stlink: remove 18 MHz jtag freq for stlink v2
[openocd.git] / src / jtag / drivers / stlink_usb.c
1 /***************************************************************************
2 * SWIM contributions by Ake Rehnman *
3 * Copyright (C) 2017 Ake Rehnman *
4 * ake.rehnman(at)gmail.com *
5 * *
6 * Copyright (C) 2011-2012 by Mathias Kuester *
7 * Mathias Kuester <kesmtp@freenet.de> *
8 * *
9 * Copyright (C) 2012 by Spencer Oliver *
10 * spen@spen-soft.co.uk *
11 * *
12 * This code is based on https://github.com/texane/stlink *
13 * *
14 * This program is free software; you can redistribute it and/or modify *
15 * it under the terms of the GNU General Public License as published by *
16 * the Free Software Foundation; either version 2 of the License, or *
17 * (at your option) any later version. *
18 * *
19 * This program is distributed in the hope that it will be useful, *
20 * but WITHOUT ANY WARRANTY; without even the implied warranty of *
21 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the *
22 * GNU General Public License for more details. *
23 * *
24 * You should have received a copy of the GNU General Public License *
25 * along with this program. If not, see <http://www.gnu.org/licenses/>. *
26 ***************************************************************************/
27
28 #ifdef HAVE_CONFIG_H
29 #include "config.h"
30 #endif
31
32 /* project specific includes */
33 #include <helper/binarybuffer.h>
34 #include <helper/bits.h>
35 #include <jtag/interface.h>
36 #include <jtag/hla/hla_layout.h>
37 #include <jtag/hla/hla_transport.h>
38 #include <jtag/hla/hla_interface.h>
39 #include <target/target.h>
40 #include <transport/transport.h>
41
42 #include <target/cortex_m.h>
43
44 #include "libusb_helper.h"
45
46 #ifdef HAVE_LIBUSB1
47 #define USE_LIBUSB_ASYNCIO
48 #endif
49
50 #define STLINK_SERIAL_LEN 24
51
52 #define ENDPOINT_IN 0x80
53 #define ENDPOINT_OUT 0x00
54
55 #define STLINK_WRITE_TIMEOUT 1000
56 #define STLINK_READ_TIMEOUT 1000
57
58 #define STLINK_NULL_EP 0
59 #define STLINK_RX_EP (1|ENDPOINT_IN)
60 #define STLINK_TX_EP (2|ENDPOINT_OUT)
61 #define STLINK_TRACE_EP (3|ENDPOINT_IN)
62
63 #define STLINK_V2_1_TX_EP (1|ENDPOINT_OUT)
64 #define STLINK_V2_1_TRACE_EP (2|ENDPOINT_IN)
65
66 #define STLINK_SG_SIZE (31)
67 #define STLINK_DATA_SIZE (4096)
68 #define STLINK_CMD_SIZE_V2 (16)
69 #define STLINK_CMD_SIZE_V1 (10)
70
71 #define STLINK_V1_PID (0x3744)
72 #define STLINK_V2_PID (0x3748)
73 #define STLINK_V2_1_PID (0x374B)
74 #define STLINK_V2_1_NO_MSD_PID (0x3752)
75 #define STLINK_V3_USBLOADER_PID (0x374D)
76 #define STLINK_V3E_PID (0x374E)
77 #define STLINK_V3S_PID (0x374F)
78 #define STLINK_V3_2VCP_PID (0x3753)
79
80 /*
81 * ST-Link/V1, ST-Link/V2 and ST-Link/V2.1 are full-speed USB devices and
82 * this limits the bulk packet size and the 8bit read/writes to max 64 bytes.
83 * STLINK-V3 is a high speed USB 2.0 and the limit is 512 bytes from FW V3J6.
84 */
85 #define STLINK_MAX_RW8 (64)
86 #define STLINKV3_MAX_RW8 (512)
87
88 /* "WAIT" responses will be retried (with exponential backoff) at
89 * most this many times before failing to caller.
90 */
91 #define MAX_WAIT_RETRIES 8
92
93 enum stlink_jtag_api_version {
94 STLINK_JTAG_API_V1 = 1,
95 STLINK_JTAG_API_V2,
96 STLINK_JTAG_API_V3,
97 };
98
99 /** */
100 struct stlink_usb_version {
101 /** */
102 int stlink;
103 /** */
104 int jtag;
105 /** */
106 int swim;
107 /** jtag api version supported */
108 enum stlink_jtag_api_version jtag_api;
109 /** one bit for each feature supported. See macros STLINK_F_* */
110 uint32_t flags;
111 };
112
113 /** */
114 struct stlink_usb_handle_s {
115 /** */
116 struct libusb_device_handle *fd;
117 /** */
118 struct libusb_transfer *trans;
119 /** */
120 uint8_t rx_ep;
121 /** */
122 uint8_t tx_ep;
123 /** */
124 uint8_t trace_ep;
125 /** */
126 uint8_t cmdbuf[STLINK_SG_SIZE];
127 /** */
128 uint8_t cmdidx;
129 /** */
130 uint8_t direction;
131 /** */
132 uint8_t databuf[STLINK_DATA_SIZE];
133 /** */
134 uint32_t max_mem_packet;
135 /** */
136 enum hl_transports transport;
137 /** */
138 struct stlink_usb_version version;
139 /** */
140 uint16_t vid;
141 /** */
142 uint16_t pid;
143 /** */
144 struct {
145 /** whether SWO tracing is enabled or not */
146 bool enabled;
147 /** trace module source clock */
148 uint32_t source_hz;
149 } trace;
150 /** reconnect is needed next time we try to query the
151 * status */
152 bool reconnect_pending;
153 };
154
155 #define STLINK_SWIM_ERR_OK 0x00
156 #define STLINK_SWIM_BUSY 0x01
157 #define STLINK_DEBUG_ERR_OK 0x80
158 #define STLINK_DEBUG_ERR_FAULT 0x81
159 #define STLINK_SWD_AP_WAIT 0x10
160 #define STLINK_SWD_AP_FAULT 0x11
161 #define STLINK_SWD_AP_ERROR 0x12
162 #define STLINK_SWD_AP_PARITY_ERROR 0x13
163 #define STLINK_JTAG_GET_IDCODE_ERROR 0x09
164 #define STLINK_JTAG_WRITE_ERROR 0x0c
165 #define STLINK_JTAG_WRITE_VERIF_ERROR 0x0d
166 #define STLINK_SWD_DP_WAIT 0x14
167 #define STLINK_SWD_DP_FAULT 0x15
168 #define STLINK_SWD_DP_ERROR 0x16
169 #define STLINK_SWD_DP_PARITY_ERROR 0x17
170
171 #define STLINK_SWD_AP_WDATA_ERROR 0x18
172 #define STLINK_SWD_AP_STICKY_ERROR 0x19
173 #define STLINK_SWD_AP_STICKYORUN_ERROR 0x1a
174
175 #define STLINK_BAD_AP_ERROR 0x1d
176
177 #define STLINK_CORE_RUNNING 0x80
178 #define STLINK_CORE_HALTED 0x81
179 #define STLINK_CORE_STAT_UNKNOWN -1
180
181 #define STLINK_GET_VERSION 0xF1
182 #define STLINK_DEBUG_COMMAND 0xF2
183 #define STLINK_DFU_COMMAND 0xF3
184 #define STLINK_SWIM_COMMAND 0xF4
185 #define STLINK_GET_CURRENT_MODE 0xF5
186 #define STLINK_GET_TARGET_VOLTAGE 0xF7
187
188 #define STLINK_DEV_DFU_MODE 0x00
189 #define STLINK_DEV_MASS_MODE 0x01
190 #define STLINK_DEV_DEBUG_MODE 0x02
191 #define STLINK_DEV_SWIM_MODE 0x03
192 #define STLINK_DEV_BOOTLOADER_MODE 0x04
193 #define STLINK_DEV_UNKNOWN_MODE -1
194
195 #define STLINK_DFU_EXIT 0x07
196
197 /*
198 STLINK_SWIM_ENTER_SEQ
199 1.3ms low then 750Hz then 1.5kHz
200
201 STLINK_SWIM_GEN_RST
202 STM8 DM pulls reset pin low 50us
203
204 STLINK_SWIM_SPEED
205 uint8_t (0=low|1=high)
206
207 STLINK_SWIM_WRITEMEM
208 uint16_t length
209 uint32_t address
210
211 STLINK_SWIM_RESET
212 send syncronization seq (16us low, response 64 clocks low)
213 */
214 #define STLINK_SWIM_ENTER 0x00
215 #define STLINK_SWIM_EXIT 0x01
216 #define STLINK_SWIM_READ_CAP 0x02
217 #define STLINK_SWIM_SPEED 0x03
218 #define STLINK_SWIM_ENTER_SEQ 0x04
219 #define STLINK_SWIM_GEN_RST 0x05
220 #define STLINK_SWIM_RESET 0x06
221 #define STLINK_SWIM_ASSERT_RESET 0x07
222 #define STLINK_SWIM_DEASSERT_RESET 0x08
223 #define STLINK_SWIM_READSTATUS 0x09
224 #define STLINK_SWIM_WRITEMEM 0x0a
225 #define STLINK_SWIM_READMEM 0x0b
226 #define STLINK_SWIM_READBUF 0x0c
227
228 #define STLINK_DEBUG_GETSTATUS 0x01
229 #define STLINK_DEBUG_FORCEDEBUG 0x02
230 #define STLINK_DEBUG_APIV1_RESETSYS 0x03
231 #define STLINK_DEBUG_APIV1_READALLREGS 0x04
232 #define STLINK_DEBUG_APIV1_READREG 0x05
233 #define STLINK_DEBUG_APIV1_WRITEREG 0x06
234 #define STLINK_DEBUG_READMEM_32BIT 0x07
235 #define STLINK_DEBUG_WRITEMEM_32BIT 0x08
236 #define STLINK_DEBUG_RUNCORE 0x09
237 #define STLINK_DEBUG_STEPCORE 0x0a
238 #define STLINK_DEBUG_APIV1_SETFP 0x0b
239 #define STLINK_DEBUG_READMEM_8BIT 0x0c
240 #define STLINK_DEBUG_WRITEMEM_8BIT 0x0d
241 #define STLINK_DEBUG_APIV1_CLEARFP 0x0e
242 #define STLINK_DEBUG_APIV1_WRITEDEBUGREG 0x0f
243 #define STLINK_DEBUG_APIV1_SETWATCHPOINT 0x10
244
245 #define STLINK_DEBUG_ENTER_JTAG_RESET 0x00
246 #define STLINK_DEBUG_ENTER_SWD_NO_RESET 0xa3
247 #define STLINK_DEBUG_ENTER_JTAG_NO_RESET 0xa4
248
249 #define STLINK_DEBUG_APIV1_ENTER 0x20
250 #define STLINK_DEBUG_EXIT 0x21
251 #define STLINK_DEBUG_READCOREID 0x22
252
253 #define STLINK_DEBUG_APIV2_ENTER 0x30
254 #define STLINK_DEBUG_APIV2_READ_IDCODES 0x31
255 #define STLINK_DEBUG_APIV2_RESETSYS 0x32
256 #define STLINK_DEBUG_APIV2_READREG 0x33
257 #define STLINK_DEBUG_APIV2_WRITEREG 0x34
258 #define STLINK_DEBUG_APIV2_WRITEDEBUGREG 0x35
259 #define STLINK_DEBUG_APIV2_READDEBUGREG 0x36
260
261 #define STLINK_DEBUG_APIV2_READALLREGS 0x3A
262 #define STLINK_DEBUG_APIV2_GETLASTRWSTATUS 0x3B
263 #define STLINK_DEBUG_APIV2_DRIVE_NRST 0x3C
264
265 #define STLINK_DEBUG_APIV2_GETLASTRWSTATUS2 0x3E
266
267 #define STLINK_DEBUG_APIV2_START_TRACE_RX 0x40
268 #define STLINK_DEBUG_APIV2_STOP_TRACE_RX 0x41
269 #define STLINK_DEBUG_APIV2_GET_TRACE_NB 0x42
270 #define STLINK_DEBUG_APIV2_SWD_SET_FREQ 0x43
271 #define STLINK_DEBUG_APIV2_JTAG_SET_FREQ 0x44
272 #define STLINK_DEBUG_APIV2_READ_DAP_REG 0x45
273 #define STLINK_DEBUG_APIV2_WRITE_DAP_REG 0x46
274 #define STLINK_DEBUG_APIV2_READMEM_16BIT 0x47
275 #define STLINK_DEBUG_APIV2_WRITEMEM_16BIT 0x48
276
277 #define STLINK_DEBUG_APIV2_INIT_AP 0x4B
278 #define STLINK_DEBUG_APIV2_CLOSE_AP_DBG 0x4C
279
280 #define STLINK_APIV3_SET_COM_FREQ 0x61
281 #define STLINK_APIV3_GET_COM_FREQ 0x62
282
283 #define STLINK_APIV3_GET_VERSION_EX 0xFB
284
285 #define STLINK_DEBUG_APIV2_DRIVE_NRST_LOW 0x00
286 #define STLINK_DEBUG_APIV2_DRIVE_NRST_HIGH 0x01
287 #define STLINK_DEBUG_APIV2_DRIVE_NRST_PULSE 0x02
288
289 #define STLINK_DEBUG_PORT_ACCESS 0xffff
290
291 #define STLINK_TRACE_SIZE 4096
292 #define STLINK_TRACE_MAX_HZ 2000000
293
294 #define STLINK_V3_MAX_FREQ_NB 10
295
296 /** */
297 enum stlink_mode {
298 STLINK_MODE_UNKNOWN = 0,
299 STLINK_MODE_DFU,
300 STLINK_MODE_MASS,
301 STLINK_MODE_DEBUG_JTAG,
302 STLINK_MODE_DEBUG_SWD,
303 STLINK_MODE_DEBUG_SWIM
304 };
305
306 #define REQUEST_SENSE 0x03
307 #define REQUEST_SENSE_LENGTH 18
308
309 /*
310 * Map the relevant features, quirks and workaround for specific firmware
311 * version of stlink
312 */
313 #define STLINK_F_HAS_TRACE BIT(0)
314 #define STLINK_F_HAS_SWD_SET_FREQ BIT(1)
315 #define STLINK_F_HAS_JTAG_SET_FREQ BIT(2)
316 #define STLINK_F_HAS_MEM_16BIT BIT(3)
317 #define STLINK_F_HAS_GETLASTRWSTATUS2 BIT(4)
318 #define STLINK_F_HAS_DAP_REG BIT(5)
319 #define STLINK_F_QUIRK_JTAG_DP_READ BIT(6)
320 #define STLINK_F_HAS_AP_INIT BIT(7)
321 #define STLINK_F_HAS_DPBANKSEL BIT(8)
322 #define STLINK_F_HAS_RW8_512BYTES BIT(9)
323
324 /* aliases */
325 #define STLINK_F_HAS_TARGET_VOLT STLINK_F_HAS_TRACE
326
327 struct speed_map {
328 int speed;
329 int speed_divisor;
330 };
331
332 /* SWD clock speed */
333 static const struct speed_map stlink_khz_to_speed_map_swd[] = {
334 {4000, 0},
335 {1800, 1}, /* default */
336 {1200, 2},
337 {950, 3},
338 {480, 7},
339 {240, 15},
340 {125, 31},
341 {100, 40},
342 {50, 79},
343 {25, 158},
344 {15, 265},
345 {5, 798}
346 };
347
348 /* JTAG clock speed */
349 static const struct speed_map stlink_khz_to_speed_map_jtag[] = {
350 {9000, 4},
351 {4500, 8},
352 {2250, 16},
353 {1125, 32}, /* default */
354 {562, 64},
355 {281, 128},
356 {140, 256}
357 };
358
359 static void stlink_usb_init_buffer(void *handle, uint8_t direction, uint32_t size);
360 static int stlink_swim_status(void *handle);
361 void stlink_dump_speed_map(const struct speed_map *map, unsigned int map_size);
362 static int stlink_get_com_freq(void *handle, bool is_jtag, struct speed_map *map);
363 static int stlink_speed(void *handle, int khz, bool query);
364
365 /** */
366 static unsigned int stlink_usb_block(void *handle)
367 {
368 struct stlink_usb_handle_s *h = handle;
369
370 assert(handle != NULL);
371
372 if (h->version.flags & STLINK_F_HAS_RW8_512BYTES)
373 return STLINKV3_MAX_RW8;
374 else
375 return STLINK_MAX_RW8;
376 }
377
378
379
380 #ifdef USE_LIBUSB_ASYNCIO
381
382 static LIBUSB_CALL void sync_transfer_cb(struct libusb_transfer *transfer)
383 {
384 int *completed = transfer->user_data;
385 *completed = 1;
386 /* caller interprets result and frees transfer */
387 }
388
389
390 static void sync_transfer_wait_for_completion(struct libusb_transfer *transfer)
391 {
392 int r, *completed = transfer->user_data;
393
394 /* Assuming a single libusb context exists. There no existing interface into this
395 * module to pass a libusb context.
