pcan_usb_fd.c 29 KB

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  1. /*
  2. * CAN driver for PEAK System PCAN-USB FD / PCAN-USB Pro FD adapter
  3. *
  4. * Copyright (C) 2013-2014 Stephane Grosjean <s.grosjean@peak-system.com>
  5. *
  6. * This program is free software; you can redistribute it and/or modify it
  7. * under the terms of the GNU General Public License as published
  8. * by the Free Software Foundation; version 2 of the License.
  9. *
  10. * This program is distributed in the hope that it will be useful, but
  11. * WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  13. * General Public License for more details.
  14. */
  15. #include <linux/netdevice.h>
  16. #include <linux/usb.h>
  17. #include <linux/module.h>
  18. #include <linux/can.h>
  19. #include <linux/can/dev.h>
  20. #include <linux/can/error.h>
  21. #include "pcan_usb_core.h"
  22. #include "pcan_usb_pro.h"
  23. #include "pcan_ucan.h"
  24. MODULE_SUPPORTED_DEVICE("PEAK-System PCAN-USB FD adapter");
  25. MODULE_SUPPORTED_DEVICE("PEAK-System PCAN-USB Pro FD adapter");
  26. #define PCAN_USBPROFD_CHANNEL_COUNT 2
  27. #define PCAN_USBFD_CHANNEL_COUNT 1
  28. /* PCAN-USB Pro FD adapter internal clock (Hz) */
  29. #define PCAN_UFD_CRYSTAL_HZ 80000000
  30. #define PCAN_UFD_CMD_BUFFER_SIZE 512
  31. #define PCAN_UFD_LOSPD_PKT_SIZE 64
  32. /* PCAN-USB Pro FD command timeout (ms.) */
  33. #define PCAN_UFD_CMD_TIMEOUT_MS 1000
  34. /* PCAN-USB Pro FD rx/tx buffers size */
  35. #define PCAN_UFD_RX_BUFFER_SIZE 2048
  36. #define PCAN_UFD_TX_BUFFER_SIZE 512
  37. /* read some versions info from the hw devcie */
  38. struct __packed pcan_ufd_fw_info {
  39. __le16 size_of; /* sizeof this */
  40. __le16 type; /* type of this structure */
  41. u8 hw_type; /* Type of hardware (HW_TYPE_xxx) */
  42. u8 bl_version[3]; /* Bootloader version */
  43. u8 hw_version; /* Hardware version (PCB) */
  44. u8 fw_version[3]; /* Firmware version */
  45. __le32 dev_id[2]; /* "device id" per CAN */
  46. __le32 ser_no; /* S/N */
  47. __le32 flags; /* special functions */
  48. };
  49. /* handle device specific info used by the netdevices */
  50. struct pcan_usb_fd_if {
  51. struct peak_usb_device *dev[PCAN_USB_MAX_CHANNEL];
  52. struct pcan_ufd_fw_info fw_info;
  53. struct peak_time_ref time_ref;
  54. int cm_ignore_count;
  55. int dev_opened_count;
  56. };
  57. /* device information */
  58. struct pcan_usb_fd_device {
  59. struct peak_usb_device dev;
  60. struct can_berr_counter bec;
  61. struct pcan_usb_fd_if *usb_if;
  62. u8 *cmd_buffer_addr;
  63. };
  64. /* Extended USB commands (non uCAN commands) */
  65. /* Clock Modes command */
  66. #define PCAN_UFD_CMD_CLK_SET 0x80
  67. #define PCAN_UFD_CLK_80MHZ 0x0
  68. #define PCAN_UFD_CLK_60MHZ 0x1
  69. #define PCAN_UFD_CLK_40MHZ 0x2
  70. #define PCAN_UFD_CLK_30MHZ 0x3
  71. #define PCAN_UFD_CLK_24MHZ 0x4
  72. #define PCAN_UFD_CLK_20MHZ 0x5
  73. #define PCAN_UFD_CLK_DEF PCAN_UFD_CLK_80MHZ
  74. struct __packed pcan_ufd_clock {
  75. __le16 opcode_channel;
  76. u8 mode;
  77. u8 unused[5];
  78. };
  79. /* LED control command */
  80. #define PCAN_UFD_CMD_LED_SET 0x86
  81. #define PCAN_UFD_LED_DEV 0x00
  82. #define PCAN_UFD_LED_FAST 0x01
  83. #define PCAN_UFD_LED_SLOW 0x02
  84. #define PCAN_UFD_LED_ON 0x03
  85. #define PCAN_UFD_LED_OFF 0x04
  86. #define PCAN_UFD_LED_DEF PCAN_UFD_LED_DEV
  87. struct __packed pcan_ufd_led {
  88. __le16 opcode_channel;
  89. u8 mode;
  90. u8 unused[5];
  91. };
  92. /* Extended usage of uCAN commands CMD_RX_FRAME_xxxABLE for PCAN-USB Pro FD */
  93. #define PCAN_UFD_FLTEXT_CALIBRATION 0x8000
  94. struct __packed pcan_ufd_filter_ext {
  95. __le16 opcode_channel;
  96. __le16 ext_mask;
  97. u16 unused;
  98. __le16 usb_mask;
  99. };
  100. /* Extended usage of uCAN messages for PCAN-USB Pro FD */
  101. #define PCAN_UFD_MSG_CALIBRATION 0x100
  102. struct __packed pcan_ufd_ts_msg {
  103. __le16 size;
  104. __le16 type;
  105. __le32 ts_low;
  106. __le32 ts_high;
  107. __le16 usb_frame_index;
  108. u16 unused;
  109. };
  110. #define PCAN_UFD_MSG_OVERRUN 0x101
  111. #define PCAN_UFD_OVMSG_CHANNEL(o) ((o)->channel & 0xf)
  112. struct __packed pcan_ufd_ovr_msg {
  113. __le16 size;
  114. __le16 type;
  115. __le32 ts_low;
  116. __le32 ts_high;
  117. u8 channel;
  118. u8 unused[3];
  119. };
  120. static inline int pufd_omsg_get_channel(struct pcan_ufd_ovr_msg *om)
  121. {
  122. return om->channel & 0xf;
  123. }
