->ops->dma_transmit(serial, (rt_uint8_t *)data, length, RT_SERIAL_DMA_TX);
  460. }
  461. else
  462. {
  463. rt_hw_interrupt_enable(level);
  464. }
  465. return length;
  466. }
  467. else
  468. {
  469. rt_set_errno(result);
  470. return 0;
  471. }
  472. }
  473. #endif /* RT_SERIAL_USING_DMA */
  474. /* RT-Thread Device Interface */
  475. /*
  476. * This function initializes serial device.
  477. */
  478. static rt_err_t rt_serial_init(struct rt_device *dev)
  479. {
  480. rt_err_t result = RT_EOK;
  481. struct rt_serial_device *serial;
  482. RT_ASSERT(dev != RT_NULL);
  483. serial = (struct rt_serial_device *)dev;
  484. /* initialize rx/tx */
  485. serial->serial_rx = RT_NULL;
  486. serial->serial_tx = RT_NULL;
  487. /* apply configuration */
  488. if (serial->ops->configure)
  489. result = serial->ops->configure(serial, &serial->config);
  490. return result;
  491. }
  492. static rt_err_t rt_serial_open(struct rt_device *dev, rt_uint16_t oflag)
  493. {
  494. rt_uint16_t stream_flag = 0;
  495. struct rt_serial_device *serial;
  496. RT_ASSERT(dev != RT_NULL);
  497. serial = (struct rt_serial_device *)dev;
  498. LOG_D("open serial device: 0x%08x with open flag: 0x%04x",
  499. dev, oflag);
  500. /* check device flag with the open flag */
  501. if ((oflag & RT_DEVICE_FLAG_DMA_RX) && !(dev->flag & RT_DEVICE_FLAG_DMA_RX))
  502. return -RT_EIO;
  503. if ((oflag & RT_DEVICE_FLAG_DMA_TX) && !(dev->flag & RT_DEVICE_FLAG_DMA_TX))
  504. return -RT_EIO;
  505. if ((oflag & RT_DEVICE_FLAG_INT_RX) && !(dev->flag & RT_DEVICE_FLAG_INT_RX))
  506. return -RT_EIO;
  507. if ((oflag & RT_DEVICE_FLAG_INT_TX) && !(dev->flag & RT_DEVICE_FLAG_INT_TX))
  508. return -RT_EIO;
  509. /* keep steam flag */
  510. if ((oflag & RT_DEVICE_FLAG_STREAM) || (dev->open_flag & RT_DEVICE_FLAG_STREAM))
  511. stream_flag = RT_DEVICE_FLAG_STREAM;
  512. /* get open flags */
  513. dev->open_flag = oflag & 0xff;
  514. /* initialize the Rx/Tx structure according to open flag */
  515. if (serial->serial_rx == RT_NULL)
  516. {
  517. if (oflag & RT_DEVICE_FLAG_INT_RX)
  518. {
  519. struct rt_serial_rx_fifo* rx_fifo;
  520. rx_fifo = (struct rt_serial_rx_fifo*) rt_malloc (sizeof(struct rt_serial_rx_fifo) +
  521. serial->config.bufsz);
  522. RT_ASSERT(rx_fifo != RT_NULL);
  523. rx_fifo->buffer = (rt_uint8_t*) (rx_fifo + 1);
  524. rt_memset(rx_fifo->buffer, 0, serial->config.bufsz);
  525. rx_fifo->put_index = 0;
  526. rx_fifo->get_index = 0;
  527. rx_fifo->is_full = RT_FALSE;
  528. serial->serial_rx = rx_fifo;
  529. dev->open_flag |= RT_DEVICE_FLAG_INT_RX;
  530. /* configure low level device */
  531. serial->ops->control(serial, RT_DEVICE_CTRL_SET_INT, (void *)RT_DEVICE_FLAG_INT_RX);
  532. }
  533. #ifdef RT_SERIAL_USING_DMA
  534. else if (oflag & RT_DEVICE_FLAG_DMA_RX)
  535. {
  536. if (serial->config.bufsz == 0) {
  537. struct rt_serial_rx_dma* rx_dma;
  538. rx_dma = (struct rt_serial_rx_dma*) rt_malloc (sizeof(struct rt_serial_rx_dma));