396 */
397 struct libusb_context *ctx = NULL;
398
399 while (!*completed) {
400 r = libusb_handle_events_completed(ctx, completed);
401 if (r < 0) {
402 if (r == LIBUSB_ERROR_INTERRUPTED)
403 continue;
404 libusb_cancel_transfer(transfer);
405 continue;
406 }
407 }
408 }
409
410
411 static int transfer_error_status(const struct libusb_transfer *transfer)
412 {
413 int r = 0;
414
415 switch (transfer->status) {
416 case LIBUSB_TRANSFER_COMPLETED:
417 r = 0;
418 break;
419 case LIBUSB_TRANSFER_TIMED_OUT:
420 r = LIBUSB_ERROR_TIMEOUT;
421 break;
422 case LIBUSB_TRANSFER_STALL:
423 r = LIBUSB_ERROR_PIPE;
424 break;
425 case LIBUSB_TRANSFER_OVERFLOW:
426 r = LIBUSB_ERROR_OVERFLOW;
427 break;
428 case LIBUSB_TRANSFER_NO_DEVICE:
429 r = LIBUSB_ERROR_NO_DEVICE;
430 break;
431 case LIBUSB_TRANSFER_ERROR:
432 case LIBUSB_TRANSFER_CANCELLED:
433 r = LIBUSB_ERROR_IO;
434 break;
435 default:
436 r = LIBUSB_ERROR_OTHER;
437 break;
438 }
439
440 return r;
441 }
442
443 struct jtag_xfer {
444 int ep;
445 uint8_t *buf;
446 size_t size;
447 /* Internal */
448 int retval;
449 int completed;
450 size_t transfer_size;
451 struct libusb_transfer *transfer;
452 };
453
454 static int jtag_libusb_bulk_transfer_n(
455 struct libusb_device_handle *dev_handle,
456 struct jtag_xfer *transfers,
457 size_t n_transfers,
458 int timeout)
459 {
460 int retval = 0;
461 int returnval = ERROR_OK;
462
463
464 for (size_t i = 0; i < n_transfers; ++i) {
465 transfers[i].retval = 0;
466 transfers[i].completed = 0;
467 transfers[i].transfer_size = 0;
468 transfers[i].transfer = libusb_alloc_transfer(0);
469
470 if (transfers[i].transfer == NULL) {
471 for (size_t j = 0; j < i; ++j)
472 libusb_free_transfer(transfers[j].transfer);
473
474 LOG_DEBUG("ERROR, failed to alloc usb transfers");
475 for (size_t k = 0; k < n_transfers; ++k)
476 transfers[k].retval = LIBUSB_ERROR_NO_MEM;
477 return ERROR_FAIL;
478 }
479 }
480
481 for (size_t i = 0; i < n_transfers; ++i) {
482 libusb_fill_bulk_transfer(
483 transfers[i].transfer,
484 dev_handle,
485 transfers[i].ep, transfers[i].buf, transfers[i].size,
486 sync_transfer_cb, &transfers[i].completed, timeout);
487 transfers[i].transfer->type = LIBUSB_TRANSFER_TYPE_BULK;
488
489 retval = libusb_submit_transfer(transfers[i].transfer);
490 if (retval < 0) {
491 LOG_DEBUG("ERROR, failed to submit transfer %zu, error %d", i, retval);
492
493 /* Probably no point continuing to submit transfers once a submission fails.
494 * As a result, tag all remaining transfers as errors.
495 */
496 for (size_t j = i; j < n_transfers; ++j)
497 transfers[j].retval = retval;
498
499 returnval = ERROR_FAIL;
500 break;
501 }
502 }
503
504 /* Wait for every submitted USB transfer to complete.
505 */
506 for (size_t i = 0; i < n_transfers; ++i) {
507 if (transfers[i].retval == 0) {
508 sync_transfer_wait_for_completion(transfers[i].transfer);
509
510 retval = transfer_error_status(transfers[i].transfer);
511 if (retval) {
512 returnval = ERROR_FAIL;
513 transfers[i].retval = retval;
514 LOG_DEBUG("ERROR, transfer %zu failed, error %d", i, retval);
515 } else {
516 /* Assuming actual_length is only valid if there is no transfer error.
517 */
518 transfers[i].transfer_size = transfers[i].transfer->actual_length;
519 }
520 }
521
522 libusb_free_transfer(transfers[i].transfer);
523 transfers[i].transfer = NULL;
524 }
525
526 return returnval;
527 }
528
529 #endif
530
531
532 /** */
533 static int stlink_usb_xfer_v1_get_status(void *handle)
534 {
535 struct stlink_usb_handle_s *h = handle;
536 int tr, ret;
537
538 assert(handle != NULL);
539
540 /* read status */
541 memset(h->cmdbuf, 0, STLINK_SG_SIZE);
542
543 ret = jtag_libusb_bulk_read(h->fd, h->rx_ep, (char *)h->cmdbuf, 13,
544 STLINK_READ_TIMEOUT, &tr);
545 if (ret || tr != 13)
546 return ERROR_FAIL;
547
548 uint32_t t1;
549
550 t1 = buf_get_u32(h->cmdbuf, 0, 32);
551
552 /* check for USBS */
553 if (t1 != 0x53425355)
554 return ERROR_FAIL;
555 /*
556 * CSW status:
557 * 0 success
558 * 1 command failure
559 * 2 phase error
560 */
561 if (h->cmdbuf[12] != 0)
562 return ERROR_FAIL;
563
564 return ERROR_OK;
565 }
566
567 #ifdef USE_LIBUSB_ASYNCIO
568 static int stlink_usb_xfer_rw(void *handle, int cmdsize, const uint8_t *buf, int size)
569 {
570 struct stlink_usb_handle_s *h = handle;
571
572 assert(handle != NULL);
573
574 size_t n_transfers = 0;
575 struct jtag_xfer transfers[2];
576
577 memset(transfers, 0, sizeof(transfers));
578
579 transfers[0].ep = h->tx_ep;
580 transfers[0].buf = h->cmdbuf;
581 transfers[0].size = cmdsize;
582
583 ++n_transfers;
584
585 if (h->direction == h->tx_ep && size) {
586 transfers[1].ep = h->tx_ep;
587 transfers[1].buf = (uint8_t *)buf;
588 transfers[1].size = size;
589
590 ++n_transfers;
591 } else if (h->direction == h->rx_ep && size) {
592 transfers[1].ep = h->rx_ep;
593 transfers[1].buf = (uint8_t *)buf;
594 transfers[1].size = size;
595
596 ++n_transfers;
597 }
598
599 return jtag_libusb_bulk_transfer_n(
600 h->fd,
601 transfers,
602 n_transfers,
603 STLINK_WRITE_TIMEOUT);
604 }
605 #else
606 static int stlink_usb_xfer_rw(void *handle, int cmdsize, const uint8_t *buf, int size)
607 {
608 struct stlink_usb_handle_s *h = handle;
609 int tr, ret;
610
611 assert(handle != NULL);
612
613 ret = jtag_libusb_bulk_write(h->fd, h->tx_ep, (char *)h->cmdbuf,
614 cmdsize, STLINK_WRITE_TIMEOUT, &tr);
615 if (ret || tr != cmdsize)
616 return ERROR_FAIL;
617
618 if (h->direction == h->tx_ep && size) {
619 ret = jtag_libusb_bulk_write(h->fd, h->tx_ep, (char *)buf,
620 size, STLINK_WRITE_TIMEOUT, &tr);
621 if (ret || tr != size) {
622 LOG_DEBUG("bulk write failed");
623 return ERROR_FAIL;
624 }
625 } else if (h->direction == h->rx_ep && size) {
626 ret = jtag_libusb_bulk_read(h->fd, h->rx_ep, (char *)buf,
627 size, STLINK_READ_TIMEOUT, &tr);
628 if (ret || tr != size) {
629 LOG_DEBUG("bulk read failed");
630 return ERROR_FAIL;
631 }
632 }
633
634 return ERROR_OK;
635 }
636 #endif
637
638 /** */
639 static int stlink_usb_xfer_v1_get_sense(void *handle)
640 {
641 int res;
642 struct stlink_usb_handle_s *h = handle;
643
644 assert(handle != NULL);
645
646 stlink_usb_init_buffer(handle, h->rx_ep, 16);
647
648 h->cmdbuf[h->cmdidx++] = REQUEST_SENSE;
649 h->cmdbuf[h->cmdidx++] = 0;
650 h->cmdbuf[h->cmdidx++] = 0;
651 h->cmdbuf[h->cmdidx++] = 0;
652 h->cmdbuf[h->cmdidx++] = REQUEST_SENSE_LENGTH;
653
654 res = stlink_usb_xfer_rw(handle, REQUEST_SENSE_LENGTH, h->databuf, 16);
655
656 if (res != ERROR_OK)
657 return res;
658
659 if (stlink_usb_xfer_v1_get_status(handle) != ERROR_OK)
660 return ERROR_FAIL;
661
662 return ERROR_OK;
663 }
664
665 /*
666 transfers block in cmdbuf
667 <size> indicates number of bytes in the following
668 data phase.
669 Ignore the (eventual) error code in the received packet.
670 */
671 static int stlink_usb_xfer_noerrcheck(void *handle, const uint8_t *buf, int size)
672 {
673 int err, cmdsize = STLINK_CMD_SIZE_V2;
674 struct stlink_usb_handle_s *h = handle;
675
676 assert(handle != NULL);
677
678 if (h->version.stlink == 1) {
679 cmdsize = STLINK_SG_SIZE;
680 /* put length in bCBWCBLength */
681 h->cmdbuf[14] = h->cmdidx-15;
682 }
683
684 err = stlink_usb_xfer_rw(handle, cmdsize, buf, size);
685
686 if (err != ERROR_OK)
687 return err;
688
689 if (h->version.stlink == 1) {
690 if (stlink_usb_xfer_v1_get_status(handle) != ERROR_OK) {
691 /* check csw status */
692 if (h->cmdbuf[12] == 1) {
693 LOG_DEBUG("get sense");
694 if (stlink_usb_xfer_v1_get_sense(handle) != ERROR_OK)
695 return ERROR_FAIL;
696 }
697 return ERROR_FAIL;
698 }
699 }
700
701 return ERROR_OK;
702 }
703
704 /**
705 Converts an STLINK status code held in the first byte of a response
706 to an openocd error, logs any error/wait status as debug output.
707 */
708 static int stlink_usb_error_check(void *handle)
709 {
710 struct stlink_usb_handle_s *h = handle;
711
712 assert(handle != NULL);
713
714 if (h->transport == HL_TRANSPORT_SWIM) {
715 switch (h->databuf[0]) {
716 case STLINK_SWIM_ERR_OK:
717 return ERROR_OK;
718 case STLINK_SWIM_BUSY:
719 return ERROR_WAIT;
720 default:
721 LOG_DEBUG("unknown/unexpected STLINK status code 0x%x", h->databuf[0]);
722 return ERROR_FAIL;
723 }
724 }
725
726 /* TODO: no error checking yet on api V1 */
727 if (h->version.jtag_api == STLINK_JTAG_API_V1)
728 h->databuf[0] = STLINK_DEBUG_ERR_OK;
729
730 switch (h->databuf[0]) {
731 case STLINK_DEBUG_ERR_OK:
732 return ERROR_OK;
733 case STLINK_DEBUG_ERR_FAULT:
734 LOG_DEBUG("SWD fault response (0x%x)", STLINK_DEBUG_ERR_FAULT);
735 return ERROR_FAIL;
736 case STLINK_SWD_AP_WAIT:
737 LOG_DEBUG("wait status SWD_AP_WAIT (0x%x)", STLINK_SWD_AP_WAIT);
738 return ERROR_WAIT;
739 case STLINK_SWD_DP_WAIT:
740 LOG_DEBUG("wait status SWD_DP_WAIT (0x%x)", STLINK_SWD_DP_WAIT);
741 return ERROR_WAIT;
742 case STLINK_JTAG_GET_IDCODE_ERROR:
743 LOG_DEBUG("STLINK_JTAG_GET_IDCODE_ERROR");
744 return ERROR_FAIL;
745 case STLINK_JTAG_WRITE_ERROR:
746 LOG_DEBUG("Write error");
747 return ERROR_FAIL;
748 case STLINK_JTAG_WRITE_VERIF_ERROR:
749 LOG_DEBUG("Write verify error, ignoring");
750 return ERROR_OK;
751 case STLINK_SWD_AP_FAULT:
752 /* git://git.ac6.fr/openocd commit 657e3e885b9ee10
753 * returns ERROR_OK with the comment:
754 * Change in error status when reading outside RAM.
755 * This fix allows CDT plugin to visualize memory.
756 */
757 LOG_DEBUG("STLINK_SWD_AP_FAULT");
758 return ERROR_FAIL;
759 case STLINK_SWD_AP_ERROR:
760 LOG_DEBUG("STLINK_SWD_AP_ERROR");
761 return ERROR_FAIL;
762 case STLINK_SWD_AP_PARITY_ERROR:
763 LOG_DEBUG("STLINK_SWD_AP_PARITY_ERROR");
764 return ERROR_FAIL;
765 case STLINK_SWD_DP_FAULT:
766 LOG_DEBUG("STLINK_SWD_DP_FAULT");
767 return ERROR_FAIL;
768 case STLINK_SWD_DP_ERROR:
769 LOG_DEBUG("STLINK_SWD_DP_ERROR");
770 return ERROR_FAIL;
771 case STLINK_SWD_DP_PARITY_ERROR:
772 LOG_DEBUG("STLINK_SWD_DP_PARITY_ERROR");
773 return ERROR_FAIL;
774 case STLINK_SWD_AP_WDATA_ERROR:
775 LOG_DEBUG("STLINK_SWD_AP_WDATA_ERROR");
776 return ERROR_FAIL;
777 case STLINK_SWD_AP_STICKY_ERROR:
778 LOG_DEBUG("STLINK_SWD_AP_STICKY_ERROR");
779 return ERROR_FAIL;
780 case STLINK_SWD_AP_STICKYORUN_ERROR:
781 LOG_DEBUG("STLINK_SWD_AP_STICKYORUN_ERROR");
782 return ERROR_FAIL;
783 case STLINK_BAD_AP_ERROR:
784 LOG_DEBUG("STLINK_BAD_AP_ERROR");
785 return ERROR_FAIL;
786 default:
787 LOG_DEBUG("unknown/unexpected STLINK status code 0x%x", h->databuf[0]);
788 return ERROR_FAIL;
789 }
790 }
791
792 /*
793 * Wrapper around stlink_usb_xfer_noerrcheck()
794 * to check the error code in the received packet
795 */
796 static int stlink_usb_xfer_errcheck(void *handle, const uint8_t *buf, int size)
797 {
798 int retval;
799
800 assert(size > 0);
801
802 retval = stlink_usb_xfer_noerrcheck(handle, buf, size);
803 if (retval != ERROR_OK)
804 return retval;
805
806 return stlink_usb_error_check(handle);
807 }
808
809 /** Issue an STLINK command via USB transfer, with retries on any wait status responses.
810
811 Works for commands where the STLINK_DEBUG status is returned in the first
812 byte of the response packet. For SWIM a SWIM_READSTATUS is requested instead.