  124. /* Clock mode frequency values */
  125. static const u32 pcan_usb_fd_clk_freq[6] = {
  126. [PCAN_UFD_CLK_80MHZ] = 80000000,
  127. [PCAN_UFD_CLK_60MHZ] = 60000000,
  128. [PCAN_UFD_CLK_40MHZ] = 40000000,
  129. [PCAN_UFD_CLK_30MHZ] = 30000000,
  130. [PCAN_UFD_CLK_24MHZ] = 24000000,
  131. [PCAN_UFD_CLK_20MHZ] = 20000000
  132. };
  133. /* return a device USB interface */
  134. static inline
  135. struct pcan_usb_fd_if *pcan_usb_fd_dev_if(struct peak_usb_device *dev)
  136. {
  137. struct pcan_usb_fd_device *pdev =
  138. container_of(dev, struct pcan_usb_fd_device, dev);
  139. return pdev->usb_if;
  140. }
  141. /* return a device USB commands buffer */
  142. static inline void *pcan_usb_fd_cmd_buffer(struct peak_usb_device *dev)
  143. {
  144. struct pcan_usb_fd_device *pdev =
  145. container_of(dev, struct pcan_usb_fd_device, dev);
  146. return pdev->cmd_buffer_addr;
  147. }
  148. /* send PCAN-USB Pro FD commands synchronously */
  149. static int pcan_usb_fd_send_cmd(struct peak_usb_device *dev, void *cmd_tail)
  150. {
  151. void *cmd_head = pcan_usb_fd_cmd_buffer(dev);
  152. int err;
  153. u8 *packet_ptr;
  154. int i, n = 1, packet_len;
  155. ptrdiff_t cmd_len;
  156. /* usb device unregistered? */
  157. if (!(dev->state & PCAN_USB_STATE_CONNECTED))
  158. return 0;
  159. /* if a packet is not filled completely by commands, the command list
  160. * is terminated with an "end of collection" record.
  161. */
  162. cmd_len = cmd_tail - cmd_head;
  163. if (cmd_len <= (PCAN_UFD_CMD_BUFFER_SIZE - sizeof(u64))) {
  164. memset(cmd_tail, 0xff, sizeof(u64));
  165. cmd_len += sizeof(u64);
  166. }
  167. packet_ptr = cmd_head;
  168. /* firmware is not able to re-assemble 512 bytes buffer in full-speed */
  169. if ((dev->udev->speed != USB_SPEED_HIGH) &&
  170. (cmd_len > PCAN_UFD_LOSPD_PKT_SIZE)) {
  171. packet_len = PCAN_UFD_LOSPD_PKT_SIZE;
  172. n += cmd_len / packet_len;
  173. } else {
  174. packet_len = cmd_len;
  175. }
  176. for (i = 0; i < n; i++) {
  177. err = usb_bulk_msg(dev->udev,
  178. usb_sndbulkpipe(dev->udev,
  179. PCAN_USBPRO_EP_CMDOUT),
  180. packet_ptr, packet_len,
  181. NULL, PCAN_UFD_CMD_TIMEOUT_MS);
  182. if (err) {
  183. netdev_err(dev->netdev,
  184. "sending command failure: %d\n", err);
  185. break;
  186. }
  187. packet_ptr += packet_len;
  188. }
  189. return err;
  190. }
  191. /* build the commands list in the given buffer, to enter operational mode */
  192. static int pcan_usb_fd_build_restart_cmd(struct peak_usb_device *dev, u8 *buf)
  193. {
  194. struct pucan_wr_err_cnt *prc;
  195. struct pucan_command *cmd;
  196. u8 *pc = buf;
  197. /* 1st, reset error counters: */
  198. prc = (struct pucan_wr_err_cnt *)pc;
  199. prc->opcode_channel = pucan_cmd_opcode_channel(dev,
  200. PUCAN_CMD_WR_ERR_CNT);
  201. /* select both counters */
  202. prc->sel_mask = cpu_to_le16(PUCAN_WRERRCNT_TE|PUCAN_WRERRCNT_RE);
  203. /* and reset their values */
  204. prc->tx_counter = 0;
  205. prc->rx_counter = 0;
  206. /* moves the pointer forward */
  207. pc += sizeof(struct pucan_wr_err_cnt);
  208. /* next, go back to operational mode */
  209. cmd = (struct pucan_command *)pc;
  210. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  211. (dev->can.ctrlmode & CAN_CTRLMODE_LISTENONLY) ?
  212. PUCAN_CMD_LISTEN_ONLY_MODE :
  213. PUCAN_CMD_NORMAL_MODE);
  214. pc += sizeof(struct pucan_command);
  215. return pc - buf;
  216. }
  217. /* set CAN bus on/off */
  218. static int pcan_usb_fd_set_bus(struct peak_usb_device *dev, u8 onoff)
  219. {
  220. u8 *pc = pcan_usb_fd_cmd_buffer(dev);
  221. int l;
  222. if (onoff) {
  223. /* build the cmds list to enter operational mode */
  224. l = pcan_usb_fd_build_restart_cmd(dev, pc);
  225. } else {
  226. struct pucan_command *cmd = (struct pucan_command *)pc;
  227. /* build cmd to go back to reset mode */
  228. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  229. PUCAN_CMD_RESET_MODE);
  230. l = sizeof(struct pucan_command);
  231. }
  232. /* send the command */
  233. return pcan_usb_fd_send_cmd(dev, pc + l);
  234. }
  235. /* set filtering masks:
  236. *
  237. * idx in range [0..63] selects a row #idx, all rows otherwise
  238. * mask in range [0..0xffffffff] defines up to 32 CANIDs in the row(s)
  239. *
  240. * Each bit of this 64 x 32 bits array defines a CANID value:
  241. *
  242. * bit[i,j] = 1 implies that CANID=(i x 32)+j will be received, while
  243. * bit[i,j] = 0 implies that CANID=(i x 32)+j will be discarded.