  539. RT_ASSERT(rx_dma != RT_NULL);
  540. rx_dma->activated = RT_FALSE;
  541. serial->serial_rx = rx_dma;
  542. } else {
  543. struct rt_serial_rx_fifo* rx_fifo;
  544. rx_fifo = (struct rt_serial_rx_fifo*) rt_malloc (sizeof(struct rt_serial_rx_fifo) +
  545. serial->config.bufsz);
  546. RT_ASSERT(rx_fifo != RT_NULL);
  547. rx_fifo->buffer = (rt_uint8_t*) (rx_fifo + 1);
  548. rt_memset(rx_fifo->buffer, 0, serial->config.bufsz);
  549. rx_fifo->put_index = 0;
  550. rx_fifo->get_index = 0;
  551. rx_fifo->is_full = RT_FALSE;
  552. serial->serial_rx = rx_fifo;
  553. /* configure fifo address and length to low level device */
  554. serial->ops->control(serial, RT_DEVICE_CTRL_CONFIG, (void *) RT_DEVICE_FLAG_DMA_RX);
  555. }
  556. dev->open_flag |= RT_DEVICE_FLAG_DMA_RX;
  557. }
  558. #endif /* RT_SERIAL_USING_DMA */
  559. else
  560. {
  561. serial->serial_rx = RT_NULL;
  562. }
  563. }
  564. else
  565. {
  566. if (oflag & RT_DEVICE_FLAG_INT_RX)
  567. dev->open_flag |= RT_DEVICE_FLAG_INT_RX;
  568. #ifdef RT_SERIAL_USING_DMA
  569. else if (oflag & RT_DEVICE_FLAG_DMA_RX)
  570. dev->open_flag |= RT_DEVICE_FLAG_DMA_RX;
  571. #endif /* RT_SERIAL_USING_DMA */
  572. }
  573. if (serial->serial_tx == RT_NULL)
  574. {
  575. if (oflag & RT_DEVICE_FLAG_INT_TX)
  576. {
  577. struct rt_serial_tx_fifo *tx_fifo;
  578. tx_fifo = (struct rt_serial_tx_fifo*) rt_malloc(sizeof(struct rt_serial_tx_fifo));
  579. RT_ASSERT(tx_fifo != RT_NULL);
  580. rt_completion_init(&(tx_fifo->completion));
  581. serial->serial_tx = tx_fifo;
  582. dev->open_flag |= RT_DEVICE_FLAG_INT_TX;
  583. /* configure low level device */
  584. serial->ops->control(serial, RT_DEVICE_CTRL_SET_INT, (void *)RT_DEVICE_FLAG_INT_TX);
  585. }
  586. #ifdef RT_SERIAL_USING_DMA
  587. else if (oflag & RT_DEVICE_FLAG_DMA_TX)
  588. {
  589. struct rt_serial_tx_dma* tx_dma;
  590. tx_dma = (struct rt_serial_tx_dma*) rt_malloc (sizeof(struct rt_serial_tx_dma));
  591. RT_ASSERT(tx_dma != RT_NULL);
  592. tx_dma->activated = RT_FALSE;
  593. rt_data_queue_init(&(tx_dma->data_queue), 8, 4, RT_NULL);
  594. serial->serial_tx = tx_dma;
  595. dev->open_flag |= RT_DEVICE_FLAG_DMA_TX;
  596. /* configure low level device */
  597. serial->ops->control(serial, RT_DEVICE_CTRL_CONFIG, (void *)RT_DEVICE_FLAG_DMA_TX);
  598. }
  599. #endif /* RT_SERIAL_USING_DMA */
  600. else
  601. {
  602. serial->serial_tx = RT_NULL;
  603. }
  604. }
  605. else
  606. {
  607. if (oflag & RT_DEVICE_FLAG_INT_TX)
  608. dev->open_flag |= RT_DEVICE_FLAG_INT_TX;
  609. #ifdef RT_SERIAL_USING_DMA
  610. else if (oflag & RT_DEVICE_FLAG_DMA_TX)
  611. dev->open_flag |= RT_DEVICE_FLAG_DMA_TX;
  612. #endif /* RT_SERIAL_USING_DMA */
  613. }
  614. /* set stream flag */
  615. dev->open_flag |= stream_flag;
  616. return RT_EOK;
  617. }
  618. static rt_err_t rt_serial_close(struct rt_device *dev)
  619. {
  620. struct rt_serial_device *serial;