813
814 Returns an openocd result code.
815 */
816 static int stlink_cmd_allow_retry(void *handle, const uint8_t *buf, int size)
817 {
818 int retries = 0;
819 int res;
820 struct stlink_usb_handle_s *h = handle;
821
822 while (1) {
823 if ((h->transport != HL_TRANSPORT_SWIM) || !retries) {
824 res = stlink_usb_xfer_noerrcheck(handle, buf, size);
825 if (res != ERROR_OK)
826 return res;
827 }
828
829 if (h->transport == HL_TRANSPORT_SWIM) {
830 res = stlink_swim_status(handle);
831 if (res != ERROR_OK)
832 return res;
833 }
834
835 res = stlink_usb_error_check(handle);
836 if (res == ERROR_WAIT && retries < MAX_WAIT_RETRIES) {
837 useconds_t delay_us = (1<<retries++) * 1000;
838 LOG_DEBUG("stlink_cmd_allow_retry ERROR_WAIT, retry %d, delaying %u microseconds", retries, delay_us);
839 usleep(delay_us);
840 continue;
841 }
842 return res;
843 }
844 }
845
846 /** */
847 static int stlink_usb_read_trace(void *handle, const uint8_t *buf, int size)
848 {
849 struct stlink_usb_handle_s *h = handle;
850 int tr, ret;
851
852 assert(handle != NULL);
853
854 assert(h->version.flags & STLINK_F_HAS_TRACE);
855
856 ret = jtag_libusb_bulk_read(h->fd, h->trace_ep, (char *)buf, size,
857 STLINK_READ_TIMEOUT, &tr);
858 if (ret || tr != size) {
859 LOG_ERROR("bulk trace read failed");
860 return ERROR_FAIL;
861 }
862
863 return ERROR_OK;
864 }
865
866 /*
867 this function writes transfer length in
868 the right place in the cb
869 */
870 static void stlink_usb_set_cbw_transfer_datalength(void *handle, uint32_t size)
871 {
872 struct stlink_usb_handle_s *h = handle;
873
874 buf_set_u32(h->cmdbuf+8, 0, 32, size);
875 }
876
877 static void stlink_usb_xfer_v1_create_cmd(void *handle, uint8_t direction, uint32_t size)
878 {
879 struct stlink_usb_handle_s *h = handle;
880
881 /* fill the send buffer */
882 strcpy((char *)h->cmdbuf, "USBC");
883 h->cmdidx += 4;
884 /* csw tag not used */
885 buf_set_u32(h->cmdbuf+h->cmdidx, 0, 32, 0);
886 h->cmdidx += 4;
887 /* cbw data transfer length (in the following data phase in or out) */
888 buf_set_u32(h->cmdbuf+h->cmdidx, 0, 32, size);
889 h->cmdidx += 4;
890 /* cbw flags */
891 h->cmdbuf[h->cmdidx++] = (direction == h->rx_ep ? ENDPOINT_IN : ENDPOINT_OUT);
892 h->cmdbuf[h->cmdidx++] = 0; /* lun */
893 /* cdb clength (is filled in at xfer) */
894 h->cmdbuf[h->cmdidx++] = 0;
895 }
896
897 /** */
898 static void stlink_usb_init_buffer(void *handle, uint8_t direction, uint32_t size)
899 {
900 struct stlink_usb_handle_s *h = handle;
901
902 h->direction = direction;
903
904 h->cmdidx = 0;
905
906 memset(h->cmdbuf, 0, STLINK_SG_SIZE);
907 memset(h->databuf, 0, STLINK_DATA_SIZE);
908
909 if (h->version.stlink == 1)
910 stlink_usb_xfer_v1_create_cmd(handle, direction, size);
911 }
912
913 /** */
914 static int stlink_usb_version(void *handle)
915 {
916 int res;
917 uint32_t flags;
918 uint16_t version;
919 uint8_t v, x, y, jtag, swim, msd, bridge = 0;
920 char v_str[5 * (1 + 3) + 1]; /* VvJjMmBbSs */
921 char *p;
922 struct stlink_usb_handle_s *h = handle;
923
924 assert(handle != NULL);
925
926 stlink_usb_init_buffer(handle, h->rx_ep, 6);
927
928 h->cmdbuf[h->cmdidx++] = STLINK_GET_VERSION;
929
930 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 6);
931
932 if (res != ERROR_OK)
933 return res;
934
935 version = be_to_h_u16(h->databuf);
936 v = (version >> 12) & 0x0f;
937 x = (version >> 6) & 0x3f;
938 y = version & 0x3f;
939
940 h->vid = le_to_h_u16(h->databuf + 2);
941 h->pid = le_to_h_u16(h->databuf + 4);
942
943 switch (h->pid) {
944 case STLINK_V2_1_PID:
945 case STLINK_V2_1_NO_MSD_PID:
946 if ((x <= 22 && y == 7) || (x >= 25 && y >= 7 && y <= 12)) {
947 /* MxSy : STM8 V2.1 - SWIM only */
948 msd = x;
949 swim = y;
950 jtag = 0;
951 } else {
952 /* JxMy : STM32 V2.1 - JTAG/SWD only */
953 jtag = x;
954 msd = y;
955 swim = 0;
956 }
957 break;
958 default:
959 jtag = x;
960 swim = y;
961 msd = 0;
962 break;
963 }
964
965 /* STLINK-V3 requires a specific command */
966 if (v == 3 && x == 0 && y == 0) {
967 stlink_usb_init_buffer(handle, h->rx_ep, 16);
968
969 h->cmdbuf[h->cmdidx++] = STLINK_APIV3_GET_VERSION_EX;
970
971 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 12);
972 if (res != ERROR_OK)
973 return res;
974
975 v = h->databuf[0];
976 swim = h->databuf[1];
977 jtag = h->databuf[2];
978 msd = h->databuf[3];
979 bridge = h->databuf[4];
980 h->vid = le_to_h_u16(h->databuf + 8);
981 h->pid = le_to_h_u16(h->databuf + 10);
982 }
983
984 h->version.stlink = v;
985 h->version.jtag = jtag;
986 h->version.swim = swim;
987
988 flags = 0;
989 switch (h->version.stlink) {
990 case 1:
991 /* ST-LINK/V1 from J11 switch to api-v2 (and support SWD) */
992 if (h->version.jtag >= 11)
993 h->version.jtag_api = STLINK_JTAG_API_V2;
994 else
995 h->version.jtag_api = STLINK_JTAG_API_V1;
996
997 break;
998 case 2:
999 /* all ST-LINK/V2 and ST-Link/V2.1 use api-v2 */
1000 h->version.jtag_api = STLINK_JTAG_API_V2;
1001
1002 /* API for trace from J13 */
1003 /* API for target voltage from J13 */
1004 if (h->version.jtag >= 13)
1005 flags |= STLINK_F_HAS_TRACE;
1006
1007 /* preferred API to get last R/W status from J15 */
1008 if (h->version.jtag >= 15)
1009 flags |= STLINK_F_HAS_GETLASTRWSTATUS2;
1010
1011 /* API to set SWD frequency from J22 */
1012 if (h->version.jtag >= 22)
1013 flags |= STLINK_F_HAS_SWD_SET_FREQ;
1014
1015 /* API to set JTAG frequency from J24 */
1016 /* API to access DAP registers from J24 */
1017 if (h->version.jtag >= 24) {
1018 flags |= STLINK_F_HAS_JTAG_SET_FREQ;
1019 flags |= STLINK_F_HAS_DAP_REG;
1020 }
1021
1022 /* Quirk for read DP in JTAG mode (V2 only) from J24, fixed in J32 */
1023 if (h->version.jtag >= 24 && h->version.jtag < 32)
1024 flags |= STLINK_F_QUIRK_JTAG_DP_READ;
1025
1026 /* API to read/write memory at 16 bit from J26 */
1027 if (h->version.jtag >= 26)
1028 flags |= STLINK_F_HAS_MEM_16BIT;
1029
1030 /* API required to init AP before any AP access from J28 */
1031 if (h->version.jtag >= 28)
1032 flags |= STLINK_F_HAS_AP_INIT;
1033
1034 /* Banked regs (DPv1 & DPv2) support from V2J32 */
1035 if (h->version.jtag >= 32)
1036 flags |= STLINK_F_HAS_DPBANKSEL;
1037
1038 break;
1039 case 3:
1040 /* all STLINK-V3 use api-v3 */
1041 h->version.jtag_api = STLINK_JTAG_API_V3;
1042
1043 /* STLINK-V3 is a superset of ST-LINK/V2 */
1044
1045 /* API for trace */
1046 /* API for target voltage */
1047 flags |= STLINK_F_HAS_TRACE;
1048
1049 /* preferred API to get last R/W status */
1050 flags |= STLINK_F_HAS_GETLASTRWSTATUS2;
1051
1052 /* API to access DAP registers */
1053 flags |= STLINK_F_HAS_DAP_REG;
1054
1055 /* API to read/write memory at 16 bit */
1056 flags |= STLINK_F_HAS_MEM_16BIT;
1057
1058 /* API required to init AP before any AP access */
1059 flags |= STLINK_F_HAS_AP_INIT;
1060
1061 /* Banked regs (DPv1 & DPv2) support from V3J2 */
1062 if (h->version.jtag >= 2)
1063 flags |= STLINK_F_HAS_DPBANKSEL;
1064
1065 /* 8bit read/write max packet size 512 bytes from V3J6 */
1066 if (h->version.jtag >= 6)
1067 flags |= STLINK_F_HAS_RW8_512BYTES;
1068
1069 break;
1070 default:
1071 break;
1072 }
1073 h->version.flags = flags;
1074
1075 p = v_str;
1076 p += sprintf(p, "V%d", v);
1077 if (jtag || !msd)
1078 p += sprintf(p, "J%d", jtag);
1079 if (msd)
1080 p += sprintf(p, "M%d", msd);
1081 if (bridge)
1082 p += sprintf(p, "B%d", bridge);
1083 if (swim || !msd)
1084 sprintf(p, "S%d", swim);
1085
1086 LOG_INFO("STLINK %s (API v%d) VID:PID %04X:%04X",
1087 v_str,
1088 h->version.jtag_api,
1089 h->vid,
1090 h->pid);
1091
1092 return ERROR_OK;
1093 }
1094
1095 static int stlink_usb_check_voltage(void *handle, float *target_voltage)
1096 {
1097 struct stlink_usb_handle_s *h = handle;
1098 uint32_t adc_results[2];
1099
1100 /* no error message, simply quit with error */
1101 if (!(h->version.flags & STLINK_F_HAS_TARGET_VOLT))
1102 return ERROR_COMMAND_NOTFOUND;
1103
1104 stlink_usb_init_buffer(handle, h->rx_ep, 8);
1105
1106 h->cmdbuf[h->cmdidx++] = STLINK_GET_TARGET_VOLTAGE;
1107
1108 int result = stlink_usb_xfer_noerrcheck(handle, h->databuf, 8);
1109
1110 if (result != ERROR_OK)
1111 return result;
1112
1113 /* convert result */
1114 adc_results[0] = le_to_h_u32(h->databuf);
1115 adc_results[1] = le_to_h_u32(h->databuf + 4);
1116
1117 *target_voltage = 0;
1118
1119 if (adc_results[0])
1120 *target_voltage = 2 * ((float)adc_results[1]) * (float)(1.2 / adc_results[0]);
1121
1122 LOG_INFO("Target voltage: %f", (double)*target_voltage);
1123
1124 return ERROR_OK;
1125 }
1126
1127 static int stlink_usb_set_swdclk(void *handle, uint16_t clk_divisor)
1128 {
1129 struct stlink_usb_handle_s *h = handle;
1130
1131 assert(handle != NULL);
1132
1133 if (!(h->version.flags & STLINK_F_HAS_SWD_SET_FREQ))
1134 return ERROR_COMMAND_NOTFOUND;
1135
1136 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1137
1138 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1139 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_SWD_SET_FREQ;
1140 h_u16_to_le(h->cmdbuf+h->cmdidx, clk_divisor);
1141 h->cmdidx += 2;
1142
1143 int result = stlink_cmd_allow_retry(handle, h->databuf, 2);
1144
1145 if (result != ERROR_OK)
1146 return result;
1147
1148 return ERROR_OK;
1149 }
1150
1151 static int stlink_usb_set_jtagclk(void *handle, uint16_t clk_divisor)
1152 {
1153 struct stlink_usb_handle_s *h = handle;
1154
1155 assert(handle != NULL);
1156
1157 if (!(h->version.flags & STLINK_F_HAS_JTAG_SET_FREQ))
1158 return ERROR_COMMAND_NOTFOUND;
1159
1160 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1161
1162 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1163 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_JTAG_SET_FREQ;
1164 h_u16_to_le(h->cmdbuf+h->cmdidx, clk_divisor);
1165 h->cmdidx += 2;
1166
1167 int result = stlink_cmd_allow_retry(handle, h->databuf, 2);
1168
1169 if (result != ERROR_OK)
1170 return result;
1171
1172 return ERROR_OK;
1173 }
1174
1175 /** */
1176 static int stlink_usb_current_mode(void *handle, uint8_t *mode)
1177 {
1178 int res;
1179 struct stlink_usb_handle_s *h = handle;
1180
1181 assert(handle != NULL);
1182
1183 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1184
1185 h->cmdbuf[h->cmdidx++] = STLINK_GET_CURRENT_MODE;
1186
1187 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 2);
1188
1189 if (res != ERROR_OK)
1190 return res;
1191
1192 *mode = h->databuf[0];
1193
1194 return ERROR_OK;
1195 }
1196
1197 /** */
1198 static int stlink_usb_mode_enter(void *handle, enum stlink_mode type)
1199 {
1200 int rx_size = 0;
1201 struct stlink_usb_handle_s *h = handle;
1202
1203 assert(handle != NULL);
1204
1205 /* on api V2 we are able the read the latest command
1206 * status
1207 * TODO: we need the test on api V1 too
1208 */
1209 if (h->version.jtag_api != STLINK_JTAG_API_V1)
1210 rx_size = 2;
1211
1212 stlink_usb_init_buffer(handle, h->rx_ep, rx_size);
1213
1214 switch (type) {
1215 case STLINK_MODE_DEBUG_JTAG:
1216 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1217 if (h->version.jtag_api == STLINK_JTAG_API_V1)
1218 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV1_ENTER;
1219 else
1220 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_ENTER;
1221 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_ENTER_JTAG_NO_RESET;
1222 break;
1223 case STLINK_MODE_DEBUG_SWD:
1224 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1225 if (h->version.jtag_api == STLINK_JTAG_API_V1)
1226 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV1_ENTER;
1227 else
1228 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_ENTER;
1229 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_ENTER_SWD_NO_RESET;
1230 break;
1231 case STLINK_MODE_DEBUG_SWIM:
1232 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1233 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_ENTER;
1234 /* no answer for this function... */
1235 rx_size = 0;
1236 break;
1237 case STLINK_MODE_DFU:
1238 case STLINK_MODE_MASS:
1239 default:
1240 return ERROR_FAIL;
1241 }
1242
1243 return stlink_cmd_allow_retry(handle, h->databuf, rx_size);
1244 }
1245
1246 /** */
1247 static int stlink_usb_mode_leave(void *handle, enum stlink_mode type)
1248 {
1249 int res;
1250 struct stlink_usb_handle_s *h = handle;
1251
1252 assert(handle != NULL);
1253
1254 stlink_usb_init_buffer(handle, STLINK_NULL_EP, 0);
1255
1256 switch (type) {
1257 case STLINK_MODE_DEBUG_JTAG:
1258 case STLINK_MODE_DEBUG_SWD:
1259 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1260 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_EXIT;
1261 break;
1262 case STLINK_MODE_DEBUG_SWIM:
1263 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1264 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_EXIT;
1265 break;
1266 case STLINK_MODE_DFU:
1267 h->cmdbuf[h->cmdidx++] = STLINK_DFU_COMMAND;
1268 h->cmdbuf[h->cmdidx++] = STLINK_DFU_EXIT;
1269 break;
1270 case STLINK_MODE_MASS:
1271 default:
1272 return ERROR_FAIL;
1273 }
1274
1275 res = stlink_usb_xfer_noerrcheck(handle, 0, 0);
1276
1277 if (res != ERROR_OK)
1278 return res;
1279
1280 return ERROR_OK;
1281 }
1282
1283 static int stlink_usb_assert_srst(void *handle, int srst);
1284
1285 static enum stlink_mode stlink_get_mode(enum hl_transports t)
1286 {
1287 switch (t) {
1288 case HL_TRANSPORT_SWD:
1289 return STLINK_MODE_DEBUG_SWD;
1290 case HL_TRANSPORT_JTAG:
1291 return STLINK_MODE_DEBUG_JTAG;
1292 case HL_TRANSPORT_SWIM:
1293 return STLINK_MODE_DEBUG_SWIM;
1294 default:
1295 return STLINK_MODE_UNKNOWN;
1296 }
1297 }
1298
1299 /** */
1300 static int stlink_usb_init_mode(void *handle, bool connect_under_reset, int initial_interface_speed)
1301 {
1302 int res;
1303 uint8_t mode;
1304 enum stlink_mode emode;
1305 struct stlink_usb_handle_s *h = handle;
1306
1307 assert(handle != NULL);
1308
1309 res = stlink_usb_current_mode(handle, &mode);
1310
1311 if (res != ERROR_OK)
1312 return res;
1313
1314 LOG_DEBUG("MODE: 0x%02X", mode);
1315
1316 /* try to exit current mode */
1317 switch (mode) {
1318 case STLINK_DEV_DFU_MODE:
1319 emode = STLINK_MODE_DFU;
1320 break;
1321 case STLINK_DEV_DEBUG_MODE:
1322 emode = STLINK_MODE_DEBUG_SWD;
1323 break;
1324 case STLINK_DEV_SWIM_MODE:
1325 emode = STLINK_MODE_DEBUG_SWIM;
1326 break;
1327 case STLINK_DEV_BOOTLOADER_MODE:
1328 case STLINK_DEV_MASS_MODE:
1329 default:
1330 emode = STLINK_MODE_UNKNOWN;
1331 break;
1332 }
1333
1334 if (emode != STLINK_MODE_UNKNOWN) {
1335 res = stlink_usb_mode_leave(handle, emode);
1336
1337 if (res != ERROR_OK)
1338 return res;
1339 }
1340
1341 res = stlink_usb_current_mode(handle, &mode);
1342
1343 if (res != ERROR_OK)
1344 return res;
1345
1346 /* we check the target voltage here as an aid to debugging connection problems.
1347 * the stlink requires the target Vdd to be connected for reliable debugging.