  244. */
  245. static int pcan_usb_fd_set_filter_std(struct peak_usb_device *dev, int idx,
  246. u32 mask)
  247. {
  248. struct pucan_filter_std *cmd = pcan_usb_fd_cmd_buffer(dev);
  249. int i, n;
  250. /* select all rows when idx is out of range [0..63] */
  251. if ((idx < 0) || (idx >= (1 << PUCAN_FLTSTD_ROW_IDX_BITS))) {
  252. n = 1 << PUCAN_FLTSTD_ROW_IDX_BITS;
  253. idx = 0;
  254. /* select the row (and only the row) otherwise */
  255. } else {
  256. n = idx + 1;
  257. }
  258. for (i = idx; i < n; i++, cmd++) {
  259. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  260. PUCAN_CMD_FILTER_STD);
  261. cmd->idx = cpu_to_le16(i);
  262. cmd->mask = cpu_to_le32(mask);
  263. }
  264. /* send the command */
  265. return pcan_usb_fd_send_cmd(dev, cmd);
  266. }
  267. /* set/unset notifications filter:
  268. *
  269. * onoff sets(1)/unset(0) notifications
  270. * mask each bit defines a kind of notification to set/unset
  271. */
  272. static int pcan_usb_fd_set_filter_ext(struct peak_usb_device *dev,
  273. bool onoff, u16 ext_mask, u16 usb_mask)
  274. {
  275. struct pcan_ufd_filter_ext *cmd = pcan_usb_fd_cmd_buffer(dev);
  276. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  277. (onoff) ? PUCAN_CMD_RX_FRAME_ENABLE :
  278. PUCAN_CMD_RX_FRAME_DISABLE);
  279. cmd->ext_mask = cpu_to_le16(ext_mask);
  280. cmd->usb_mask = cpu_to_le16(usb_mask);
  281. /* send the command */
  282. return pcan_usb_fd_send_cmd(dev, ++cmd);
  283. }
  284. /* setup LED control */
  285. static int pcan_usb_fd_set_can_led(struct peak_usb_device *dev, u8 led_mode)
  286. {
  287. struct pcan_ufd_led *cmd = pcan_usb_fd_cmd_buffer(dev);
  288. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  289. PCAN_UFD_CMD_LED_SET);
  290. cmd->mode = led_mode;
  291. /* send the command */
  292. return pcan_usb_fd_send_cmd(dev, ++cmd);
  293. }
  294. /* set CAN clock domain */
  295. static int pcan_usb_fd_set_clock_domain(struct peak_usb_device *dev,
  296. u8 clk_mode)
  297. {
  298. struct pcan_ufd_clock *cmd = pcan_usb_fd_cmd_buffer(dev);
  299. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  300. PCAN_UFD_CMD_CLK_SET);
  301. cmd->mode = clk_mode;
  302. /* send the command */
  303. return pcan_usb_fd_send_cmd(dev, ++cmd);
  304. }
  305. /* set bittiming for CAN and CAN-FD header */
  306. static int pcan_usb_fd_set_bittiming_slow(struct peak_usb_device *dev,
  307. struct can_bittiming *bt)
  308. {
  309. struct pucan_timing_slow *cmd = pcan_usb_fd_cmd_buffer(dev);
  310. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  311. PUCAN_CMD_TIMING_SLOW);
  312. cmd->sjw_t = PUCAN_TSLOW_SJW_T(bt->sjw - 1,
  313. dev->can.ctrlmode & CAN_CTRLMODE_3_SAMPLES);
  314. cmd->tseg2 = PUCAN_TSLOW_TSEG2(bt->phase_seg2 - 1);
  315. cmd->tseg1 = PUCAN_TSLOW_TSEG1(bt->prop_seg + bt->phase_seg1 - 1);
  316. cmd->brp = cpu_to_le16(PUCAN_TSLOW_BRP(bt->brp - 1));
  317. cmd->ewl = 96; /* default */
  318. /* send the command */
  319. return pcan_usb_fd_send_cmd(dev, ++cmd);
  320. }
  321. /* set CAN-FD bittiming for data */
  322. static int pcan_usb_fd_set_bittiming_fast(struct peak_usb_device *dev,
  323. struct can_bittiming *bt)
  324. {
  325. struct pucan_timing_fast *cmd = pcan_usb_fd_cmd_buffer(dev);
  326. cmd->opcode_channel = pucan_cmd_opcode_channel(dev,
  327. PUCAN_CMD_TIMING_FAST);
  328. cmd->sjw = PUCAN_TFAST_SJW(bt->sjw - 1);
  329. cmd->tseg2 = PUCAN_TFAST_TSEG2(bt->phase_seg2 - 1);
  330. cmd->tseg1 = PUCAN_TFAST_TSEG1(bt->prop_seg + bt->phase_seg1 - 1);
  331. cmd->brp = cpu_to_le16(PUCAN_TFAST_BRP(bt->brp - 1));
  332. /* send the command */
  333. return pcan_usb_fd_send_cmd(dev, ++cmd);
  334. }
  335. /* handle restart but in asynchronously way
  336. * (uses PCAN-USB Pro code to complete asynchronous request)
  337. */
  338. static int pcan_usb_fd_restart_async(struct peak_usb_device *dev,
  339. struct urb *urb, u8 *buf)
  340. {
  341. u8 *pc = buf;
  342. /* build the entire cmds list in the provided buffer, to go back into
  343. * operational mode.