  621. RT_ASSERT(dev != RT_NULL);
  622. serial = (struct rt_serial_device *)dev;
  623. /* this device has more reference count */
  624. if (dev->ref_count > 1) return RT_EOK;
  625. if (dev->open_flag & RT_DEVICE_FLAG_INT_RX)
  626. {
  627. struct rt_serial_rx_fifo* rx_fifo;
  628. /* configure low level device */
  629. serial->ops->control(serial, RT_DEVICE_CTRL_CLR_INT, (void*)RT_DEVICE_FLAG_INT_RX);
  630. dev->open_flag &= ~RT_DEVICE_FLAG_INT_RX;
  631. rx_fifo = (struct rt_serial_rx_fifo*)serial->serial_rx;
  632. RT_ASSERT(rx_fifo != RT_NULL);
  633. rt_free(rx_fifo);
  634. serial->serial_rx = RT_NULL;
  635. }
  636. #ifdef RT_SERIAL_USING_DMA
  637. else if (dev->open_flag & RT_DEVICE_FLAG_DMA_RX)
  638. {
  639. /* configure low level device */
  640. serial->ops->control(serial, RT_DEVICE_CTRL_CLR_INT, (void *) RT_DEVICE_FLAG_DMA_RX);
  641. dev->open_flag &= ~RT_DEVICE_FLAG_DMA_RX;
  642. if (serial->config.bufsz == 0)
  643. {
  644. struct rt_serial_rx_dma* rx_dma;
  645. rx_dma = (struct rt_serial_rx_dma*)serial->serial_rx;
  646. RT_ASSERT(rx_dma != RT_NULL);
  647. rt_free(rx_dma);
  648. }
  649. else
  650. {
  651. struct rt_serial_rx_fifo* rx_fifo;
  652. rx_fifo = (struct rt_serial_rx_fifo*)serial->serial_rx;
  653. RT_ASSERT(rx_fifo != RT_NULL);
  654. rt_free(rx_fifo);
  655. }
  656. serial->serial_rx = RT_NULL;
  657. }
  658. #endif /* RT_SERIAL_USING_DMA */
  659. if (dev->open_flag & RT_DEVICE_FLAG_INT_TX)
  660. {
  661. struct rt_serial_tx_fifo* tx_fifo;
  662. serial->ops->control(serial, RT_DEVICE_CTRL_CLR_INT, (void*)RT_DEVICE_FLAG_INT_TX);
  663. dev->open_flag &= ~RT_DEVICE_FLAG_INT_TX;
  664. tx_fifo = (struct rt_serial_tx_fifo*)serial->serial_tx;
  665. RT_ASSERT(tx_fifo != RT_NULL);
  666. rt_free(tx_fifo);
  667. serial->serial_tx = RT_NULL;
  668. /* configure low level device */
  669. }
  670. #ifdef RT_SERIAL_USING_DMA
  671. else if (dev->open_flag & RT_DEVICE_FLAG_DMA_TX)
  672. {
  673. struct rt_serial_tx_dma* tx_dma;
  674. /* configure low level device */
  675. serial->ops->control(serial, RT_DEVICE_CTRL_CLR_INT, (void *) RT_DEVICE_FLAG_DMA_TX);
  676. dev->open_flag &= ~RT_DEVICE_FLAG_DMA_TX;
  677. tx_dma = (struct rt_serial_tx_dma*)serial->serial_tx;
  678. RT_ASSERT(tx_dma != RT_NULL);
  679. rt_data_queue_deinit(&(tx_dma->data_queue));
  680. rt_free(tx_dma);
  681. serial->serial_tx = RT_NULL;
  682. }
  683. #endif /* RT_SERIAL_USING_DMA */
  684. serial->ops->control(serial, RT_DEVICE_CTRL_CLOSE, RT_NULL);
  685. dev->flag &= ~RT_DEVICE_FLAG_ACTIVATED;
  686. return RT_EOK;
  687. }
  688. static rt_size_t rt_serial_read(struct rt_device *dev,
  689. rt_off_t pos,
  690. void *buffer,
  691. rt_size_t size)
  692. {
  693. struct rt_serial_device *serial;
  694. RT_ASSERT(dev != RT_NULL);
  695. if (size == 0) return 0;
  696. serial = (struct rt_serial_device *)dev;
  697. if (dev->open_flag & RT_DEVICE_FLAG_INT_RX)
  698. {
  699. return _serial_int_rx(serial, (rt_uint8_t *)buffer, size);