1348 * this cmd is supported in all modes except DFU
1349 */
1350 if (mode != STLINK_DEV_DFU_MODE) {
1351
1352 float target_voltage;
1353
1354 /* check target voltage (if supported) */
1355 res = stlink_usb_check_voltage(h, &target_voltage);
1356
1357 if (res != ERROR_OK) {
1358 if (res != ERROR_COMMAND_NOTFOUND)
1359 LOG_ERROR("voltage check failed");
1360 /* attempt to continue as it is not a catastrophic failure */
1361 } else {
1362 /* check for a sensible target voltage, operating range is 1.65-5.5v
1363 * according to datasheet */
1364 if (target_voltage < 1.5)
1365 LOG_ERROR("target voltage may be too low for reliable debugging");
1366 }
1367 }
1368
1369 LOG_DEBUG("MODE: 0x%02X", mode);
1370
1371 /* set selected mode */
1372 emode = stlink_get_mode(h->transport);
1373
1374 if (emode == STLINK_MODE_UNKNOWN) {
1375 LOG_ERROR("selected mode (transport) not supported");
1376 return ERROR_FAIL;
1377 }
1378
1379 /* set the speed before entering the mode, as the chip discovery phase should be done at this speed too */
1380 if (h->transport == HL_TRANSPORT_JTAG) {
1381 if (h->version.flags & STLINK_F_HAS_JTAG_SET_FREQ) {
1382 stlink_dump_speed_map(stlink_khz_to_speed_map_jtag, ARRAY_SIZE(stlink_khz_to_speed_map_jtag));
1383 stlink_speed(h, initial_interface_speed, false);
1384 }
1385 } else if (h->transport == HL_TRANSPORT_SWD) {
1386 if (h->version.flags & STLINK_F_HAS_SWD_SET_FREQ) {
1387 stlink_dump_speed_map(stlink_khz_to_speed_map_swd, ARRAY_SIZE(stlink_khz_to_speed_map_swd));
1388 stlink_speed(h, initial_interface_speed, false);
1389 }
1390 }
1391
1392 if (h->version.jtag_api == STLINK_JTAG_API_V3) {
1393 struct speed_map map[STLINK_V3_MAX_FREQ_NB];
1394
1395 stlink_get_com_freq(h, (h->transport == HL_TRANSPORT_JTAG), map);
1396 stlink_dump_speed_map(map, ARRAY_SIZE(map));
1397 stlink_speed(h, initial_interface_speed, false);
1398 }
1399
1400 /* preliminary SRST assert:
1401 * We want SRST is asserted before activating debug signals (mode_enter).
1402 * As the required mode has not been set, the adapter may not know what pin to use.
1403 * Tested firmware STLINK v2 JTAG v29 API v2 SWIM v0 uses T_NRST pin by default
1404 * Tested firmware STLINK v2 JTAG v27 API v2 SWIM v6 uses T_NRST pin by default
1405 * after power on, SWIM_RST stays unchanged */
1406 if (connect_under_reset && emode != STLINK_MODE_DEBUG_SWIM)
1407 stlink_usb_assert_srst(handle, 0);
1408 /* do not check the return status here, we will
1409 proceed and enter the desired mode below
1410 and try asserting srst again. */
1411
1412 res = stlink_usb_mode_enter(handle, emode);
1413 if (res != ERROR_OK)
1414 return res;
1415
1416 /* assert SRST again: a little bit late but now the adapter knows for sure what pin to use */
1417 if (connect_under_reset) {
1418 res = stlink_usb_assert_srst(handle, 0);
1419 if (res != ERROR_OK)
1420 return res;
1421 }
1422
1423 res = stlink_usb_current_mode(handle, &mode);
1424
1425 if (res != ERROR_OK)
1426 return res;
1427
1428 LOG_DEBUG("MODE: 0x%02X", mode);
1429
1430 return ERROR_OK;
1431 }
1432
1433 /* request status from last swim request */
1434 static int stlink_swim_status(void *handle)
1435 {
1436 struct stlink_usb_handle_s *h = handle;
1437 int res;
1438
1439 stlink_usb_init_buffer(handle, h->rx_ep, 4);
1440 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1441 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_READSTATUS;
1442 /* error is checked by the caller */
1443 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 4);
1444 if (res != ERROR_OK)
1445 return res;
1446 return ERROR_OK;
1447 }
1448 /*
1449 the purpose of this function is unknown...
1450 capabilites? anyway for swim v6 it returns
1451 0001020600000000
1452 */
1453 __attribute__((unused))
1454 static int stlink_swim_cap(void *handle, uint8_t *cap)
1455 {
1456 struct stlink_usb_handle_s *h = handle;
1457 int res;
1458
1459 stlink_usb_init_buffer(handle, h->rx_ep, 8);
1460 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1461 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_READ_CAP;
1462 h->cmdbuf[h->cmdidx++] = 0x01;
1463 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 8);
1464 if (res != ERROR_OK)
1465 return res;
1466 memcpy(cap, h->databuf, 8);
1467 return ERROR_OK;
1468 }
1469
1470 /* debug dongle assert/deassert sreset line */
1471 static int stlink_swim_assert_reset(void *handle, int reset)
1472 {
1473 struct stlink_usb_handle_s *h = handle;
1474 int res;
1475
1476 stlink_usb_init_buffer(handle, h->rx_ep, 0);
1477 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1478 if (!reset)
1479 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_ASSERT_RESET;
1480 else
1481 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_DEASSERT_RESET;
1482 res = stlink_cmd_allow_retry(handle, h->databuf, 0);
1483 if (res != ERROR_OK)
1484 return res;
1485 return ERROR_OK;
1486 }
1487
1488 /*
1489 send swim enter seq
1490 1.3ms low then 750Hz then 1.5kHz
1491 */
1492 static int stlink_swim_enter(void *handle)
1493 {
1494 struct stlink_usb_handle_s *h = handle;
1495 int res;
1496
1497 stlink_usb_init_buffer(handle, h->rx_ep, 0);
1498 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1499 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_ENTER_SEQ;
1500 res = stlink_cmd_allow_retry(handle, h->databuf, 0);
1501 if (res != ERROR_OK)
1502 return res;
1503 return ERROR_OK;
1504 }
1505
1506 /* switch high/low speed swim */
1507 static int stlink_swim_speed(void *handle, int speed)
1508 {
1509 struct stlink_usb_handle_s *h = handle;
1510 int res;
1511
1512 stlink_usb_init_buffer(handle, h->rx_ep, 0);
1513 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1514 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_SPEED;
1515 if (speed)
1516 h->cmdbuf[h->cmdidx++] = 1;
1517 else
1518 h->cmdbuf[h->cmdidx++] = 0;
1519 res = stlink_cmd_allow_retry(handle, h->databuf, 0);
1520 if (res != ERROR_OK)
1521 return res;
1522 return ERROR_OK;
1523 }
1524
1525 /*
1526 initiate srst from swim.
1527 nrst is pulled low for 50us.
1528 */
1529 static int stlink_swim_generate_rst(void *handle)
1530 {
1531 struct stlink_usb_handle_s *h = handle;
1532 int res;
1533
1534 stlink_usb_init_buffer(handle, h->rx_ep, 0);
1535 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1536 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_GEN_RST;
1537 res = stlink_cmd_allow_retry(handle, h->databuf, 0);
1538 if (res != ERROR_OK)
1539 return res;
1540 return ERROR_OK;
1541 }
1542
1543 /*
1544 send resyncronize sequence
1545 swim is pulled low for 16us
1546 reply is 64 clks low
1547 */
1548 static int stlink_swim_resync(void *handle)
1549 {
1550 struct stlink_usb_handle_s *h = handle;
1551 int res;
1552
1553 stlink_usb_init_buffer(handle, h->rx_ep, 0);
1554 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1555 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_RESET;
1556 res = stlink_cmd_allow_retry(handle, h->databuf, 0);
1557 if (res != ERROR_OK)
1558 return res;
1559 return ERROR_OK;
1560 }
1561
1562 static int stlink_swim_writebytes(void *handle, uint32_t addr, uint32_t len, const uint8_t *data)
1563 {
1564 struct stlink_usb_handle_s *h = handle;
1565 int res;
1566 unsigned int i;
1567 unsigned int datalen = 0;
1568 int cmdsize = STLINK_CMD_SIZE_V2;
1569
1570 if (len > STLINK_DATA_SIZE)
1571 return ERROR_FAIL;
1572
1573 if (h->version.stlink == 1)
1574 cmdsize = STLINK_SG_SIZE;
1575
1576 stlink_usb_init_buffer(handle, h->tx_ep, 0);
1577 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1578 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_WRITEMEM;
1579 h_u16_to_be(h->cmdbuf+h->cmdidx, len);
1580 h->cmdidx += 2;
1581 h_u32_to_be(h->cmdbuf+h->cmdidx, addr);
1582 h->cmdidx += 4;
1583 for (i = 0; i < len; i++) {
1584 if (h->cmdidx == cmdsize)
1585 h->databuf[datalen++] = *(data++);
1586 else
1587 h->cmdbuf[h->cmdidx++] = *(data++);
1588 }
1589 if (h->version.stlink == 1)
1590 stlink_usb_set_cbw_transfer_datalength(handle, datalen);
1591
1592 res = stlink_cmd_allow_retry(handle, h->databuf, datalen);
1593 if (res != ERROR_OK)
1594 return res;
1595 return ERROR_OK;
1596 }
1597
1598 static int stlink_swim_readbytes(void *handle, uint32_t addr, uint32_t len, uint8_t *data)
1599 {
1600 struct stlink_usb_handle_s *h = handle;
1601 int res;
1602
1603 if (len > STLINK_DATA_SIZE)
1604 return ERROR_FAIL;
1605
1606 stlink_usb_init_buffer(handle, h->rx_ep, 0);
1607 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1608 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_READMEM;
1609 h_u16_to_be(h->cmdbuf+h->cmdidx, len);
1610 h->cmdidx += 2;
1611 h_u32_to_be(h->cmdbuf+h->cmdidx, addr);
1612 h->cmdidx += 4;
1613 res = stlink_cmd_allow_retry(handle, h->databuf, 0);
1614 if (res != ERROR_OK)
1615 return res;
1616
1617 stlink_usb_init_buffer(handle, h->rx_ep, len);
1618 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_COMMAND;
1619 h->cmdbuf[h->cmdidx++] = STLINK_SWIM_READBUF;
1620 res = stlink_usb_xfer_noerrcheck(handle, data, len);
1621 if (res != ERROR_OK)
1622 return res;
1623
1624 return ERROR_OK;
1625 }
1626
1627 /** */
1628 static int stlink_usb_idcode(void *handle, uint32_t *idcode)
1629 {
1630 int res, offset;
1631 struct stlink_usb_handle_s *h = handle;
1632
1633 assert(handle != NULL);
1634
1635 /* there is no swim read core id cmd */
1636 if (h->transport == HL_TRANSPORT_SWIM) {
1637 *idcode = 0;
1638 return ERROR_OK;
1639 }
1640
1641 stlink_usb_init_buffer(handle, h->rx_ep, 12);
1642
1643 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1644 if (h->version.jtag_api == STLINK_JTAG_API_V1) {
1645 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_READCOREID;
1646
1647 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 4);
1648 offset = 0;
1649 } else {
1650 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_READ_IDCODES;
1651
1652 res = stlink_usb_xfer_errcheck(handle, h->databuf, 12);
1653 offset = 4;
1654 }
1655
1656 if (res != ERROR_OK)
1657 return res;
1658
1659 *idcode = le_to_h_u32(h->databuf + offset);
1660
1661 LOG_DEBUG("IDCODE: 0x%08" PRIX32, *idcode);
1662
1663 return ERROR_OK;
1664 }
1665
1666 static int stlink_usb_v2_read_debug_reg(void *handle, uint32_t addr, uint32_t *val)
1667 {
1668 struct stlink_usb_handle_s *h = handle;
1669 int res;
1670
1671 assert(handle != NULL);
1672
1673 stlink_usb_init_buffer(handle, h->rx_ep, 8);
1674
1675 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1676 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_READDEBUGREG;
1677 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
1678 h->cmdidx += 4;
1679
1680 res = stlink_cmd_allow_retry(handle, h->databuf, 8);
1681 if (res != ERROR_OK)
1682 return res;
1683
1684 *val = le_to_h_u32(h->databuf + 4);
1685 return ERROR_OK;
1686 }
1687
1688 static int stlink_usb_write_debug_reg(void *handle, uint32_t addr, uint32_t val)
1689 {
1690 struct stlink_usb_handle_s *h = handle;
1691
1692 assert(handle != NULL);
1693
1694 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1695
1696 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1697 if (h->version.jtag_api == STLINK_JTAG_API_V1)
1698 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV1_WRITEDEBUGREG;
1699 else
1700 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_WRITEDEBUGREG;
1701 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
1702 h->cmdidx += 4;
1703 h_u32_to_le(h->cmdbuf+h->cmdidx, val);
1704 h->cmdidx += 4;
1705
1706 return stlink_cmd_allow_retry(handle, h->databuf, 2);
1707 }
1708
1709 /** */
1710 static int stlink_usb_trace_read(void *handle, uint8_t *buf, size_t *size)
1711 {
1712 struct stlink_usb_handle_s *h = handle;
1713
1714 assert(handle != NULL);
1715
1716 if (h->trace.enabled && (h->version.flags & STLINK_F_HAS_TRACE)) {
1717 int res;
1718
1719 stlink_usb_init_buffer(handle, h->rx_ep, 10);
1720
1721 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1722 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_GET_TRACE_NB;
1723
1724 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 2);
1725 if (res != ERROR_OK)
1726 return res;
1727
1728 size_t bytes_avail = le_to_h_u16(h->databuf);
1729 *size = bytes_avail < *size ? bytes_avail : *size - 1;
1730
1731 if (*size > 0) {
1732 res = stlink_usb_read_trace(handle, buf, *size);
1733 if (res != ERROR_OK)
1734 return res;
1735 return ERROR_OK;
1736 }
1737 }
1738 *size = 0;
1739 return ERROR_OK;
1740 }
1741
1742 static enum target_state stlink_usb_v2_get_status(void *handle)
1743 {
1744 int result;
1745 uint32_t status;
1746
1747 result = stlink_usb_v2_read_debug_reg(handle, DCB_DHCSR, &status);
1748 if (result != ERROR_OK)
1749 return TARGET_UNKNOWN;
1750
1751 if (status & S_HALT)
1752 return TARGET_HALTED;
1753 else if (status & S_RESET_ST)
1754 return TARGET_RESET;
1755
1756 return TARGET_RUNNING;
1757 }
1758
1759 /** */
1760 static enum target_state stlink_usb_state(void *handle)
1761 {
1762 int res;
1763 struct stlink_usb_handle_s *h = handle;
1764
1765 assert(handle != NULL);
1766
1767 if (h->transport == HL_TRANSPORT_SWIM) {
1768 res = stlink_usb_mode_enter(handle, stlink_get_mode(h->transport));
1769 if (res != ERROR_OK)
1770 return TARGET_UNKNOWN;
1771
1772 res = stlink_swim_resync(handle);
1773 if (res != ERROR_OK)
1774 return TARGET_UNKNOWN;
1775
1776 return ERROR_OK;
1777 }
1778
1779 if (h->reconnect_pending) {
1780 LOG_INFO("Previous state query failed, trying to reconnect");
1781 res = stlink_usb_mode_enter(handle, stlink_get_mode(h->transport));
1782
1783 if (res != ERROR_OK)
1784 return TARGET_UNKNOWN;
1785
1786 h->reconnect_pending = false;
1787 }
1788
1789 if (h->version.jtag_api != STLINK_JTAG_API_V1) {
1790 res = stlink_usb_v2_get_status(handle);
1791 if (res == TARGET_UNKNOWN)
1792 h->reconnect_pending = true;
1793 return res;
1794 }
1795
1796 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1797
1798 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1799 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_GETSTATUS;
1800
1801 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 2);
1802
1803 if (res != ERROR_OK)
1804 return TARGET_UNKNOWN;
1805
1806 if (h->databuf[0] == STLINK_CORE_RUNNING)
1807 return TARGET_RUNNING;
1808 if (h->databuf[0] == STLINK_CORE_HALTED)
1809 return TARGET_HALTED;
1810
1811 h->reconnect_pending = true;
1812
1813 return TARGET_UNKNOWN;
1814 }
1815
1816 static int stlink_usb_assert_srst(void *handle, int srst)
1817 {
1818 struct stlink_usb_handle_s *h = handle;
1819
1820 assert(handle != NULL);
1821
1822 if (h->transport == HL_TRANSPORT_SWIM)
1823 return stlink_swim_assert_reset(handle, srst);
1824
1825 if (h->version.stlink == 1)
1826 return ERROR_COMMAND_NOTFOUND;
1827
1828 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1829
1830 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1831 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_DRIVE_NRST;
1832 h->cmdbuf[h->cmdidx++] = srst;
1833
1834 return stlink_cmd_allow_retry(handle, h->databuf, 2);
1835 }
1836
1837 /** */
1838 static void stlink_usb_trace_disable(void *handle)
1839 {
1840 int res = ERROR_OK;
1841 struct stlink_usb_handle_s *h = handle;
1842
1843 assert(handle != NULL);
1844
1845 assert(h->version.flags & STLINK_F_HAS_TRACE);