  344. */
  345. pc += pcan_usb_fd_build_restart_cmd(dev, pc);
  346. /* add EOC */
  347. memset(pc, 0xff, sizeof(struct pucan_command));
  348. pc += sizeof(struct pucan_command);
  349. /* complete the URB */
  350. usb_fill_bulk_urb(urb, dev->udev,
  351. usb_sndbulkpipe(dev->udev, PCAN_USBPRO_EP_CMDOUT),
  352. buf, pc - buf,
  353. pcan_usb_pro_restart_complete, dev);
  354. /* and submit it. */
  355. return usb_submit_urb(urb, GFP_ATOMIC);
  356. }
  357. static int pcan_usb_fd_drv_loaded(struct peak_usb_device *dev, bool loaded)
  358. {
  359. struct pcan_usb_fd_device *pdev =
  360. container_of(dev, struct pcan_usb_fd_device, dev);
  361. pdev->cmd_buffer_addr[0] = 0;
  362. pdev->cmd_buffer_addr[1] = !!loaded;
  363. return pcan_usb_pro_send_req(dev,
  364. PCAN_USBPRO_REQ_FCT,
  365. PCAN_USBPRO_FCT_DRVLD,
  366. pdev->cmd_buffer_addr,
  367. PCAN_USBPRO_FCT_DRVLD_REQ_LEN);
  368. }
  369. static int pcan_usb_fd_decode_canmsg(struct pcan_usb_fd_if *usb_if,
  370. struct pucan_msg *rx_msg)
  371. {
  372. struct pucan_rx_msg *rm = (struct pucan_rx_msg *)rx_msg;
  373. struct peak_usb_device *dev = usb_if->dev[pucan_msg_get_channel(rm)];
  374. struct net_device *netdev = dev->netdev;
  375. struct canfd_frame *cfd;
  376. struct sk_buff *skb;
  377. const u16 rx_msg_flags = le16_to_cpu(rm->flags);
  378. if (rx_msg_flags & PUCAN_MSG_EXT_DATA_LEN) {
  379. /* CANFD frame case */
  380. skb = alloc_canfd_skb(netdev, &cfd);
  381. if (!skb)
  382. return -ENOMEM;
  383. if (rx_msg_flags & PUCAN_MSG_BITRATE_SWITCH)
  384. cfd->flags |= CANFD_BRS;
  385. if (rx_msg_flags & PUCAN_MSG_ERROR_STATE_IND)
  386. cfd->flags |= CANFD_ESI;
  387. cfd->len = can_dlc2len(get_canfd_dlc(pucan_msg_get_dlc(rm)));
  388. } else {
  389. /* CAN 2.0 frame case */
  390. skb = alloc_can_skb(netdev, (struct can_frame **)&cfd);
  391. if (!skb)
  392. return -ENOMEM;
  393. cfd->len = get_can_dlc(pucan_msg_get_dlc(rm));
  394. }
  395. cfd->can_id = le32_to_cpu(rm->can_id);
  396. if (rx_msg_flags & PUCAN_MSG_EXT_ID)
  397. cfd->can_id |= CAN_EFF_FLAG;
  398. if (rx_msg_flags & PUCAN_MSG_RTR)
  399. cfd->can_id |= CAN_RTR_FLAG;
  400. else
  401. memcpy(cfd->data, rm->d, cfd->len);
  402. peak_usb_netif_rx(skb, &usb_if->time_ref,
  403. le32_to_cpu(rm->ts_low), le32_to_cpu(rm->ts_high));
  404. netdev->stats.rx_packets++;
  405. netdev->stats.rx_bytes += cfd->len;
  406. return 0;
  407. }
  408. /* handle uCAN status message */
  409. static int pcan_usb_fd_decode_status(struct pcan_usb_fd_if *usb_if,
  410. struct pucan_msg *rx_msg)
  411. {
  412. struct pucan_status_msg *sm = (struct pucan_status_msg *)rx_msg;
  413. struct peak_usb_device *dev = usb_if->dev[pucan_stmsg_get_channel(sm)];
  414. struct pcan_usb_fd_device *pdev =
  415. container_of(dev, struct pcan_usb_fd_device, dev);
  416. enum can_state new_state = CAN_STATE_ERROR_ACTIVE;
  417. enum can_state rx_state, tx_state;
  418. struct net_device *netdev = dev->netdev;
  419. struct can_frame *cf;
  420. struct sk_buff *skb;
  421. /* nothing should be sent while in BUS_OFF state */
  422. if (dev->can.state == CAN_STATE_BUS_OFF)
  423. return 0;
  424. if (sm->channel_p_w_b & PUCAN_BUS_BUSOFF) {
  425. new_state = CAN_STATE_BUS_OFF;
  426. } else if (sm->channel_p_w_b & PUCAN_BUS_PASSIVE) {
  427. new_state = CAN_STATE_ERROR_PASSIVE;
  428. } else if (sm->channel_p_w_b & PUCAN_BUS_WARNING) {
  429. new_state = CAN_STATE_ERROR_WARNING;
  430. } else {
  431. /* no error bit (so, no error skb, back to active state) */
  432. dev->can.state = CAN_STATE_ERROR_ACTIVE;
  433. pdev->bec.txerr = 0;
  434. pdev->bec.rxerr = 0;
  435. return 0;
  436. }
  437. /* state hasn't changed */
  438. if (new_state == dev->can.state)
  439. return 0;
  440. /* handle bus state change */
  441. tx_state = (pdev->bec.txerr >= pdev->bec.rxerr) ? new_state : 0;
  442. rx_state = (pdev->bec.txerr <= pdev->bec.rxerr) ? new_state : 0;
  443. /* allocate an skb to store the error frame */
  444. skb = alloc_can_err_skb(netdev, &cf);
  445. if (skb)
  446. can_change_state(netdev, cf, tx_state, rx_state);
  447. /* things must be done even in case of OOM */
  448. if (new_state == CAN_STATE_BUS_OFF)
  449. can_bus_off(netdev);
  450. if (!skb)
  451. return -ENOMEM;
  452. peak_usb_netif_rx(skb, &usb_if->time_ref,
  453. le32_to_cpu(sm->ts_low), le32_to_cpu(sm->ts_high));
  454. netdev->stats.rx_packets++;
  455. netdev->stats.rx_bytes += cf->can_dlc;
  456. return 0;