  700. }
  701. #ifdef RT_SERIAL_USING_DMA
  702. else if (dev->open_flag & RT_DEVICE_FLAG_DMA_RX)
  703. {
  704. return _serial_dma_rx(serial, (rt_uint8_t *)buffer, size);
  705. }
  706. #endif /* RT_SERIAL_USING_DMA */
  707. return _serial_poll_rx(serial, (rt_uint8_t *)buffer, size);
  708. }
  709. static rt_size_t rt_serial_write(struct rt_device *dev,
  710. rt_off_t pos,
  711. const void *buffer,
  712. rt_size_t size)
  713. {
  714. struct rt_serial_device *serial;
  715. RT_ASSERT(dev != RT_NULL);
  716. if (size == 0) return 0;
  717. serial = (struct rt_serial_device *)dev;
  718. if (dev->open_flag & RT_DEVICE_FLAG_INT_TX)
  719. {
  720. return _serial_int_tx(serial, (const rt_uint8_t *)buffer, size);
  721. }
  722. #ifdef RT_SERIAL_USING_DMA
  723. else if (dev->open_flag & RT_DEVICE_FLAG_DMA_TX)
  724. {
  725. return _serial_dma_tx(serial, (const rt_uint8_t *)buffer, size);
  726. }
  727. #endif /* RT_SERIAL_USING_DMA */
  728. else
  729. {
  730. return _serial_poll_tx(serial, (const rt_uint8_t *)buffer, size);
  731. }
  732. }
  733. #ifdef RT_USING_POSIX_TERMIOS
  734. struct speed_baudrate_item
  735. {
  736. speed_t speed;
  737. int baudrate;
  738. };
  739. const static struct speed_baudrate_item _tbl[] =
  740. {
  741. {B2400, BAUD_RATE_2400},
  742. {B4800, BAUD_RATE_4800},
  743. {B9600, BAUD_RATE_9600},
  744. {B19200, BAUD_RATE_19200},
  745. {B38400, BAUD_RATE_38400},
  746. {B57600, BAUD_RATE_57600},
  747. {B115200, BAUD_RATE_115200},
  748. {B230400, BAUD_RATE_230400},
  749. {B460800, BAUD_RATE_460800},
  750. {B921600, BAUD_RATE_921600},
  751. {B2000000, BAUD_RATE_2000000},
  752. {B3000000, BAUD_RATE_3000000},
  753. };
  754. static speed_t _get_speed(int baudrate)
  755. {
  756. int index;
  757. for (index = 0; index < sizeof(_tbl)/sizeof(_tbl[0]); index ++)
  758. {
  759. if (_tbl[index].baudrate == baudrate)
  760. return _tbl[index].speed;
  761. }
  762. return B0;
  763. }
  764. static int _get_baudrate(speed_t speed)
  765. {
  766. int index;
  767. for (index = 0; index < sizeof(_tbl)/sizeof(_tbl[0]); index ++)
  768. {
  769. if (_tbl[index].speed == speed)
  770. return _tbl[index].baudrate;
  771. }
  772. return 0;
  773. }
  774. static void _tc_flush(struct rt_serial_device *serial, int queue)
  775. {
  776. rt_base_t level;
  777. int ch = -1;
  778. struct rt_serial_rx_fifo *rx_fifo = RT_NULL;
  779. struct rt_device *device = RT_NULL;
  780. RT_ASSERT(serial != RT_NULL);
  781. device = &(serial->parent);
  782. rx_fifo = (struct rt_serial_rx_fifo *) serial->serial_rx;
  783. switch(queue)
  784. {
  785. case TCIFLUSH:
  786. case TCIOFLUSH:
  787. RT_ASSERT(rx_fifo != RT_NULL);
  788. if((device->open_flag & RT_DEVICE_FLAG_INT_RX) || (device->open_flag & RT_DEVICE_FLAG_DMA_RX))
  789. {
  790. RT_ASSERT(RT_NULL != rx_fifo);
  791. level = rt_hw_interrupt_disable();
  792. rx_fifo->get_index = rx_fifo->put_index;