1846
1847 LOG_DEBUG("Tracing: disable");
1848
1849 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1850 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1851 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_STOP_TRACE_RX;
1852 res = stlink_usb_xfer_errcheck(handle, h->databuf, 2);
1853
1854 if (res == ERROR_OK)
1855 h->trace.enabled = false;
1856 }
1857
1858
1859 /** */
1860 static int stlink_usb_trace_enable(void *handle)
1861 {
1862 int res;
1863 struct stlink_usb_handle_s *h = handle;
1864
1865 assert(handle != NULL);
1866
1867 if (h->version.flags & STLINK_F_HAS_TRACE) {
1868 stlink_usb_init_buffer(handle, h->rx_ep, 10);
1869
1870 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1871 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_START_TRACE_RX;
1872 h_u16_to_le(h->cmdbuf+h->cmdidx, (uint16_t)STLINK_TRACE_SIZE);
1873 h->cmdidx += 2;
1874 h_u32_to_le(h->cmdbuf+h->cmdidx, h->trace.source_hz);
1875 h->cmdidx += 4;
1876
1877 res = stlink_usb_xfer_errcheck(handle, h->databuf, 2);
1878
1879 if (res == ERROR_OK) {
1880 h->trace.enabled = true;
1881 LOG_DEBUG("Tracing: recording at %" PRIu32 "Hz", h->trace.source_hz);
1882 }
1883 } else {
1884 LOG_ERROR("Tracing is not supported by this version.");
1885 res = ERROR_FAIL;
1886 }
1887
1888 return res;
1889 }
1890
1891 /** */
1892 static int stlink_usb_reset(void *handle)
1893 {
1894 struct stlink_usb_handle_s *h = handle;
1895 int retval;
1896
1897 assert(handle != NULL);
1898
1899 if (h->transport == HL_TRANSPORT_SWIM)
1900 return stlink_swim_generate_rst(handle);
1901
1902 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1903
1904 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1905
1906 if (h->version.jtag_api == STLINK_JTAG_API_V1)
1907 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV1_RESETSYS;
1908 else
1909 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_RESETSYS;
1910
1911 retval = stlink_cmd_allow_retry(handle, h->databuf, 2);
1912 if (retval != ERROR_OK)
1913 return retval;
1914
1915 if (h->trace.enabled) {
1916 stlink_usb_trace_disable(h);
1917 return stlink_usb_trace_enable(h);
1918 }
1919
1920 return ERROR_OK;
1921 }
1922
1923 /** */
1924 static int stlink_usb_run(void *handle)
1925 {
1926 int res;
1927 struct stlink_usb_handle_s *h = handle;
1928
1929 assert(handle != NULL);
1930
1931 if (h->version.jtag_api != STLINK_JTAG_API_V1) {
1932 res = stlink_usb_write_debug_reg(handle, DCB_DHCSR, DBGKEY|C_DEBUGEN);
1933
1934 return res;
1935 }
1936
1937 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1938
1939 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1940 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_RUNCORE;
1941
1942 return stlink_cmd_allow_retry(handle, h->databuf, 2);
1943 }
1944
1945 /** */
1946 static int stlink_usb_halt(void *handle)
1947 {
1948 int res;
1949 struct stlink_usb_handle_s *h = handle;
1950
1951 assert(handle != NULL);
1952
1953 if (h->version.jtag_api != STLINK_JTAG_API_V1) {
1954 res = stlink_usb_write_debug_reg(handle, DCB_DHCSR, DBGKEY|C_HALT|C_DEBUGEN);
1955
1956 return res;
1957 }
1958
1959 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1960
1961 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1962 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_FORCEDEBUG;
1963
1964 return stlink_cmd_allow_retry(handle, h->databuf, 2);
1965 }
1966
1967 /** */
1968 static int stlink_usb_step(void *handle)
1969 {
1970 struct stlink_usb_handle_s *h = handle;
1971
1972 assert(handle != NULL);
1973
1974 if (h->version.jtag_api != STLINK_JTAG_API_V1) {
1975 /* TODO: this emulates the v1 api, it should really use a similar auto mask isr
1976 * that the Cortex-M3 currently does. */
1977 stlink_usb_write_debug_reg(handle, DCB_DHCSR, DBGKEY|C_HALT|C_MASKINTS|C_DEBUGEN);
1978 stlink_usb_write_debug_reg(handle, DCB_DHCSR, DBGKEY|C_STEP|C_MASKINTS|C_DEBUGEN);
1979 return stlink_usb_write_debug_reg(handle, DCB_DHCSR, DBGKEY|C_HALT|C_DEBUGEN);
1980 }
1981
1982 stlink_usb_init_buffer(handle, h->rx_ep, 2);
1983
1984 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
1985 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_STEPCORE;
1986
1987 return stlink_cmd_allow_retry(handle, h->databuf, 2);
1988 }
1989
1990 /** */
1991 static int stlink_usb_read_regs(void *handle)
1992 {
1993 int res;
1994 struct stlink_usb_handle_s *h = handle;
1995
1996 assert(handle != NULL);
1997
1998 stlink_usb_init_buffer(handle, h->rx_ep, 88);
1999
2000 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2001 if (h->version.jtag_api == STLINK_JTAG_API_V1) {
2002
2003 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV1_READALLREGS;
2004 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 84);
2005 /* regs data from offset 0 */
2006 } else {
2007 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_READALLREGS;
2008 res = stlink_usb_xfer_errcheck(handle, h->databuf, 88);
2009 /* status at offset 0, regs data from offset 4 */
2010 }
2011
2012 return res;
2013 }
2014
2015 /** */
2016 static int stlink_usb_read_reg(void *handle, int num, uint32_t *val)
2017 {
2018 int res;
2019 struct stlink_usb_handle_s *h = handle;
2020
2021 assert(handle != NULL);
2022
2023 stlink_usb_init_buffer(handle, h->rx_ep, h->version.jtag_api == STLINK_JTAG_API_V1 ? 4 : 8);
2024
2025 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2026 if (h->version.jtag_api == STLINK_JTAG_API_V1)
2027 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV1_READREG;
2028 else
2029 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_READREG;
2030 h->cmdbuf[h->cmdidx++] = num;
2031
2032 if (h->version.jtag_api == STLINK_JTAG_API_V1) {
2033 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, 4);
2034 if (res != ERROR_OK)
2035 return res;
2036 *val = le_to_h_u32(h->databuf);
2037 return ERROR_OK;
2038 } else {
2039 res = stlink_cmd_allow_retry(handle, h->databuf, 8);
2040 if (res != ERROR_OK)
2041 return res;
2042 *val = le_to_h_u32(h->databuf + 4);
2043 return ERROR_OK;
2044 }
2045 }
2046
2047 /** */
2048 static int stlink_usb_write_reg(void *handle, int num, uint32_t val)
2049 {
2050 struct stlink_usb_handle_s *h = handle;
2051
2052 assert(handle != NULL);
2053
2054 stlink_usb_init_buffer(handle, h->rx_ep, 2);
2055
2056 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2057 if (h->version.jtag_api == STLINK_JTAG_API_V1)
2058 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV1_WRITEREG;
2059 else
2060 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_WRITEREG;
2061 h->cmdbuf[h->cmdidx++] = num;
2062 h_u32_to_le(h->cmdbuf+h->cmdidx, val);
2063 h->cmdidx += 4;
2064
2065 return stlink_cmd_allow_retry(handle, h->databuf, 2);
2066 }
2067
2068 static int stlink_usb_get_rw_status(void *handle)
2069 {
2070 struct stlink_usb_handle_s *h = handle;
2071
2072 assert(handle != NULL);
2073
2074 if (h->version.jtag_api == STLINK_JTAG_API_V1)
2075 return ERROR_OK;
2076
2077 stlink_usb_init_buffer(handle, h->rx_ep, 2);
2078
2079 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2080 if (h->version.flags & STLINK_F_HAS_GETLASTRWSTATUS2) {
2081 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_GETLASTRWSTATUS2;
2082 return stlink_usb_xfer_errcheck(handle, h->databuf, 12);
2083 } else {
2084 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_GETLASTRWSTATUS;
2085 return stlink_usb_xfer_errcheck(handle, h->databuf, 2);
2086 }
2087 }
2088
2089 /** */
2090 static int stlink_usb_read_mem8(void *handle, uint32_t addr, uint16_t len,
2091 uint8_t *buffer)
2092 {
2093 int res;
2094 uint16_t read_len = len;
2095 struct stlink_usb_handle_s *h = handle;
2096
2097 assert(handle != NULL);
2098
2099 /* max 8 bit read/write is 64 bytes or 512 bytes for v3 */
2100 if (len > stlink_usb_block(h)) {
2101 LOG_DEBUG("max buffer (%d) length exceeded", stlink_usb_block(h));
2102 return ERROR_FAIL;
2103 }
2104
2105 stlink_usb_init_buffer(handle, h->rx_ep, read_len);
2106
2107 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2108 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_READMEM_8BIT;
2109 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
2110 h->cmdidx += 4;
2111 h_u16_to_le(h->cmdbuf+h->cmdidx, len);
2112 h->cmdidx += 2;
2113
2114 /* we need to fix read length for single bytes */
2115 if (read_len == 1)
2116 read_len++;
2117
2118 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, read_len);
2119
2120 if (res != ERROR_OK)
2121 return res;
2122
2123 memcpy(buffer, h->databuf, len);
2124
2125 return stlink_usb_get_rw_status(handle);
2126 }
2127
2128 /** */
2129 static int stlink_usb_write_mem8(void *handle, uint32_t addr, uint16_t len,
2130 const uint8_t *buffer)
2131 {
2132 int res;
2133 struct stlink_usb_handle_s *h = handle;
2134
2135 assert(handle != NULL);
2136
2137 /* max 8 bit read/write is 64 bytes or 512 bytes for v3 */
2138 if (len > stlink_usb_block(h)) {
2139 LOG_DEBUG("max buffer length (%d) exceeded", stlink_usb_block(h));
2140 return ERROR_FAIL;
2141 }
2142
2143 stlink_usb_init_buffer(handle, h->tx_ep, len);
2144
2145 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2146 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_WRITEMEM_8BIT;
2147 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
2148 h->cmdidx += 4;
2149 h_u16_to_le(h->cmdbuf+h->cmdidx, len);
2150 h->cmdidx += 2;
2151
2152 res = stlink_usb_xfer_noerrcheck(handle, buffer, len);
2153
2154 if (res != ERROR_OK)
2155 return res;
2156
2157 return stlink_usb_get_rw_status(handle);
2158 }
2159
2160 /** */
2161 static int stlink_usb_read_mem16(void *handle, uint32_t addr, uint16_t len,
2162 uint8_t *buffer)
2163 {
2164 int res;
2165 struct stlink_usb_handle_s *h = handle;
2166
2167 assert(handle != NULL);
2168
2169 if (!(h->version.flags & STLINK_F_HAS_MEM_16BIT))
2170 return ERROR_COMMAND_NOTFOUND;
2171
2172 /* data must be a multiple of 2 and half-word aligned */
2173 if (len % 2 || addr % 2) {
2174 LOG_DEBUG("Invalid data alignment");
2175 return ERROR_TARGET_UNALIGNED_ACCESS;
2176 }
2177
2178 stlink_usb_init_buffer(handle, h->rx_ep, len);
2179
2180 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2181 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_READMEM_16BIT;
2182 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
2183 h->cmdidx += 4;
2184 h_u16_to_le(h->cmdbuf+h->cmdidx, len);
2185 h->cmdidx += 2;
2186
2187 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, len);
2188
2189 if (res != ERROR_OK)
2190 return res;
2191
2192 memcpy(buffer, h->databuf, len);
2193
2194 return stlink_usb_get_rw_status(handle);
2195 }
2196
2197 /** */
2198 static int stlink_usb_write_mem16(void *handle, uint32_t addr, uint16_t len,
2199 const uint8_t *buffer)
2200 {
2201 int res;
2202 struct stlink_usb_handle_s *h = handle;
2203
2204 assert(handle != NULL);
2205
2206 if (!(h->version.flags & STLINK_F_HAS_MEM_16BIT))
2207 return ERROR_COMMAND_NOTFOUND;
2208
2209 /* data must be a multiple of 2 and half-word aligned */
2210 if (len % 2 || addr % 2) {
2211 LOG_DEBUG("Invalid data alignment");
2212 return ERROR_TARGET_UNALIGNED_ACCESS;
2213 }
2214
2215 stlink_usb_init_buffer(handle, h->tx_ep, len);
2216
2217 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2218 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_WRITEMEM_16BIT;
2219 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
2220 h->cmdidx += 4;
2221 h_u16_to_le(h->cmdbuf+h->cmdidx, len);
2222 h->cmdidx += 2;
2223
2224 res = stlink_usb_xfer_noerrcheck(handle, buffer, len);
2225
2226 if (res != ERROR_OK)
2227 return res;
2228
2229 return stlink_usb_get_rw_status(handle);
2230 }
2231
2232 /** */
2233 static int stlink_usb_read_mem32(void *handle, uint32_t addr, uint16_t len,
2234 uint8_t *buffer)
2235 {
2236 int res;
2237 struct stlink_usb_handle_s *h = handle;
2238
2239 assert(handle != NULL);
2240
2241 /* data must be a multiple of 4 and word aligned */
2242 if (len % 4 || addr % 4) {
2243 LOG_DEBUG("Invalid data alignment");
2244 return ERROR_TARGET_UNALIGNED_ACCESS;
2245 }
2246
2247 stlink_usb_init_buffer(handle, h->rx_ep, len);
2248
2249 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2250 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_READMEM_32BIT;
2251 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
2252 h->cmdidx += 4;
2253 h_u16_to_le(h->cmdbuf+h->cmdidx, len);
2254 h->cmdidx += 2;
2255
2256 res = stlink_usb_xfer_noerrcheck(handle, h->databuf, len);
2257
2258 if (res != ERROR_OK)
2259 return res;
2260
2261 memcpy(buffer, h->databuf, len);
2262
2263 return stlink_usb_get_rw_status(handle);
2264 }
2265
2266 /** */
2267 static int stlink_usb_write_mem32(void *handle, uint32_t addr, uint16_t len,
2268 const uint8_t *buffer)
2269 {
2270 int res;
2271 struct stlink_usb_handle_s *h = handle;
2272
2273 assert(handle != NULL);
2274
2275 /* data must be a multiple of 4 and word aligned */
2276 if (len % 4 || addr % 4) {
2277 LOG_DEBUG("Invalid data alignment");
2278 return ERROR_TARGET_UNALIGNED_ACCESS;
2279 }
2280
2281 stlink_usb_init_buffer(handle, h->tx_ep, len);
2282
2283 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2284 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_WRITEMEM_32BIT;
2285 h_u32_to_le(h->cmdbuf+h->cmdidx, addr);
2286 h->cmdidx += 4;
2287 h_u16_to_le(h->cmdbuf+h->cmdidx, len);
2288 h->cmdidx += 2;
2289
2290 res = stlink_usb_xfer_noerrcheck(handle, buffer, len);
2291
2292 if (res != ERROR_OK)
2293 return res;
2294
2295 return stlink_usb_get_rw_status(handle);
2296 }
2297
2298 static uint32_t stlink_max_block_size(uint32_t tar_autoincr_block, uint32_t address)
2299 {
2300 uint32_t max_tar_block = (tar_autoincr_block - ((tar_autoincr_block - 1) & address));
2301 if (max_tar_block == 0)
2302 max_tar_block = 4;
2303 return max_tar_block;
2304 }
2305
2306 static int stlink_usb_read_mem(void *handle, uint32_t addr, uint32_t size,
2307 uint32_t count, uint8_t *buffer)
2308 {
2309 int retval = ERROR_OK;
2310 uint32_t bytes_remaining;
2311 int retries = 0;
2312 struct stlink_usb_handle_s *h = handle;
2313
2314 /* calculate byte count */
2315 count *= size;
2316
2317 /* switch to 8 bit if stlink does not support 16 bit memory read */
2318 if (size == 2 && !(h->version.flags & STLINK_F_HAS_MEM_16BIT))
2319 size = 1;
2320
2321 while (count) {
2322
2323 bytes_remaining = (size != 1) ? \
2324 stlink_max_block_size(h->max_mem_packet, addr) : stlink_usb_block(h);
2325
2326 if (count < bytes_remaining)
2327 bytes_remaining = count;
2328
2329 if (h->transport == HL_TRANSPORT_SWIM) {
2330 retval = stlink_swim_readbytes(handle, addr, bytes_remaining, buffer);
2331 if (retval != ERROR_OK)
2332 return retval;
2333 } else
2334 /*
2335 * all stlink support 8/32bit memory read/writes and only from
2336 * stlink V2J26 there is support for 16 bit memory read/write.
2337 * Honour 32 bit and, if possible, 16 bit too. Otherwise, handle
2338 * as 8bit access.
2339 */
2340 if (size != 1) {
2341
2342 /* When in jtag mode the stlink uses the auto-increment functionality.
2343 * However it expects us to pass the data correctly, this includes
2344 * alignment and any page boundaries. We already do this as part of the
2345 * adi_v5 implementation, but the stlink is a hla adapter and so this
2346 * needs implementing manually.