  457. }
  458. /* handle uCAN error message */
  459. static int pcan_usb_fd_decode_error(struct pcan_usb_fd_if *usb_if,
  460. struct pucan_msg *rx_msg)
  461. {
  462. struct pucan_error_msg *er = (struct pucan_error_msg *)rx_msg;
  463. struct peak_usb_device *dev = usb_if->dev[pucan_ermsg_get_channel(er)];
  464. struct pcan_usb_fd_device *pdev =
  465. container_of(dev, struct pcan_usb_fd_device, dev);
  466. /* keep a trace of tx and rx error counters for later use */
  467. pdev->bec.txerr = er->tx_err_cnt;
  468. pdev->bec.rxerr = er->rx_err_cnt;
  469. return 0;
  470. }
  471. /* handle uCAN overrun message */
  472. static int pcan_usb_fd_decode_overrun(struct pcan_usb_fd_if *usb_if,
  473. struct pucan_msg *rx_msg)
  474. {
  475. struct pcan_ufd_ovr_msg *ov = (struct pcan_ufd_ovr_msg *)rx_msg;
  476. struct peak_usb_device *dev = usb_if->dev[pufd_omsg_get_channel(ov)];
  477. struct net_device *netdev = dev->netdev;
  478. struct can_frame *cf;
  479. struct sk_buff *skb;
  480. /* allocate an skb to store the error frame */
  481. skb = alloc_can_err_skb(netdev, &cf);
  482. if (!skb)
  483. return -ENOMEM;
  484. cf->can_id |= CAN_ERR_CRTL;
  485. cf->data[1] |= CAN_ERR_CRTL_RX_OVERFLOW;
  486. peak_usb_netif_rx(skb, &usb_if->time_ref,
  487. le32_to_cpu(ov->ts_low), le32_to_cpu(ov->ts_high));
  488. netdev->stats.rx_over_errors++;
  489. netdev->stats.rx_errors++;
  490. return 0;
  491. }
  492. /* handle USB calibration message */
  493. static void pcan_usb_fd_decode_ts(struct pcan_usb_fd_if *usb_if,
  494. struct pucan_msg *rx_msg)
  495. {
  496. struct pcan_ufd_ts_msg *ts = (struct pcan_ufd_ts_msg *)rx_msg;
  497. /* should wait until clock is stabilized */
  498. if (usb_if->cm_ignore_count > 0)
  499. usb_if->cm_ignore_count--;
  500. else
  501. peak_usb_set_ts_now(&usb_if->time_ref, le32_to_cpu(ts->ts_low));
  502. }
  503. /* callback for bulk IN urb */
  504. static int pcan_usb_fd_decode_buf(struct peak_usb_device *dev, struct urb *urb)
  505. {
  506. struct pcan_usb_fd_if *usb_if = pcan_usb_fd_dev_if(dev);
  507. struct net_device *netdev = dev->netdev;
  508. struct pucan_msg *rx_msg;
  509. u8 *msg_ptr, *msg_end;
  510. int err = 0;
  511. /* loop reading all the records from the incoming message */
  512. msg_ptr = urb->transfer_buffer;
  513. msg_end = urb->transfer_buffer + urb->actual_length;
  514. for (; msg_ptr < msg_end;) {
  515. u16 rx_msg_type, rx_msg_size;
  516. rx_msg = (struct pucan_msg *)msg_ptr;
  517. if (!rx_msg->size) {
  518. /* null packet found: end of list */
  519. break;
  520. }
  521. rx_msg_size = le16_to_cpu(rx_msg->size);
  522. rx_msg_type = le16_to_cpu(rx_msg->type);
  523. /* check if the record goes out of current packet */
  524. if (msg_ptr + rx_msg_size > msg_end) {
  525. netdev_err(netdev,
  526. "got frag rec: should inc usb rx buf sze\n");
  527. err = -EBADMSG;
  528. break;
  529. }
  530. switch (rx_msg_type) {
  531. case PUCAN_MSG_CAN_RX:
  532. err = pcan_usb_fd_decode_canmsg(usb_if, rx_msg);
  533. if (err < 0)
  534. goto fail;
  535. break;
  536. case PCAN_UFD_MSG_CALIBRATION:
  537. pcan_usb_fd_decode_ts(usb_if, rx_msg);
  538. break;
  539. case PUCAN_MSG_ERROR:
  540. err = pcan_usb_fd_decode_error(usb_if, rx_msg);
  541. if (err < 0)
  542. goto fail;
  543. break;
  544. case PUCAN_MSG_STATUS:
  545. err = pcan_usb_fd_decode_status(usb_if, rx_msg);
  546. if (err < 0)
  547. goto fail;
  548. break;
  549. case PCAN_UFD_MSG_OVERRUN:
  550. err = pcan_usb_fd_decode_overrun(usb_if, rx_msg);
  551. if (err < 0)
  552. goto fail;
  553. break;
  554. default:
  555. netdev_err(netdev,
  556. "unhandled msg type 0x%02x (%d): ignored\n",
  557. rx_msg_type, rx_msg_type);
  558. break;
  559. }
  560. msg_ptr += rx_msg_size;
  561. }
  562. fail:
  563. if (err)
  564. pcan_dump_mem("received msg",
  565. urb->transfer_buffer, urb->actual_length);
  566. return err;
  567. }
  568. /* CAN/CANFD frames encoding callback */
  569. static int pcan_usb_fd_encode_msg(struct peak_usb_device *dev,
  570. struct sk_buff *skb, u8 *obuf, size_t *size)
  571. {
  572. struct pucan_tx_msg *tx_msg = (struct pucan_tx_msg *)obuf;
  573. struct canfd_frame *cfd = (struct canfd_frame *)skb->data;
  574. u16 tx_msg_size, tx_msg_flags;
  575. u8 can_dlc;
  576. tx_msg_size = ALIGN(sizeof(struct pucan_tx_msg) + cfd->len, 4);
  577. tx_msg->size = cpu_to_le16(tx_msg_size);
  578. tx_msg->type = cpu_to_le16(PUCAN_MSG_CAN_TX);