  793. rx_fifo->is_full = RT_FALSE;
  794. rt_hw_interrupt_enable(level);
  795. }
  796. else
  797. {
  798. while (1)
  799. {
  800. ch = serial->ops->getc(serial);
  801. if (ch == -1) break;
  802. }
  803. }
  804. break;
  805. case TCOFLUSH:
  806. break;
  807. }
  808. }
  809. #endif /* RT_USING_POSIX_TERMIOS */
  810. static rt_err_t rt_serial_control(struct rt_device *dev,
  811. int cmd,
  812. void *args)
  813. {
  814. rt_err_t ret = RT_EOK;
  815. struct rt_serial_device *serial;
  816. RT_ASSERT(dev != RT_NULL);
  817. serial = (struct rt_serial_device *)dev;
  818. switch (cmd)
  819. {
  820. case RT_DEVICE_CTRL_SUSPEND:
  821. /* suspend device */
  822. dev->flag |= RT_DEVICE_FLAG_SUSPENDED;
  823. break;
  824. case RT_DEVICE_CTRL_RESUME:
  825. /* resume device */
  826. dev->flag &= ~RT_DEVICE_FLAG_SUSPENDED;
  827. break;
  828. case RT_DEVICE_CTRL_CONFIG:
  829. if (args)
  830. {
  831. struct serial_configure *pconfig = (struct serial_configure *) args;
  832. if (pconfig->bufsz != serial->config.bufsz && serial->parent.ref_count)
  833. {
  834. /*can not change buffer size*/
  835. return RT_EBUSY;
  836. }
  837. /* set serial configure */
  838. serial->config = *pconfig;
  839. if (serial->parent.ref_count)
  840. {
  841. /* serial device has been opened, to configure it */
  842. serial->ops->configure(serial, (struct serial_configure *) args);
  843. }
  844. }
  845. break;
  846. #ifdef RT_USING_POSIX_STDIO
  847. #ifdef RT_USING_POSIX_TERMIOS
  848. case TCGETA:
  849. {
  850. struct termios *tio = (struct termios*)args;
  851. if (tio == RT_NULL) return -RT_EINVAL;
  852. tio->c_iflag = 0;
  853. tio->c_oflag = 0;
  854. tio->c_lflag = 0;
  855. /* update oflag for console device */
  856. if (rt_console_get_device() == dev)
  857. tio->c_oflag = OPOST | ONLCR;
  858. /* set cflag */
  859. tio->c_cflag = 0;
  860. if (serial->config.data_bits == DATA_BITS_5)
  861. tio->c_cflag = CS5;
  862. else if (serial->config.data_bits == DATA_BITS_6)
  863. tio->c_cflag = CS6;
  864. else if (serial->config.data_bits == DATA_BITS_7)
  865. tio->c_cflag = CS7;
  866. else if (serial->config.data_bits == DATA_BITS_8)
  867. tio->c_cflag = CS8;
  868. if (serial->config.stop_bits == STOP_BITS_2)
  869. tio->c_cflag |= CSTOPB;
  870. if (serial->config.parity == PARITY_EVEN)
  871. tio->c_cflag |= PARENB;
  872. else if (serial->config.parity == PARITY_ODD)
  873. tio->c_cflag |= (PARODD | PARENB);
  874. cfsetospeed(tio, _get_speed(serial->config.baud_rate));
  875. }
  876. break;
  877. case TCSETAW:
  878. case TCSETAF:
  879. case TCSETA:
  880. {
  881. int baudrate;
  882. struct serial_configure config;
  883. struct termios *tio = (struct termios*)args;
  884. if (tio == RT_NULL) return -RT_EINVAL;
  885. config = serial->config;
  886. baudrate = _get_baudrate(cfgetospeed(tio));
  887. config.baud_rate = baudrate;
  888. switch (tio->c_cflag & CSIZE)
  889. {
  890. case CS5:
  891. config.data_bits = DATA_BITS_5;
  892. break;
  893. case CS6:
  894. config.data_bits = DATA_BITS_6;
  895. break;
  896. case CS7:
  897. config.data_bits = DATA_BITS_7;
  898. break;
  899. default:
  900. config.data_bits = DATA_BITS_8;
  901. break;
  902. }
  903. if (tio->c_cflag & CSTOPB) config.stop_bits = STOP_BITS_2;
  904. else config.stop_bits = STOP_BITS_1;
  905. if (tio->c_cflag & PARENB)
  906. {
  907. if (tio->c_cflag & PARODD) config.parity = PARITY_ODD;
  908. else config.parity = PARITY_EVEN;
  909. }
  910. else config.parity = PARITY_NONE;
  911. serial->ops->configure(serial, &config);
  912. }
  913. break;
  914. case TCFLSH:
  915. {
  916. int queue = (int)args;
  917. _tc_flush(serial, queue);
  918. }
  919. break;
  920. case TCXONC:
  921. break;
  922. #endif /*RT_USING_POSIX_TERMIOS*/
  923. case TIOCSWINSZ:
  924. {
  925. struct winsize* p_winsize;
  926. p_winsize = (struct winsize*)args;
  927. rt_kprintf("\x1b[8;%d;%dt", p_winsize->ws_col, p_winsize->ws_row);
  928. }
  929. break;
  930. case TIOCGWINSZ:
  931. {
  932. struct winsize* p_winsize;
  933. p_winsize = (struct winsize*)args;
  934. if(rt_thread_self() != rt_thread_find("tshell"))
  935. {
  936. /* only can be used in tshell thread; otherwise, return default size */
  937. p_winsize->ws_col = 80;
  938. p_winsize->ws_row = 24;
  939. }
  940. else
  941. {
  942. #include <shell.h>
  943. #define _TIO_BUFLEN 20
  944. char _tio_buf[_TIO_BUFLEN];
  945. unsigned char cnt1, cnt2, cnt3, i;
  946. char row_s[4], col_s[4];
  947. char *p;
  948. rt_memset(_tio_buf, 0, _TIO_BUFLEN);
  949. /* send the command to terminal for getting the window size of the terminal */
  950. rt_kprintf("\033[18t");
  951. /* waiting for the response from the terminal */
  952. i = 0;
  953. while(i < _TIO_BUFLEN)
  954. {
  955. _tio_buf[i] = finsh_getchar();
  956. if(_tio_buf[i] != 't')
  957. {
  958. i ++;
  959. }
  960. else
  961. {
  962. break;
  963. }
  964. }
  965. if(i == _TIO_BUFLEN)
  966. {
  967. /* buffer overloaded, and return default size */
  968. p_winsize->ws_col = 80;
  969. p_winsize->ws_row = 24;
  970. break;
  971. }
  972. /* interpreting data eg: "\033[8;1;15t" which means row is 1 and col is 15 (unit: size of ONE character) */
  973. rt_memset(row_s,0,4);
  974. rt_memset(col_s,0,4);
  975. cnt1 = 0;
  976. while(_tio_buf[cnt1] != ';' && cnt1 < _TIO_BUFLEN)
  977. {
  978. cnt1++;
  979. }
  980. cnt2 = ++cnt1;
  981. while(_tio_buf[cnt2] != ';' && cnt2 < _TIO_BUFLEN)
  982. {
  983. cnt2++;
  984. }
  985. p = row_s;
  986. while(cnt1 < cnt2)
  987. {
  988. *p++ = _tio_buf[cnt1++];
  989. }
  990. p = col_s;
  991. cnt2++;
  992. cnt3 = rt_strlen(_tio_buf) - 1;
  993. while(cnt2 < cnt3)
  994. {
  995. *p++ = _tio_buf[cnt2++];
  996. }
  997. /* load the window size date */
  998. p_winsize->ws_col = atoi(col_s);
  999. p_winsize->ws_row = atoi(row_s);
  1000. #undef _TIO_BUFLEN
  1001. }
  1002. p_winsize->ws_xpixel = 0;/* unused */