2347 * currently this only affects jtag mode, according to ST they do single
2348 * access in SWD mode - but this may change and so we do it for both modes */
2349
2350 /* we first need to check for any unaligned bytes */
2351 if (addr & (size - 1)) {
2352
2353 uint32_t head_bytes = size - (addr & (size - 1));
2354 retval = stlink_usb_read_mem8(handle, addr, head_bytes, buffer);
2355 if (retval == ERROR_WAIT && retries < MAX_WAIT_RETRIES) {
2356 usleep((1<<retries++) * 1000);
2357 continue;
2358 }
2359 if (retval != ERROR_OK)
2360 return retval;
2361 buffer += head_bytes;
2362 addr += head_bytes;
2363 count -= head_bytes;
2364 bytes_remaining -= head_bytes;
2365 }
2366
2367 if (bytes_remaining & (size - 1))
2368 retval = stlink_usb_read_mem(handle, addr, 1, bytes_remaining, buffer);
2369 else if (size == 2)
2370 retval = stlink_usb_read_mem16(handle, addr, bytes_remaining, buffer);
2371 else
2372 retval = stlink_usb_read_mem32(handle, addr, bytes_remaining, buffer);
2373 } else
2374 retval = stlink_usb_read_mem8(handle, addr, bytes_remaining, buffer);
2375
2376 if (retval == ERROR_WAIT && retries < MAX_WAIT_RETRIES) {
2377 usleep((1<<retries++) * 1000);
2378 continue;
2379 }
2380 if (retval != ERROR_OK)
2381 return retval;
2382
2383 buffer += bytes_remaining;
2384 addr += bytes_remaining;
2385 count -= bytes_remaining;
2386 }
2387
2388 return retval;
2389 }
2390
2391 static int stlink_usb_write_mem(void *handle, uint32_t addr, uint32_t size,
2392 uint32_t count, const uint8_t *buffer)
2393 {
2394 int retval = ERROR_OK;
2395 uint32_t bytes_remaining;
2396 int retries = 0;
2397 struct stlink_usb_handle_s *h = handle;
2398
2399 /* calculate byte count */
2400 count *= size;
2401
2402 /* switch to 8 bit if stlink does not support 16 bit memory read */
2403 if (size == 2 && !(h->version.flags & STLINK_F_HAS_MEM_16BIT))
2404 size = 1;
2405
2406 while (count) {
2407
2408 bytes_remaining = (size != 1) ? \
2409 stlink_max_block_size(h->max_mem_packet, addr) : stlink_usb_block(h);
2410
2411 if (count < bytes_remaining)
2412 bytes_remaining = count;
2413
2414 if (h->transport == HL_TRANSPORT_SWIM) {
2415 retval = stlink_swim_writebytes(handle, addr, bytes_remaining, buffer);
2416 if (retval != ERROR_OK)
2417 return retval;
2418 } else
2419 /*
2420 * all stlink support 8/32bit memory read/writes and only from
2421 * stlink V2J26 there is support for 16 bit memory read/write.
2422 * Honour 32 bit and, if possible, 16 bit too. Otherwise, handle
2423 * as 8bit access.
2424 */
2425 if (size != 1) {
2426
2427 /* When in jtag mode the stlink uses the auto-increment functionality.
2428 * However it expects us to pass the data correctly, this includes
2429 * alignment and any page boundaries. We already do this as part of the
2430 * adi_v5 implementation, but the stlink is a hla adapter and so this
2431 * needs implementing manually.
2432 * currently this only affects jtag mode, according to ST they do single
2433 * access in SWD mode - but this may change and so we do it for both modes */
2434
2435 /* we first need to check for any unaligned bytes */
2436 if (addr & (size - 1)) {
2437
2438 uint32_t head_bytes = size - (addr & (size - 1));
2439 retval = stlink_usb_write_mem8(handle, addr, head_bytes, buffer);
2440 if (retval == ERROR_WAIT && retries < MAX_WAIT_RETRIES) {
2441 usleep((1<<retries++) * 1000);
2442 continue;
2443 }
2444 if (retval != ERROR_OK)
2445 return retval;
2446 buffer += head_bytes;
2447 addr += head_bytes;
2448 count -= head_bytes;
2449 bytes_remaining -= head_bytes;
2450 }
2451
2452 if (bytes_remaining & (size - 1))
2453 retval = stlink_usb_write_mem(handle, addr, 1, bytes_remaining, buffer);
2454 else if (size == 2)
2455 retval = stlink_usb_write_mem16(handle, addr, bytes_remaining, buffer);
2456 else
2457 retval = stlink_usb_write_mem32(handle, addr, bytes_remaining, buffer);
2458
2459 } else
2460 retval = stlink_usb_write_mem8(handle, addr, bytes_remaining, buffer);
2461 if (retval == ERROR_WAIT && retries < MAX_WAIT_RETRIES) {
2462 usleep((1<<retries++) * 1000);
2463 continue;
2464 }
2465 if (retval != ERROR_OK)
2466 return retval;
2467
2468 buffer += bytes_remaining;
2469 addr += bytes_remaining;
2470 count -= bytes_remaining;
2471 }
2472
2473 return retval;
2474 }
2475
2476 /** */
2477 static int stlink_usb_override_target(const char *targetname)
2478 {
2479 return !strcmp(targetname, "cortex_m");
2480 }
2481
2482 static int stlink_speed_swim(void *handle, int khz, bool query)
2483 {
2484 /*
2485 we dont care what the khz rate is
2486 we only have low and high speed...
2487 before changing speed the SWIM_CSR HS bit
2488 must be updated
2489 */
2490 if (khz == 0)
2491 stlink_swim_speed(handle, 0);
2492 else
2493 stlink_swim_speed(handle, 1);
2494 return khz;
2495 }
2496
2497 static int stlink_match_speed_map(const struct speed_map *map, unsigned int map_size, int khz, bool query)
2498 {
2499 unsigned int i;
2500 int speed_index = -1;
2501 int speed_diff = INT_MAX;
2502 int last_valid_speed = -1;
2503 bool match = true;
2504
2505 for (i = 0; i < map_size; i++) {
2506 if (!map[i].speed)
2507 continue;
2508 last_valid_speed = i;
2509 if (khz == map[i].speed) {
2510 speed_index = i;
2511 break;
2512 } else {
2513 int current_diff = khz - map[i].speed;
2514 /* get abs value for comparison */
2515 current_diff = (current_diff > 0) ? current_diff : -current_diff;
2516 if ((current_diff < speed_diff) && khz >= map[i].speed) {
2517 speed_diff = current_diff;
2518 speed_index = i;
2519 }
2520 }
2521 }
2522
2523 if (speed_index == -1) {
2524 /* this will only be here if we cannot match the slow speed.
2525 * use the slowest speed we support.*/
2526 speed_index = last_valid_speed;
2527 match = false;
2528 } else if (i == map_size)
2529 match = false;
2530
2531 if (!match && query) {
2532 LOG_INFO("Unable to match requested speed %d kHz, using %d kHz", \
2533 khz, map[speed_index].speed);
2534 }
2535
2536 return speed_index;
2537 }
2538
2539 static int stlink_speed_swd(void *handle, int khz, bool query)
2540 {
2541 int speed_index;
2542 struct stlink_usb_handle_s *h = handle;
2543
2544 /* old firmware cannot change it */
2545 if (!(h->version.flags & STLINK_F_HAS_SWD_SET_FREQ))
2546 return khz;
2547
2548 speed_index = stlink_match_speed_map(stlink_khz_to_speed_map_swd,
2549 ARRAY_SIZE(stlink_khz_to_speed_map_swd), khz, query);
2550
2551 if (!query) {
2552 int result = stlink_usb_set_swdclk(h, stlink_khz_to_speed_map_swd[speed_index].speed_divisor);
2553 if (result != ERROR_OK) {
2554 LOG_ERROR("Unable to set adapter speed");
2555 return khz;
2556 }
2557 }
2558
2559 return stlink_khz_to_speed_map_swd[speed_index].speed;
2560 }
2561
2562 static int stlink_speed_jtag(void *handle, int khz, bool query)
2563 {
2564 int speed_index;
2565 struct stlink_usb_handle_s *h = handle;
2566
2567 /* old firmware cannot change it */
2568 if (!(h->version.flags & STLINK_F_HAS_JTAG_SET_FREQ))
2569 return khz;
2570
2571 speed_index = stlink_match_speed_map(stlink_khz_to_speed_map_jtag,
2572 ARRAY_SIZE(stlink_khz_to_speed_map_jtag), khz, query);
2573
2574 if (!query) {
2575 int result = stlink_usb_set_jtagclk(h, stlink_khz_to_speed_map_jtag[speed_index].speed_divisor);
2576 if (result != ERROR_OK) {
2577 LOG_ERROR("Unable to set adapter speed");
2578 return khz;
2579 }
2580 }
2581
2582 return stlink_khz_to_speed_map_jtag[speed_index].speed;
2583 }
2584
2585 void stlink_dump_speed_map(const struct speed_map *map, unsigned int map_size)
2586 {
2587 unsigned int i;
2588
2589 LOG_DEBUG("Supported clock speeds are:");
2590 for (i = 0; i < map_size; i++)
2591 if (map[i].speed)
2592 LOG_DEBUG("%d kHz", map[i].speed);
2593 }
2594
2595 static int stlink_get_com_freq(void *handle, bool is_jtag, struct speed_map *map)
2596 {
2597 struct stlink_usb_handle_s *h = handle;
2598 int i;
2599
2600 if (h->version.jtag_api != STLINK_JTAG_API_V3) {
2601 LOG_ERROR("Unknown command");
2602 return 0;
2603 }
2604
2605 stlink_usb_init_buffer(handle, h->rx_ep, 16);
2606
2607 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2608 h->cmdbuf[h->cmdidx++] = STLINK_APIV3_GET_COM_FREQ;
2609 h->cmdbuf[h->cmdidx++] = is_jtag ? 1 : 0;
2610
2611 int res = stlink_usb_xfer_errcheck(handle, h->databuf, 52);
2612
2613 int size = h->databuf[8];
2614
2615 if (size > STLINK_V3_MAX_FREQ_NB)
2616 size = STLINK_V3_MAX_FREQ_NB;
2617
2618 for (i = 0; i < size; i++) {
2619 map[i].speed = le_to_h_u32(&h->databuf[12 + 4 * i]);
2620 map[i].speed_divisor = i;
2621 }
2622
2623 /* set to zero all the next entries */
2624 for (i = size; i < STLINK_V3_MAX_FREQ_NB; i++)
2625 map[i].speed = 0;
2626
2627 return res;
2628 }
2629
2630 static int stlink_set_com_freq(void *handle, bool is_jtag, unsigned int frequency)
2631 {
2632 struct stlink_usb_handle_s *h = handle;
2633
2634 if (h->version.jtag_api != STLINK_JTAG_API_V3) {
2635 LOG_ERROR("Unknown command");
2636 return 0;
2637 }
2638
2639 stlink_usb_init_buffer(handle, h->rx_ep, 16);
2640
2641 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
2642 h->cmdbuf[h->cmdidx++] = STLINK_APIV3_SET_COM_FREQ;
2643 h->cmdbuf[h->cmdidx++] = is_jtag ? 1 : 0;
2644 h->cmdbuf[h->cmdidx++] = 0;
2645
2646 h_u32_to_le(&h->cmdbuf[4], frequency);
2647
2648 return stlink_usb_xfer_errcheck(handle, h->databuf, 8);
2649 }
2650
2651 static int stlink_speed_v3(void *handle, bool is_jtag, int khz, bool query)
2652 {
2653 struct stlink_usb_handle_s *h = handle;
2654 int speed_index;
2655 struct speed_map map[STLINK_V3_MAX_FREQ_NB];
2656
2657 stlink_get_com_freq(h, is_jtag, map);
2658
2659 speed_index = stlink_match_speed_map(map, ARRAY_SIZE(map), khz, query);
2660
2661 if (!query) {
2662 int result = stlink_set_com_freq(h, is_jtag, map[speed_index].speed);
2663 if (result != ERROR_OK) {
2664 LOG_ERROR("Unable to set adapter speed");
2665 return khz;
2666 }
2667 }
2668 return map[speed_index].speed;
2669 }
2670
2671 static int stlink_speed(void *handle, int khz, bool query)
2672 {
2673 struct stlink_usb_handle_s *h = handle;
2674
2675 if (!handle)
2676 return khz;
2677
2678 switch (h->transport) {
2679 case HL_TRANSPORT_SWIM:
2680 return stlink_speed_swim(handle, khz, query);
2681 break;
2682 case HL_TRANSPORT_SWD:
2683 if (h->version.jtag_api == STLINK_JTAG_API_V3)
2684 return stlink_speed_v3(handle, false, khz, query);
2685 else
2686 return stlink_speed_swd(handle, khz, query);
2687 break;
2688 case HL_TRANSPORT_JTAG:
2689 if (h->version.jtag_api == STLINK_JTAG_API_V3)
2690 return stlink_speed_v3(handle, true, khz, query);
2691 else
2692 return stlink_speed_jtag(handle, khz, query);
2693 break;
2694 default:
2695 break;
2696 }
2697
2698 return khz;
2699 }
2700
2701 /** */
2702 static int stlink_usb_close(void *handle)
2703 {
2704 int res;
2705 uint8_t mode;
2706 enum stlink_mode emode;
2707 struct stlink_usb_handle_s *h = handle;
2708
2709 if (h && h->fd)
2710 res = stlink_usb_current_mode(handle, &mode);
2711 else
2712 res = ERROR_FAIL;
2713 /* do not exit if return code != ERROR_OK,
2714 it prevents us from closing jtag_libusb */
2715
2716 if (res == ERROR_OK) {
2717 /* try to exit current mode */
2718 switch (mode) {
2719 case STLINK_DEV_DFU_MODE:
2720 emode = STLINK_MODE_DFU;
2721 break;
2722 case STLINK_DEV_DEBUG_MODE:
2723 emode = STLINK_MODE_DEBUG_SWD;
2724 break;
2725 case STLINK_DEV_SWIM_MODE:
2726 emode = STLINK_MODE_DEBUG_SWIM;
2727 break;
2728 case STLINK_DEV_BOOTLOADER_MODE:
2729 case STLINK_DEV_MASS_MODE:
2730 default:
2731 emode = STLINK_MODE_UNKNOWN;
2732 break;
2733 }
2734
2735 if (emode != STLINK_MODE_UNKNOWN)
2736 stlink_usb_mode_leave(handle, emode);
2737 /* do not check return code, it prevent
2738 us from closing jtag_libusb */
2739 }
2740
2741 if (h && h->fd)
2742 jtag_libusb_close(h->fd);
2743
2744 free(h);
2745
2746 return ERROR_OK;
2747 }
2748
2749 /* Compute ST-Link serial number from the device descriptor
2750 * this function will help to work-around a bug in old ST-Link/V2 DFU
2751 * the buggy DFU returns an incorrect serial in the USB descriptor
2752 * example for the following serial "57FF72067265575742132067"
2753 * - the correct descriptor serial is:
2754 * 0x32, 0x03, 0x35, 0x00, 0x37, 0x00, 0x46, 0x00, 0x46, 0x00, 0x37, 0x00, 0x32, 0x00 ...
2755 * this contains the length (0x32 = 50), the type (0x3 = DT_STRING) and the serial in unicode format
2756 * the serial part is: 0x0035, 0x0037, 0x0046, 0x0046, 0x0037, 0x0032 ... >> 57FF72 ...
2757 * this format could be read correctly by 'libusb_get_string_descriptor_ascii'
2758 * so this case is managed by libusb_helper::string_descriptor_equal
2759 * - the buggy DFU is not doing any unicode conversion and returns a raw serial data in the descriptor
2760 * 0x1a, 0x03, 0x57, 0x00, 0xFF, 0x00, 0x72, 0x00 ...
2761 * >> 57 FF 72 ...