  579. tx_msg_flags = 0;
  580. if (cfd->can_id & CAN_EFF_FLAG) {
  581. tx_msg_flags |= PUCAN_MSG_EXT_ID;
  582. tx_msg->can_id = cpu_to_le32(cfd->can_id & CAN_EFF_MASK);
  583. } else {
  584. tx_msg->can_id = cpu_to_le32(cfd->can_id & CAN_SFF_MASK);
  585. }
  586. if (can_is_canfd_skb(skb)) {
  587. /* considering a CANFD frame */
  588. can_dlc = can_len2dlc(cfd->len);
  589. tx_msg_flags |= PUCAN_MSG_EXT_DATA_LEN;
  590. if (cfd->flags & CANFD_BRS)
  591. tx_msg_flags |= PUCAN_MSG_BITRATE_SWITCH;
  592. if (cfd->flags & CANFD_ESI)
  593. tx_msg_flags |= PUCAN_MSG_ERROR_STATE_IND;
  594. } else {
  595. /* CAND 2.0 frames */
  596. can_dlc = cfd->len;
  597. if (cfd->can_id & CAN_RTR_FLAG)
  598. tx_msg_flags |= PUCAN_MSG_RTR;
  599. }
  600. tx_msg->flags = cpu_to_le16(tx_msg_flags);
  601. tx_msg->channel_dlc = PUCAN_MSG_CHANNEL_DLC(dev->ctrl_idx, can_dlc);
  602. memcpy(tx_msg->d, cfd->data, cfd->len);
  603. /* add null size message to tag the end (messages are 32-bits aligned)
  604. */
  605. tx_msg = (struct pucan_tx_msg *)(obuf + tx_msg_size);
  606. tx_msg->size = 0;
  607. /* set the whole size of the USB packet to send */
  608. *size = tx_msg_size + sizeof(u32);
  609. return 0;
  610. }
  611. /* start the interface (last chance before set bus on) */
  612. static int pcan_usb_fd_start(struct peak_usb_device *dev)
  613. {
  614. struct pcan_usb_fd_device *pdev =
  615. container_of(dev, struct pcan_usb_fd_device, dev);
  616. int err;
  617. /* set filter mode: all acceptance */
  618. err = pcan_usb_fd_set_filter_std(dev, -1, 0xffffffff);
  619. if (err)
  620. return err;
  621. /* opening first device: */
  622. if (pdev->usb_if->dev_opened_count == 0) {
  623. /* reset time_ref */
  624. peak_usb_init_time_ref(&pdev->usb_if->time_ref,
  625. &pcan_usb_pro_fd);
  626. /* enable USB calibration messages */
  627. err = pcan_usb_fd_set_filter_ext(dev, 1,
  628. PUCAN_FLTEXT_ERROR,
  629. PCAN_UFD_FLTEXT_CALIBRATION);
  630. }
  631. pdev->usb_if->dev_opened_count++;
  632. /* reset cached error counters */
  633. pdev->bec.txerr = 0;
  634. pdev->bec.rxerr = 0;
  635. return err;
  636. }
  637. /* socket callback used to copy berr counters values receieved through USB */
  638. static int pcan_usb_fd_get_berr_counter(const struct net_device *netdev,
  639. struct can_berr_counter *bec)
  640. {
  641. struct peak_usb_device *dev = netdev_priv(netdev);
  642. struct pcan_usb_fd_device *pdev =
  643. container_of(dev, struct pcan_usb_fd_device, dev);
  644. *bec = pdev->bec;
  645. /* must return 0 */
  646. return 0;
  647. }
  648. /* stop interface (last chance before set bus off) */
  649. static int pcan_usb_fd_stop(struct peak_usb_device *dev)
  650. {
  651. struct pcan_usb_fd_device *pdev =
  652. container_of(dev, struct pcan_usb_fd_device, dev);
  653. /* turn off special msgs for that interface if no other dev opened */
  654. if (pdev->usb_if->dev_opened_count == 1)
  655. pcan_usb_fd_set_filter_ext(dev, 0,
  656. PUCAN_FLTEXT_ERROR,
  657. PCAN_UFD_FLTEXT_CALIBRATION);
  658. pdev->usb_if->dev_opened_count--;
  659. return 0;
  660. }
  661. /* called when probing, to initialize a device object */
  662. static int pcan_usb_fd_init(struct peak_usb_device *dev)
  663. {
  664. struct pcan_usb_fd_device *pdev =
  665. container_of(dev, struct pcan_usb_fd_device, dev);
  666. int i, err = -ENOMEM;
  667. /* do this for 1st channel only */
  668. if (!dev->prev_siblings) {
  669. /* allocate netdevices common structure attached to first one */
  670. pdev->usb_if = kzalloc(sizeof(*pdev->usb_if), GFP_KERNEL);
  671. if (!pdev->usb_if)
  672. goto err_out;
  673. /* allocate command buffer once for all for the interface */
  674. pdev->cmd_buffer_addr = kmalloc(PCAN_UFD_CMD_BUFFER_SIZE,
  675. GFP_KERNEL);
  676. if (!pdev->cmd_buffer_addr)
  677. goto err_out_1;
  678. /* number of ts msgs to ignore before taking one into account */
  679. pdev->usb_if->cm_ignore_count = 5;
  680. err = pcan_usb_pro_send_req(dev, PCAN_USBPRO_REQ_INFO,
  681. PCAN_USBPRO_INFO_FW,
  682. &pdev->usb_if->fw_info,
  683. sizeof(pdev->usb_if->fw_info));
  684. if (err) {
  685. dev_err(dev->netdev->dev.parent,
  686. "unable to read %s firmware info (err %d)\n",
  687. dev->adapter->name, err);
  688. goto err_out_2;
  689. }
  690. /* explicit use of dev_xxx() instead of netdev_xxx() here:
  691. * information displayed are related to the device itself, not
  692. * to the canx (channel) device.