  1003. p_winsize->ws_ypixel = 0;/* unused */
  1004. }
  1005. break;
  1006. case FIONREAD:
  1007. {
  1008. rt_size_t recved = 0;
  1009. rt_base_t level;
  1010. level = rt_hw_interrupt_disable();
  1011. recved = _serial_fifo_calc_recved_len(serial);
  1012. rt_hw_interrupt_enable(level);
  1013. *(rt_size_t *)args = recved;
  1014. }
  1015. break;
  1016. #endif /* RT_USING_POSIX_STDIO */
  1017. default :
  1018. /* control device */
  1019. ret = serial->ops->control(serial, cmd, args);
  1020. break;
  1021. }
  1022. return ret;
  1023. }
  1024. #ifdef RT_USING_DEVICE_OPS
  1025. const static struct rt_device_ops serial_ops =
  1026. {
  1027. rt_serial_init,
  1028. rt_serial_open,
  1029. rt_serial_close,
  1030. rt_serial_read,
  1031. rt_serial_write,
  1032. rt_serial_control
  1033. };
  1034. #endif
  1035. /*
  1036. * serial register
  1037. */
  1038. rt_err_t rt_hw_serial_register(struct rt_serial_device *serial,
  1039. const char *name,
  1040. rt_uint32_t flag,
  1041. void *data)
  1042. {
  1043. rt_err_t ret;
  1044. struct rt_device *device;
  1045. RT_ASSERT(serial != RT_NULL);
  1046. device = &(serial->parent);
  1047. device->type = RT_Device_Class_Char;
  1048. device->rx_indicate = RT_NULL;
  1049. device->tx_complete = RT_NULL;
  1050. #ifdef RT_USING_DEVICE_OPS
  1051. device->ops = &serial_ops;
  1052. #else
  1053. device->init = rt_serial_init;
  1054. device->open = rt_serial_open;
  1055. device->close = rt_serial_close;
  1056. device->read = rt_serial_read;
  1057. device->write = rt_serial_write;
  1058. device->control = rt_serial_control;
  1059. #endif
  1060. device->user_data = data;
  1061. /* register a character device */
  1062. ret = rt_device_register(device, name, flag);
  1063. #ifdef RT_USING_POSIX_STDIO
  1064. /* set fops */
  1065. device->fops = &_serial_fops;
  1066. #endif
  1067. return ret;
  1068. }
  1069. /* ISR for serial interrupt */
  1070. void rt_hw_serial_isr(struct rt_serial_device *serial, int event)
  1071. {
  1072. switch (event & 0xff)
  1073. {
  1074. case RT_SERIAL_EVENT_RX_IND:
  1075. {
  1076. int ch = -1;
  1077. rt_base_t level;
  1078. struct rt_serial_rx_fifo* rx_fifo;
  1079. /* interrupt mode receive */
  1080. rx_fifo = (struct rt_serial_rx_fifo*)serial->serial_rx;
  1081. RT_ASSERT(rx_fifo != RT_NULL);
  1082. while (1)
  1083. {
  1084. ch = serial->ops->getc(serial);
  1085. if (ch == -1) break;
  1086. /* disable interrupt */
  1087. level = rt_hw_interrupt_disable();
  1088. rx_fifo->buffer[rx_fifo->put_index] = ch;
  1089. rx_fifo->put_index += 1;
  1090. if (rx_fifo->put_index >= serial->config.bufsz) rx_fifo->put_index = 0;
  1091. /* if the next position is read index, discard this 'read char' */
  1092. if (rx_fifo->put_index == rx_fifo->get_index)
  1093. {
  1094. rx_fifo->get_index += 1;
  1095. rx_fifo->is_full = RT_TRUE;
  1096. if (rx_fifo->get_index >= serial->config.bufsz) rx_fifo->get_index = 0;