2762 * based on the length (0x1a = 26) we could easily decide if we have to fixup the serial
2763 * and then we have just to convert the raw data into printable characters using sprintf
2764 */
2765 char *stlink_usb_get_alternate_serial(libusb_device_handle *device,
2766 struct libusb_device_descriptor *dev_desc)
2767 {
2768 int usb_retval;
2769 unsigned char desc_serial[(STLINK_SERIAL_LEN + 1) * 2];
2770
2771 if (dev_desc->iSerialNumber == 0)
2772 return NULL;
2773
2774 /* get the LANGID from String Descriptor Zero */
2775 usb_retval = libusb_get_string_descriptor(device, 0, 0, desc_serial,
2776 sizeof(desc_serial));
2777
2778 if (usb_retval < LIBUSB_SUCCESS) {
2779 LOG_ERROR("libusb_get_string_descriptor() failed: %s(%d)",
2780 libusb_error_name(usb_retval), usb_retval);
2781 return NULL;
2782 } else if (usb_retval < 4) {
2783 /* the size should be least 4 bytes to contain a minimum of 1 supported LANGID */
2784 LOG_ERROR("could not get the LANGID");
2785 return NULL;
2786 }
2787
2788 uint32_t langid = desc_serial[2] | (desc_serial[3] << 8);
2789
2790 /* get the serial */
2791 usb_retval = libusb_get_string_descriptor(device, dev_desc->iSerialNumber,
2792 langid, desc_serial, sizeof(desc_serial));
2793
2794 unsigned char len = desc_serial[0];
2795
2796 if (usb_retval < LIBUSB_SUCCESS) {
2797 LOG_ERROR("libusb_get_string_descriptor() failed: %s(%d)",
2798 libusb_error_name(usb_retval), usb_retval);
2799 return NULL;
2800 } else if (desc_serial[1] != LIBUSB_DT_STRING || len > usb_retval) {
2801 LOG_ERROR("invalid string in ST-LINK USB serial descriptor");
2802 return NULL;
2803 }
2804
2805 if (len == ((STLINK_SERIAL_LEN + 1) * 2)) {
2806 /* good ST-Link adapter, this case is managed by
2807 * libusb::libusb_get_string_descriptor_ascii */
2808 return NULL;
2809 } else if (len != ((STLINK_SERIAL_LEN / 2 + 1) * 2)) {
2810 LOG_ERROR("unexpected serial length (%d) in descriptor", len);
2811 return NULL;
2812 }
2813
2814 /* else (len == 26) => buggy ST-Link */
2815
2816 char *alternate_serial = malloc((STLINK_SERIAL_LEN + 1) * sizeof(char));
2817 if (alternate_serial == NULL)
2818 return NULL;
2819
2820 for (unsigned int i = 0; i < STLINK_SERIAL_LEN; i += 2)
2821 sprintf(alternate_serial + i, "%02X", desc_serial[i + 2]);
2822
2823 alternate_serial[STLINK_SERIAL_LEN] = '\0';
2824
2825 return alternate_serial;
2826 }
2827
2828 /** */
2829 static int stlink_usb_open(struct hl_interface_param_s *param, void **fd)
2830 {
2831 int err, retry_count = 1;
2832 struct stlink_usb_handle_s *h;
2833
2834 LOG_DEBUG("stlink_usb_open");
2835
2836 h = calloc(1, sizeof(struct stlink_usb_handle_s));
2837
2838 if (h == 0) {
2839 LOG_DEBUG("malloc failed");
2840 return ERROR_FAIL;
2841 }
2842
2843 h->transport = param->transport;
2844
2845 for (unsigned i = 0; param->vid[i]; i++) {
2846 LOG_DEBUG("transport: %d vid: 0x%04x pid: 0x%04x serial: %s",
2847 param->transport, param->vid[i], param->pid[i],
2848 param->serial ? param->serial : "");
2849 }
2850
2851 /*
2852 On certain host USB configurations(e.g. MacBook Air)
2853 STLINKv2 dongle seems to have its FW in a funky state if,
2854 after plugging it in, you try to use openocd with it more
2855 then once (by launching and closing openocd). In cases like
2856 that initial attempt to read the FW info via
2857 stlink_usb_version will fail and the device has to be reset
2858 in order to become operational.
2859 */
2860 do {
2861 if (jtag_libusb_open(param->vid, param->pid, param->serial,
2862 &h->fd, stlink_usb_get_alternate_serial) != ERROR_OK) {
2863 LOG_ERROR("open failed");
2864 goto error_open;
2865 }
2866
2867 jtag_libusb_set_configuration(h->fd, 0);
2868
2869 if (libusb_claim_interface(h->fd, 0) != ERROR_OK) {
2870 LOG_DEBUG("claim interface failed");
2871 goto error_open;
2872 }
2873
2874 /* RX EP is common for all versions */
2875 h->rx_ep = STLINK_RX_EP;
2876
2877 uint16_t pid;
2878 if (jtag_libusb_get_pid(libusb_get_device(h->fd), &pid) != ERROR_OK) {
2879 LOG_DEBUG("libusb_get_pid failed");
2880 goto error_open;
2881 }
2882
2883 /* wrap version for first read */
2884 switch (pid) {
2885 case STLINK_V1_PID:
2886 h->version.stlink = 1;
2887 h->tx_ep = STLINK_TX_EP;
2888 break;
2889 case STLINK_V3_USBLOADER_PID:
2890 case STLINK_V3E_PID:
2891 case STLINK_V3S_PID:
2892 case STLINK_V3_2VCP_PID:
2893 h->version.stlink = 3;
2894 h->tx_ep = STLINK_V2_1_TX_EP;
2895 h->trace_ep = STLINK_V2_1_TRACE_EP;
2896 break;
2897 case STLINK_V2_1_PID:
2898 case STLINK_V2_1_NO_MSD_PID:
2899 h->version.stlink = 2;
2900 h->tx_ep = STLINK_V2_1_TX_EP;
2901 h->trace_ep = STLINK_V2_1_TRACE_EP;
2902 break;
2903 default:
2904 /* fall through - we assume V2 to be the default version*/
2905 case STLINK_V2_PID:
2906 h->version.stlink = 2;
2907 h->tx_ep = STLINK_TX_EP;
2908 h->trace_ep = STLINK_TRACE_EP;
2909 break;
2910 }
2911
2912 /* get the device version */
2913 err = stlink_usb_version(h);
2914
2915 if (err == ERROR_OK) {
2916 break;
2917 } else if (h->version.stlink == 1 ||
2918 retry_count == 0) {
2919 LOG_ERROR("read version failed");
2920 goto error_open;
2921 } else {
2922 err = libusb_release_interface(h->fd, 0);
2923 if (err != ERROR_OK) {
2924 LOG_ERROR("release interface failed");
2925 goto error_open;
2926 }
2927
2928 err = libusb_reset_device(h->fd);
2929 if (err != ERROR_OK) {
2930 LOG_ERROR("reset device failed");
2931 goto error_open;
2932 }
2933
2934 jtag_libusb_close(h->fd);
2935 /*
2936 Give the device one second to settle down and
2937 reenumerate.
2938 */
2939 usleep(1 * 1000 * 1000);
2940 retry_count--;
2941 }
2942 } while (1);
2943
2944 /* check if mode is supported */
2945 err = ERROR_OK;
2946
2947 switch (h->transport) {
2948 case HL_TRANSPORT_SWD:
2949 if (h->version.jtag_api == STLINK_JTAG_API_V1)
2950 err = ERROR_FAIL;
2951 /* fall-through */
2952 case HL_TRANSPORT_JTAG:
2953 if (h->version.jtag == 0)
2954 err = ERROR_FAIL;
2955 break;
2956 case HL_TRANSPORT_SWIM:
2957 if (h->version.swim == 0)
2958 err = ERROR_FAIL;
2959 break;
2960 default:
2961 err = ERROR_FAIL;
2962 break;
2963 }
2964
2965 if (err != ERROR_OK) {
2966 LOG_ERROR("mode (transport) not supported by device");
2967 goto error_open;
2968 }
2969
2970 /* initialize the debug hardware */
2971 err = stlink_usb_init_mode(h, param->connect_under_reset, param->initial_interface_speed);
2972
2973 if (err != ERROR_OK) {
2974 LOG_ERROR("init mode failed (unable to connect to the target)");
2975 goto error_open;
2976 }
2977
2978 if (h->transport == HL_TRANSPORT_SWIM) {
2979 err = stlink_swim_enter(h);
2980 if (err != ERROR_OK) {
2981 LOG_ERROR("stlink_swim_enter_failed (unable to connect to the target)");
2982 goto error_open;
2983 }
2984 *fd = h;
2985 h->max_mem_packet = STLINK_DATA_SIZE;
2986 return ERROR_OK;
2987 }
2988
2989 /* get cpuid, so we can determine the max page size
2990 * start with a safe default */
2991 h->max_mem_packet = (1 << 10);
2992
2993 uint8_t buffer[4];
2994 err = stlink_usb_read_mem32(h, CPUID, 4, buffer);
2995 if (err == ERROR_OK) {
2996 uint32_t cpuid = le_to_h_u32(buffer);
2997 int i = (cpuid >> 4) & 0xf;
2998 if (i == 4 || i == 3) {
2999 /* Cortex-M3/M4 has 4096 bytes autoincrement range */
3000 h->max_mem_packet = (1 << 12);
3001 }
3002 }
3003
3004 LOG_DEBUG("Using TAR autoincrement: %" PRIu32, h->max_mem_packet);
3005
3006 *fd = h;
3007
3008 return ERROR_OK;
3009
3010 error_open:
3011 stlink_usb_close(h);
3012
3013 return ERROR_FAIL;
3014 }
3015
3016 int stlink_config_trace(void *handle, bool enabled,
3017 enum tpiu_pin_protocol pin_protocol, uint32_t port_size,
3018 unsigned int *trace_freq, unsigned int traceclkin_freq,
3019 uint16_t *prescaler)
3020 {
3021 struct stlink_usb_handle_s *h = handle;
3022 uint16_t presc;
3023
3024 if (enabled && (!(h->version.flags & STLINK_F_HAS_TRACE) ||
3025 pin_protocol != TPIU_PIN_PROTOCOL_ASYNC_UART)) {
3026 LOG_ERROR("The attached ST-LINK version doesn't support this trace mode");
3027 return ERROR_FAIL;
3028 }
3029
3030 if (!enabled) {
3031 stlink_usb_trace_disable(h);
3032 return ERROR_OK;
3033 }
3034
3035 if (*trace_freq > STLINK_TRACE_MAX_HZ) {
3036 LOG_ERROR("ST-LINK doesn't support SWO frequency higher than %u",
3037 STLINK_TRACE_MAX_HZ);
3038 return ERROR_FAIL;
3039 }
3040
3041 stlink_usb_trace_disable(h);
3042
3043 if (!*trace_freq)
3044 *trace_freq = STLINK_TRACE_MAX_HZ;
3045
3046 presc = traceclkin_freq / *trace_freq;
3047
3048 if (traceclkin_freq % *trace_freq > 0)
3049 presc++;
3050
3051 if (presc > TPIU_ACPR_MAX_SWOSCALER) {
3052 LOG_ERROR("SWO frequency is not suitable. Please choose a different "
3053 "frequency.");
3054 return ERROR_FAIL;
3055 }
3056
3057 *prescaler = presc;
3058 h->trace.source_hz = *trace_freq;
3059
3060 return stlink_usb_trace_enable(h);
3061 }
3062
3063 /** */
3064 static int stlink_usb_init_access_port(void *handle, unsigned char ap_num)
3065 {
3066 struct stlink_usb_handle_s *h = handle;
3067
3068 assert(handle != NULL);
3069
3070 if (!(h->version.flags & STLINK_F_HAS_AP_INIT))
3071 return ERROR_COMMAND_NOTFOUND;
3072
3073 LOG_DEBUG_IO("init ap_num = %d", ap_num);
3074 stlink_usb_init_buffer(handle, h->rx_ep, 16);
3075 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
3076 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_INIT_AP;
3077 h->cmdbuf[h->cmdidx++] = ap_num;
3078
3079 return stlink_usb_xfer_errcheck(handle, h->databuf, 2);
3080 }
3081
3082 /** */
3083 static int stlink_usb_close_access_port(void *handle, unsigned char ap_num)
3084 {
3085 struct stlink_usb_handle_s *h = handle;
3086
3087 assert(handle != NULL);
3088
3089 if (!(h->version.flags & STLINK_F_HAS_AP_INIT))
3090 return ERROR_COMMAND_NOTFOUND;
3091
3092 LOG_DEBUG_IO("close ap_num = %d", ap_num);
3093 stlink_usb_init_buffer(handle, h->rx_ep, 16);
3094 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
3095 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_CLOSE_AP_DBG;
3096 h->cmdbuf[h->cmdidx++] = ap_num;
3097
3098 return stlink_usb_xfer_errcheck(handle, h->databuf, 2);
3099 }
3100
3101 /** */
3102 static int stlink_read_dap_register(void *handle, unsigned short dap_port,
3103 unsigned short addr, uint32_t *val)
3104 {
3105 struct stlink_usb_handle_s *h = handle;
3106 int retval;
3107
3108 assert(handle != NULL);
3109
3110 if (!(h->version.flags & STLINK_F_HAS_DAP_REG))
3111 return ERROR_COMMAND_NOTFOUND;
3112
3113 stlink_usb_init_buffer(handle, h->rx_ep, 16);
3114 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
3115 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_READ_DAP_REG;
3116 h_u16_to_le(&h->cmdbuf[2], dap_port);
3117 h_u16_to_le(&h->cmdbuf[4], addr);
3118
3119 retval = stlink_usb_xfer_errcheck(handle, h->databuf, 8);
3120 *val = le_to_h_u32(h->databuf + 4);
3121 LOG_DEBUG_IO("dap_port_read = %d, addr = 0x%x, value = 0x%x", dap_port, addr, *val);
3122 return retval;
3123 }
3124
3125 /** */
3126 static int stlink_write_dap_register(void *handle, unsigned short dap_port,
3127 unsigned short addr, uint32_t val)
3128 {
3129 struct stlink_usb_handle_s *h = handle;
3130
3131 assert(handle != NULL);
3132
3133 if (!(h->version.flags & STLINK_F_HAS_DAP_REG))
3134 return ERROR_COMMAND_NOTFOUND;
3135
3136 LOG_DEBUG_IO("dap_write port = %d, addr = 0x%x, value = 0x%x", dap_port, addr, val);
3137 stlink_usb_init_buffer(handle, h->rx_ep, 16);
3138 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_COMMAND;
3139 h->cmdbuf[h->cmdidx++] = STLINK_DEBUG_APIV2_WRITE_DAP_REG;
3140 h_u16_to_le(&h->cmdbuf[2], dap_port);
3141 h_u16_to_le(&h->cmdbuf[4], addr);
3142 h_u32_to_le(&h->cmdbuf[6], val);
3143 return stlink_usb_xfer_errcheck(handle, h->databuf, 2);
3144 }
3145
3146 /** */
3147 struct hl_layout_api_s stlink_usb_layout_api = {
3148 /** */
3149 .open = stlink_usb_open,
3150 /** */
3151 .close = stlink_usb_close,
3152 /** */
3153 .idcode = stlink_usb_idcode,
3154 /** */
3155 .state = stlink_usb_state,
3156 /** */
3157 .reset = stlink_usb_reset,
3158 /** */
3159 .assert_srst = stlink_usb_assert_srst,
3160 /** */
3161 .run = stlink_usb_run,
3162 /** */
3163 .halt = stlink_usb_halt,
3164 /** */
3165 .step = stlink_usb_step,
3166 /** */
3167 .read_regs = stlink_usb_read_regs,
3168 /** */
3169 .read_reg = stlink_usb_read_reg,
3170 /** */
3171 .write_reg = stlink_usb_write_reg,
3172 /** */
3173 .read_mem = stlink_usb_read_mem,
3174 /** */
3175 .write_mem = stlink_usb_write_mem,
3176 /** */
3177 .write_debug_reg = stlink_usb_write_debug_reg,
3178 /** */
3179 .override_target = stlink_usb_override_target,
3180 /** */
3181 .speed = stlink_speed,
3182 /** */
3183 .config_trace = stlink_config_trace,
3184 /** */
3185 .poll_trace = stlink_usb_trace_read,
3186 };
3187
3188 /*****************************************************************************
3189 * DAP direct interface
3190 */
3191
3192 static struct stlink_usb_handle_s *stlink_dap_handle;
3193 static struct hl_interface_param_s stlink_dap_param;
3194 static DECLARE_BITMAP(opened_ap, DP_APSEL_MAX + 1);
3195 static int stlink_dap_error = ERROR_OK;
3196
3197 static int stlink_dap_op_queue_dp_read(struct adiv5_dap *dap, unsigned reg,
3198 uint32_t *data);
3199
3200 /** */
3201 static int stlink_dap_record_error(int error)
3202 {
3203 if (stlink_dap_error == ERROR_OK)
3204 stlink_dap_error = error;
3205 return ERROR_OK;
3206 }
3207
3208 /** */
3209 static int stlink_dap_get_and_clear_error(void)
3210 {
3211 int retval = stlink_dap_error;
3212 stlink_dap_error = ERROR_OK;
3213 return retval;
3214 }
3215
3216 /** */
3217 static int stlink_dap_open_ap(unsigned short apsel)
3218 {
3219 int retval;
3220
3221 /* nothing to do on old versions */
3222 if (!(stlink_dap_handle->version.flags & STLINK_F_HAS_AP_INIT))
3223 return ERROR_OK;
3224
3225 if (apsel > DP_APSEL_MAX)
3226 return ERROR_FAIL;
3227
3228 if (test_bit(apsel, opened_ap))
3229 return ERROR_OK;
3230
3231 retval = stlink_usb_init_access_port(stlink_dap_handle, apsel);
3232 if (retval != ERROR_OK)
3233 return retval;
3234
3235 LOG_DEBUG("AP %d enabled", apsel);
3236 set_bit(apsel, opened_ap);
3237 return ERROR_OK;
3238 }
3239
3240 /** */
3241 static int stlink_dap_closeall_ap(void)
3242 {
3243 int retval, apsel;
3244
3245 /* nothing to do on old versions */
3246 if (!(stlink_dap_handle->version.flags & STLINK_F_HAS_AP_INIT))
3247 return ERROR_OK;
3248
3249 for (apsel = 0; apsel <= DP_APSEL_MAX; apsel++) {
3250 if (!test_bit(apsel, opened_ap))
3251 continue;
3252 retval = stlink_usb_close_access_port(stlink_dap_handle, apsel);
3253 if (retval != ERROR_OK)
3254 return retval;
3255 clear_bit(apsel, opened_ap);
3256 }
3257 return ERROR_OK;
3258 }
3259
3260 /** */
3261 static int stlink_dap_reinit_interface(void)
3262 {
3263 int retval;
3264 enum stlink_mode mode;
3265
3266 /*
3267 * On JTAG only, it should be enough to call stlink_usb_reset(). But on
3268 * some firmware version it does not work as expected, and there is no
3269 * equivalent for SWD.