  693. */
  694. dev_info(dev->netdev->dev.parent,
  695. "PEAK-System %s v%u fw v%u.%u.%u (%u channels)\n",
  696. dev->adapter->name, pdev->usb_if->fw_info.hw_version,
  697. pdev->usb_if->fw_info.fw_version[0],
  698. pdev->usb_if->fw_info.fw_version[1],
  699. pdev->usb_if->fw_info.fw_version[2],
  700. dev->adapter->ctrl_count);
  701. /* the currently supported hw is non-ISO */
  702. dev->can.ctrlmode = CAN_CTRLMODE_FD_NON_ISO;
  703. /* tell the hardware the can driver is running */
  704. err = pcan_usb_fd_drv_loaded(dev, 1);
  705. if (err) {
  706. dev_err(dev->netdev->dev.parent,
  707. "unable to tell %s driver is loaded (err %d)\n",
  708. dev->adapter->name, err);
  709. goto err_out_2;
  710. }
  711. } else {
  712. /* otherwise, simply copy previous sibling's values */
  713. struct pcan_usb_fd_device *ppdev =
  714. container_of(dev->prev_siblings,
  715. struct pcan_usb_fd_device, dev);
  716. pdev->usb_if = ppdev->usb_if;
  717. pdev->cmd_buffer_addr = ppdev->cmd_buffer_addr;
  718. }
  719. pdev->usb_if->dev[dev->ctrl_idx] = dev;
  720. dev->device_number =
  721. le32_to_cpu(pdev->usb_if->fw_info.dev_id[dev->ctrl_idx]);
  722. /* set clock domain */
  723. for (i = 0; i < ARRAY_SIZE(pcan_usb_fd_clk_freq); i++)
  724. if (dev->adapter->clock.freq == pcan_usb_fd_clk_freq[i])
  725. break;
  726. if (i >= ARRAY_SIZE(pcan_usb_fd_clk_freq)) {
  727. dev_warn(dev->netdev->dev.parent,
  728. "incompatible clock frequencies\n");
  729. err = -EINVAL;
  730. goto err_out_2;
  731. }
  732. pcan_usb_fd_set_clock_domain(dev, i);
  733. /* set LED in default state (end of init phase) */
  734. pcan_usb_fd_set_can_led(dev, PCAN_UFD_LED_DEF);
  735. return 0;
  736. err_out_2:
  737. kfree(pdev->cmd_buffer_addr);
  738. err_out_1:
  739. kfree(pdev->usb_if);
  740. err_out:
  741. return err;
  742. }
  743. /* called when driver module is being unloaded */
  744. static void pcan_usb_fd_exit(struct peak_usb_device *dev)
  745. {
  746. struct pcan_usb_fd_device *pdev =
  747. container_of(dev, struct pcan_usb_fd_device, dev);
  748. /* when rmmod called before unplug and if down, should reset things
  749. * before leaving
  750. */
  751. if (dev->can.state != CAN_STATE_STOPPED) {
  752. /* set bus off on the corresponding channel */
  753. pcan_usb_fd_set_bus(dev, 0);
  754. }
  755. /* switch off corresponding CAN LEDs */
  756. pcan_usb_fd_set_can_led(dev, PCAN_UFD_LED_OFF);
  757. /* if channel #0 (only) */
  758. if (dev->ctrl_idx == 0) {
  759. /* turn off calibration message if any device were opened */
  760. if (pdev->usb_if->dev_opened_count > 0)
  761. pcan_usb_fd_set_filter_ext(dev, 0,
  762. PUCAN_FLTEXT_ERROR,
  763. PCAN_UFD_FLTEXT_CALIBRATION);
  764. /* tell USB adapter that the driver is being unloaded */
  765. pcan_usb_fd_drv_loaded(dev, 0);
  766. }
  767. }
  768. /* called when the USB adapter is unplugged */
  769. static void pcan_usb_fd_free(struct peak_usb_device *dev)
  770. {
  771. /* last device: can free shared objects now */
  772. if (!dev->prev_siblings && !dev->next_siblings) {
  773. struct pcan_usb_fd_device *pdev =
  774. container_of(dev, struct pcan_usb_fd_device, dev);
  775. /* free commands buffer */
  776. kfree(pdev->cmd_buffer_addr);
  777. /* free usb interface object */
  778. kfree(pdev->usb_if);
  779. }
  780. }
  781. /* describes the PCAN-USB FD adapter */
  782. const struct peak_usb_adapter pcan_usb_fd = {
  783. .name = "PCAN-USB FD",
  784. .device_id = PCAN_USBFD_PRODUCT_ID,
  785. .ctrl_count = PCAN_USBFD_CHANNEL_COUNT,
  786. .ctrlmode_supported = CAN_CTRLMODE_FD |
  787. CAN_CTRLMODE_3_SAMPLES | CAN_CTRLMODE_LISTENONLY,
  788. .clock = {
  789. .freq = PCAN_UFD_CRYSTAL_HZ,
  790. },
  791. .bittiming_const = {
  792. .name = "pcan_usb_fd",
  793. .tseg1_min = 1,
  794. .tseg1_max = 64,
  795. .tseg2_min = 1,