  1097. _serial_check_buffer_size();
  1098. }
  1099. /* enable interrupt */
  1100. rt_hw_interrupt_enable(level);
  1101. }
  1102. /* invoke callback */
  1103. if (serial->parent.rx_indicate != RT_NULL)
  1104. {
  1105. rt_size_t rx_length;
  1106. /* get rx length */
  1107. level = rt_hw_interrupt_disable();
  1108. rx_length = (rx_fifo->put_index >= rx_fifo->get_index)? (rx_fifo->put_index - rx_fifo->get_index):
  1109. (serial->config.bufsz - (rx_fifo->get_index - rx_fifo->put_index));
  1110. rt_hw_interrupt_enable(level);
  1111. if (rx_length)
  1112. {
  1113. serial->parent.rx_indicate(&serial->parent, rx_length);
  1114. }
  1115. }
  1116. break;
  1117. }
  1118. case RT_SERIAL_EVENT_TX_DONE:
  1119. {
  1120. struct rt_serial_tx_fifo* tx_fifo;
  1121. tx_fifo = (struct rt_serial_tx_fifo*)serial->serial_tx;
  1122. rt_completion_done(&(tx_fifo->completion));
  1123. break;
  1124. }
  1125. #ifdef RT_SERIAL_USING_DMA
  1126. case RT_SERIAL_EVENT_TX_DMADONE:
  1127. {
  1128. const void *data_ptr;
  1129. rt_size_t data_size;
  1130. const void *last_data_ptr;
  1131. struct rt_serial_tx_dma *tx_dma;
  1132. tx_dma = (struct rt_serial_tx_dma*) serial->serial_tx;
  1133. rt_data_queue_pop(&(tx_dma->data_queue), &last_data_ptr, &data_size, 0);
  1134. if (rt_data_queue_peek(&(tx_dma->data_queue), &data_ptr, &data_size) == RT_EOK)
  1135. {
  1136. /* transmit next data node */
  1137. tx_dma->activated = RT_TRUE;
  1138. serial->ops->dma_transmit(serial, (rt_uint8_t *)data_ptr, data_size, RT_SERIAL_DMA_TX);
  1139. }
  1140. else
  1141. {
  1142. tx_dma->activated = RT_FALSE;
  1143. }
  1144. /* invoke callback */
  1145. if (serial->parent.tx_complete != RT_NULL)
  1146. {
  1147. serial->parent.tx_complete(&serial->parent, (void*)last_data_ptr);
  1148. }
  1149. break;
  1150. }
  1151. case RT_SERIAL_EVENT_RX_DMADONE:
  1152. {
  1153. int length;
  1154. rt_base_t level;
  1155. /* get DMA rx length */
  1156. length = (event & (~0xff)) >> 8;
  1157. if (serial->config.bufsz == 0)
  1158. {
  1159. struct rt_serial_rx_dma* rx_dma;
  1160. rx_dma = (struct rt_serial_rx_dma*) serial->serial_rx;
  1161. RT_ASSERT(rx_dma != RT_NULL);
  1162. RT_ASSERT(serial->parent.rx_indicate != RT_NULL);
  1163. serial->parent.rx_indicate(&(serial->parent), length);
  1164. rx_dma->activated = RT_FALSE;
  1165. }
  1166. else
  1167. {
  1168. /* disable interrupt */
  1169. level = rt_hw_interrupt_disable();
  1170. /* update fifo put index */
  1171. rt_dma_recv_update_put_index(serial, length);
  1172. /* calculate received total length */
  1173. length = rt_dma_calc_recved_len(serial);
  1174. /* enable interrupt */
  1175. rt_hw_interrupt_enable(level);
  1176. /* invoke callback */
  1177. if (serial->parent.rx_indicate != RT_NULL)
  1178. {
  1179. serial->parent.rx_indicate(&(serial->parent), length);
  1180. }
  1181. }
  1182. break;
  1183. }
  1184. #endif /* RT_SERIAL_USING_DMA */
  1185. }
  1186. }