  796. .tseg2_max = 16,
  797. .sjw_max = 16,
  798. .brp_min = 1,
  799. .brp_max = 1024,
  800. .brp_inc = 1,
  801. },
  802. .data_bittiming_const = {
  803. .name = "pcan_usb_fd",
  804. .tseg1_min = 1,
  805. .tseg1_max = 16,
  806. .tseg2_min = 1,
  807. .tseg2_max = 8,
  808. .sjw_max = 4,
  809. .brp_min = 1,
  810. .brp_max = 1024,
  811. .brp_inc = 1,
  812. },
  813. /* size of device private data */
  814. .sizeof_dev_private = sizeof(struct pcan_usb_fd_device),
  815. /* timestamps usage */
  816. .ts_used_bits = 32,
  817. .ts_period = 1000000, /* calibration period in ts. */
  818. .us_per_ts_scale = 1, /* us = (ts * scale) >> shift */
  819. .us_per_ts_shift = 0,
  820. /* give here messages in/out endpoints */
  821. .ep_msg_in = PCAN_USBPRO_EP_MSGIN,
  822. .ep_msg_out = {PCAN_USBPRO_EP_MSGOUT_0},
  823. /* size of rx/tx usb buffers */
  824. .rx_buffer_size = PCAN_UFD_RX_BUFFER_SIZE,
  825. .tx_buffer_size = PCAN_UFD_TX_BUFFER_SIZE,
  826. /* device callbacks */
  827. .intf_probe = pcan_usb_pro_probe, /* same as PCAN-USB Pro */
  828. .dev_init = pcan_usb_fd_init,
  829. .dev_exit = pcan_usb_fd_exit,
  830. .dev_free = pcan_usb_fd_free,
  831. .dev_set_bus = pcan_usb_fd_set_bus,
  832. .dev_set_bittiming = pcan_usb_fd_set_bittiming_slow,
  833. .dev_set_data_bittiming = pcan_usb_fd_set_bittiming_fast,
  834. .dev_decode_buf = pcan_usb_fd_decode_buf,
  835. .dev_start = pcan_usb_fd_start,
  836. .dev_stop = pcan_usb_fd_stop,
  837. .dev_restart_async = pcan_usb_fd_restart_async,
  838. .dev_encode_msg = pcan_usb_fd_encode_msg,
  839. .do_get_berr_counter = pcan_usb_fd_get_berr_counter,
  840. };
  841. /* describes the PCAN-USB Pro FD adapter */
  842. const struct peak_usb_adapter pcan_usb_pro_fd = {
  843. .name = "PCAN-USB Pro FD",
  844. .device_id = PCAN_USBPROFD_PRODUCT_ID,
  845. .ctrl_count = PCAN_USBPROFD_CHANNEL_COUNT,
  846. .ctrlmode_supported = CAN_CTRLMODE_FD |
  847. CAN_CTRLMODE_3_SAMPLES | CAN_CTRLMODE_LISTENONLY,
  848. .clock = {
  849. .freq = PCAN_UFD_CRYSTAL_HZ,
  850. },
  851. .bittiming_const = {
  852. .name = "pcan_usb_pro_fd",
  853. .tseg1_min = 1,
  854. .tseg1_max = 64,
  855. .tseg2_min = 1,
  856. .tseg2_max = 16,
  857. .sjw_max = 16,
  858. .brp_min = 1,
  859. .brp_max = 1024,
  860. .brp_inc = 1,
  861. },
  862. .data_bittiming_const = {
  863. .name = "pcan_usb_pro_fd",
  864. .tseg1_min = 1,
  865. .tseg1_max = 16,
  866. .tseg2_min = 1,
  867. .tseg2_max = 8,
  868. .sjw_max = 4,
  869. .brp_min = 1,
  870. .brp_max = 1024,
  871. .brp_inc = 1,
  872. },
  873. /* size of device private data */
  874. .sizeof_dev_private = sizeof(struct pcan_usb_fd_device),
  875. /* timestamps usage */
  876. .ts_used_bits = 32,
  877. .ts_period = 1000000, /* calibration period in ts. */
  878. .us_per_ts_scale = 1, /* us = (ts * scale) >> shift */
  879. .us_per_ts_shift = 0,
  880. /* give here messages in/out endpoints */
  881. .ep_msg_in = PCAN_USBPRO_EP_MSGIN,
  882. .ep_msg_out = {PCAN_USBPRO_EP_MSGOUT_0, PCAN_USBPRO_EP_MSGOUT_1},
  883. /* size of rx/tx usb buffers */
  884. .rx_buffer_size = PCAN_UFD_RX_BUFFER_SIZE,
  885. .tx_buffer_size = PCAN_UFD_TX_BUFFER_SIZE,
  886. /* device callbacks */
  887. .intf_probe = pcan_usb_pro_probe, /* same as PCAN-USB Pro */
  888. .dev_init = pcan_usb_fd_init,
  889. .dev_exit = pcan_usb_fd_exit,
  890. .dev_free = pcan_usb_fd_free,
  891. .dev_set_bus = pcan_usb_fd_set_bus,
  892. .dev_set_bittiming = pcan_usb_fd_set_bittiming_slow,
  893. .dev_set_data_bittiming = pcan_usb_fd_set_bittiming_fast,
  894. .dev_decode_buf = pcan_usb_fd_decode_buf,
  895. .dev_start = pcan_usb_fd_start,
  896. .dev_stop = pcan_usb_fd_stop,
  897. .dev_restart_async = pcan_usb_fd_restart_async,
  898. .dev_encode_msg = pcan_usb_fd_encode_msg,
  899. .do_get_berr_counter = pcan_usb_fd_get_berr_counter,
  900. };