3270 * At least for now, to reset the interface quit from JTAG/SWD mode then
3271 * select the mode again.
3272 */
3273
3274 mode = stlink_get_mode(stlink_dap_param.transport);
3275 if (!stlink_dap_handle->reconnect_pending) {
3276 stlink_dap_handle->reconnect_pending = true;
3277 stlink_usb_mode_leave(stlink_dap_handle, mode);
3278 }
3279
3280 retval = stlink_usb_mode_enter(stlink_dap_handle, mode);
3281 if (retval != ERROR_OK)
3282 return retval;
3283
3284 stlink_dap_handle->reconnect_pending = false;
3285 /* on new FW, calling mode-leave closes all the opened AP; reopen them! */
3286 if (stlink_dap_handle->version.flags & STLINK_F_HAS_AP_INIT)
3287 for (int apsel = 0; apsel <= DP_APSEL_MAX; apsel++)
3288 if (test_bit(apsel, opened_ap)) {
3289 clear_bit(apsel, opened_ap);
3290 stlink_dap_open_ap(apsel);
3291 }
3292 return ERROR_OK;
3293 }
3294
3295 /** */
3296 static int stlink_dap_op_connect(struct adiv5_dap *dap)
3297 {
3298 uint32_t idcode;
3299 int retval;
3300
3301 LOG_INFO("stlink_dap_op_connect(%sconnect)", dap->do_reconnect ? "re" : "");
3302
3303 /* Check if we should reset srst already when connecting, but not if reconnecting. */
3304 if (!dap->do_reconnect) {
3305 enum reset_types jtag_reset_config = jtag_get_reset_config();
3306
3307 if (jtag_reset_config & RESET_CNCT_UNDER_SRST) {
3308 if (jtag_reset_config & RESET_SRST_NO_GATING)
3309 adapter_assert_reset();
3310 else
3311 LOG_WARNING("\'srst_nogate\' reset_config option is required");
3312 }
3313 }
3314
3315 dap->do_reconnect = false;
3316 dap_invalidate_cache(dap);
3317
3318 retval = dap_dp_init(dap);
3319 if (retval != ERROR_OK) {
3320 dap->do_reconnect = true;
3321 return retval;
3322 }
3323
3324 retval = stlink_usb_idcode(stlink_dap_handle, &idcode);
3325 if (retval == ERROR_OK)
3326 LOG_INFO("%s %#8.8" PRIx32,
3327 (stlink_dap_handle->transport == HL_TRANSPORT_JTAG) ? "JTAG IDCODE" : "SWD DPIDR",
3328 idcode);
3329 else
3330 dap->do_reconnect = true;
3331
3332 return retval;
3333 }
3334
3335 /** */
3336 static int stlink_dap_check_reconnect(struct adiv5_dap *dap)
3337 {
3338 int retval;
3339
3340 if (!dap->do_reconnect)
3341 return ERROR_OK;
3342
3343 retval = stlink_dap_reinit_interface();
3344 if (retval != ERROR_OK)
3345 return retval;
3346
3347 return stlink_dap_op_connect(dap);
3348 }
3349
3350 /** */
3351 static int stlink_dap_op_send_sequence(struct adiv5_dap *dap, enum swd_special_seq seq)
3352 {
3353 /* Ignore the request */
3354 return ERROR_OK;
3355 }
3356
3357 /** */
3358 static int stlink_dap_op_queue_dp_read(struct adiv5_dap *dap, unsigned reg,
3359 uint32_t *data)
3360 {
3361 uint32_t dummy;
3362 int retval;
3363
3364 if (!(stlink_dap_handle->version.flags & STLINK_F_HAS_DPBANKSEL))
3365 if (reg & 0x000000F0) {
3366 LOG_ERROR("Banked DP registers not supported in current STLink FW");
3367 return ERROR_COMMAND_NOTFOUND;
3368 }
3369
3370 retval = stlink_dap_check_reconnect(dap);
3371 if (retval != ERROR_OK)
3372 return retval;
3373
3374 data = data ? : &dummy;
3375 if (stlink_dap_handle->version.flags & STLINK_F_QUIRK_JTAG_DP_READ
3376 && stlink_dap_handle->transport == HL_TRANSPORT_JTAG) {
3377 /* Quirk required in JTAG. Read RDBUFF to get the data */
3378 retval = stlink_read_dap_register(stlink_dap_handle,
3379 STLINK_DEBUG_PORT_ACCESS, reg, &dummy);
3380 if (retval == ERROR_OK)
3381 retval = stlink_read_dap_register(stlink_dap_handle,
3382 STLINK_DEBUG_PORT_ACCESS, DP_RDBUFF, data);
3383 } else {
3384 retval = stlink_read_dap_register(stlink_dap_handle,
3385 STLINK_DEBUG_PORT_ACCESS, reg, data);
3386 }
3387
3388 return stlink_dap_record_error(retval);
3389 }
3390
3391 /** */
3392 static int stlink_dap_op_queue_dp_write(struct adiv5_dap *dap, unsigned reg,
3393 uint32_t data)
3394 {
3395 int retval;
3396
3397 if (!(stlink_dap_handle->version.flags & STLINK_F_HAS_DPBANKSEL))
3398 if (reg & 0x000000F0) {
3399 LOG_ERROR("Banked DP registers not supported in current STLink FW");
3400 return ERROR_COMMAND_NOTFOUND;
3401 }
3402
3403 if (reg == DP_SELECT && (data & DP_SELECT_DPBANK) != 0) {
3404 /* ignored if STLINK_F_HAS_DPBANKSEL, not properly managed otherwise */
3405 LOG_DEBUG("Ignoring DPBANKSEL while write SELECT");
3406 data &= ~DP_SELECT_DPBANK;
3407 }
3408
3409 retval = stlink_dap_check_reconnect(dap);
3410 if (retval != ERROR_OK)
3411 return retval;
3412
3413 /* ST-Link does not like that we set CORUNDETECT */
3414 if (reg == DP_CTRL_STAT)
3415 data &= ~CORUNDETECT;
3416
3417 retval = stlink_write_dap_register(stlink_dap_handle,
3418 STLINK_DEBUG_PORT_ACCESS, reg, data);
3419 return stlink_dap_record_error(retval);
3420 }
3421
3422 /** */
3423 static int stlink_dap_op_queue_ap_read(struct adiv5_ap *ap, unsigned reg,
3424 uint32_t *data)
3425 {
3426 struct adiv5_dap *dap = ap->dap;
3427 uint32_t dummy;
3428 int retval;
3429
3430 retval = stlink_dap_check_reconnect(dap);
3431 if (retval != ERROR_OK)
3432 return retval;
3433
3434 if (reg != AP_REG_IDR) {
3435 retval = stlink_dap_open_ap(ap->ap_num);
3436 if (retval != ERROR_OK)
3437 return retval;
3438 }
3439 data = data ? : &dummy;
3440 retval = stlink_read_dap_register(stlink_dap_handle, ap->ap_num, reg,
3441 data);
3442 dap->stlink_flush_ap_write = false;
3443 return stlink_dap_record_error(retval);
3444 }
3445
3446 /** */
3447 static int stlink_dap_op_queue_ap_write(struct adiv5_ap *ap, unsigned reg,
3448 uint32_t data)
3449 {
3450 struct adiv5_dap *dap = ap->dap;
3451 int retval;
3452
3453 retval = stlink_dap_check_reconnect(dap);
3454 if (retval != ERROR_OK)
3455 return retval;
3456
3457 retval = stlink_dap_open_ap(ap->ap_num);
3458 if (retval != ERROR_OK)
3459 return retval;
3460
3461 retval = stlink_write_dap_register(stlink_dap_handle, ap->ap_num, reg,
3462 data);
3463 dap->stlink_flush_ap_write = true;
3464 return stlink_dap_record_error(retval);
3465 }
3466
3467 /** */
3468 static int stlink_dap_op_queue_ap_abort(struct adiv5_dap *dap, uint8_t *ack)
3469 {
3470 LOG_WARNING("stlink_dap_op_queue_ap_abort()");
3471 return ERROR_OK;
3472 }
3473
3474 /** */
3475 static int stlink_dap_op_run(struct adiv5_dap *dap)
3476 {
3477 uint32_t ctrlstat, pwrmask;
3478 int retval, saved_retval;
3479
3480 /* Here no LOG_DEBUG. This is called continuously! */
3481
3482 /*
3483 * ST-Link returns immediately after a DAP write, without waiting for it
3484 * to complete.
3485 * Run a dummy read to DP_RDBUFF, as suggested in
3486 * http://infocenter.arm.com/help/topic/com.arm.doc.faqs/ka16363.html
3487 */
3488 if (dap->stlink_flush_ap_write) {
3489 dap->stlink_flush_ap_write = false;
3490 retval = stlink_dap_op_queue_dp_read(dap, DP_RDBUFF, NULL);
3491 if (retval != ERROR_OK) {
3492 dap->do_reconnect = true;
3493 return retval;
3494 }
3495 }
3496
3497 saved_retval = stlink_dap_get_and_clear_error();
3498
3499 retval = stlink_dap_op_queue_dp_read(dap, DP_CTRL_STAT, &ctrlstat);
3500 if (retval != ERROR_OK) {
3501 dap->do_reconnect = true;
3502 return retval;
3503 }
3504 retval = stlink_dap_get_and_clear_error();
3505 if (retval != ERROR_OK) {
3506 LOG_ERROR("Fail reading CTRL/STAT register. Force reconnect");
3507 dap->do_reconnect = true;
3508 return retval;
3509 }
3510
3511 if (ctrlstat & SSTICKYERR) {
3512 if (stlink_dap_param.transport == HL_TRANSPORT_JTAG)
3513 retval = stlink_dap_op_queue_dp_write(dap, DP_CTRL_STAT,
3514 ctrlstat & (dap->dp_ctrl_stat | SSTICKYERR));
3515 else
3516 retval = stlink_dap_op_queue_dp_write(dap, DP_ABORT, STKERRCLR);
3517 if (retval != ERROR_OK) {
3518 dap->do_reconnect = true;
3519 return retval;
3520 }
3521 retval = stlink_dap_get_and_clear_error();
3522 if (retval != ERROR_OK) {
3523 dap->do_reconnect = true;
3524 return retval;
3525 }
3526 }
3527
3528 /* check for power lost */
3529 pwrmask = dap->dp_ctrl_stat & (CDBGPWRUPREQ | CSYSPWRUPREQ);
3530 if ((ctrlstat & pwrmask) != pwrmask)
3531 dap->do_reconnect = true;
3532
3533 return saved_retval;
3534 }
3535
3536 /** */
3537 static void stlink_dap_op_quit(struct adiv5_dap *dap)
3538 {
3539 int retval;
3540
3541 retval = stlink_dap_closeall_ap();
3542 if (retval != ERROR_OK)
3543 LOG_ERROR("Error closing APs");
3544 }
3545
3546 static int stlink_dap_config_trace(bool enabled,
3547 enum tpiu_pin_protocol pin_protocol, uint32_t port_size,
3548 unsigned int *trace_freq, unsigned int traceclkin_freq,
3549 uint16_t *prescaler)
3550 {
3551 return stlink_config_trace(stlink_dap_handle, enabled, pin_protocol,
3552 port_size, trace_freq, traceclkin_freq,
3553 prescaler);
3554 }
3555
3556 static int stlink_dap_trace_read(uint8_t *buf, size_t *size)
3557 {
3558 return stlink_usb_trace_read(stlink_dap_handle, buf, size);
3559 }
3560
3561 /** */
3562 COMMAND_HANDLER(stlink_dap_serial_command)
3563 {
3564 LOG_DEBUG("stlink_dap_serial_command");
3565
3566 if (CMD_ARGC != 1) {
3567 LOG_ERROR("Expected exactly one argument for \"st-link serial <serial-number>\".");
3568 return ERROR_COMMAND_SYNTAX_ERROR;
3569 }
3570
3571 if (stlink_dap_param.serial) {
3572 LOG_WARNING("Command \"st-link serial\" already used. Replacing previous value");
3573 free((void *)stlink_dap_param.serial);
3574 }
3575
3576 stlink_dap_param.serial = strdup(CMD_ARGV[0]);
3577 return ERROR_OK;
3578 }
3579
3580 /** */
3581 COMMAND_HANDLER(stlink_dap_vid_pid)
3582 {
3583 unsigned int i, max_usb_ids = HLA_MAX_USB_IDS;
3584
3585 if (CMD_ARGC > max_usb_ids * 2) {
3586 LOG_WARNING("ignoring extra IDs in vid_pid "
3587 "(maximum is %d pairs)", max_usb_ids);
3588 CMD_ARGC = max_usb_ids * 2;
3589 }
3590 if (CMD_ARGC < 2 || (CMD_ARGC & 1)) {
3591 LOG_WARNING("incomplete vid_pid configuration directive");
3592 return ERROR_COMMAND_SYNTAX_ERROR;
3593 }
3594 for (i = 0; i < CMD_ARGC; i += 2) {
3595 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i], stlink_dap_param.vid[i / 2]);
3596 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], stlink_dap_param.pid[i / 2]);
3597 }
3598
3599 /* null termination */
3600 stlink_dap_param.vid[i / 2] = stlink_dap_param.pid[i / 2] = 0;
3601
3602 return ERROR_OK;
3603 }
3604
3605 /** */
3606 static const struct command_registration stlink_dap_subcommand_handlers[] = {
3607 {
3608 .name = "serial",
3609 .handler = stlink_dap_serial_command,
3610 .mode = COMMAND_CONFIG,
3611 .help = "set the serial number of the adapter",
3612 .usage = "<serial_number>",
3613 },
3614 {
3615 .name = "vid_pid",
3616 .handler = stlink_dap_vid_pid,
3617 .mode = COMMAND_CONFIG,
3618 .help = "USB VID and PID of the adapter",
3619 .usage = "(vid pid)+",
3620 },
3621 COMMAND_REGISTRATION_DONE
3622 };
3623
3624 /** */
3625 static const struct command_registration stlink_dap_command_handlers[] = {
3626 {
3627 .name = "st-link",
3628 .mode = COMMAND_ANY,
3629 .help = "perform st-link management",
3630 .chain = stlink_dap_subcommand_handlers,
3631 .usage = "",
3632 },
3633 COMMAND_REGISTRATION_DONE
3634 };
3635
3636 /** */
3637 static int stlink_dap_init(void)
3638 {
3639 enum reset_types jtag_reset_config = jtag_get_reset_config();
3640 int retval;
3641
3642 LOG_DEBUG("stlink_dap_init()");
3643
3644 if (jtag_reset_config & RESET_CNCT_UNDER_SRST) {
3645 if (jtag_reset_config & RESET_SRST_NO_GATING)
3646 stlink_dap_param.connect_under_reset = true;
3647 else
3648 LOG_WARNING("\'srst_nogate\' reset_config option is required");
3649 }
3650
3651 if (transport_is_dapdirect_swd())
3652 stlink_dap_param.transport = HL_TRANSPORT_SWD;
3653 else if (transport_is_dapdirect_jtag())
3654 stlink_dap_param.transport = HL_TRANSPORT_JTAG;
3655 else {
3656 LOG_ERROR("Unsupported transport");
3657 return ERROR_FAIL;
3658 }
3659
3660 retval = stlink_usb_open(&stlink_dap_param, (void **)&stlink_dap_handle);
3661 if (retval != ERROR_OK)
3662 return retval;
3663
3664 if (!(stlink_dap_handle->version.flags & STLINK_F_HAS_DAP_REG)) {
3665 LOG_ERROR("ST-Link version does not support DAP direct transport");
3666 return ERROR_FAIL;
3667 }
3668 return ERROR_OK;
3669 }
3670
3671 /** */
3672 static int stlink_dap_quit(void)
3673 {
3674 LOG_DEBUG("stlink_dap_quit()");
3675
3676 free((void *)stlink_dap_param.serial);
3677 stlink_dap_param.serial = NULL;
3678
3679 return stlink_usb_close(stlink_dap_handle);
3680 }
3681
3682 /** */
3683 static int stlink_dap_reset(int req_trst, int req_srst)
3684 {
3685 LOG_DEBUG("stlink_dap_reset(%d)", req_srst);
3686 return stlink_usb_assert_srst(stlink_dap_handle,
3687 req_srst ? STLINK_DEBUG_APIV2_DRIVE_NRST_LOW
3688 : STLINK_DEBUG_APIV2_DRIVE_NRST_HIGH);
3689 }
3690
3691 /** */
3692 static int stlink_dap_speed(int speed)
3693 {
3694 if (speed == 0) {
3695 LOG_ERROR("RTCK not supported. Set nonzero adapter_khz.");
3696 return ERROR_JTAG_NOT_IMPLEMENTED;
3697 }
3698
3699 stlink_dap_param.initial_interface_speed = speed;
3700 stlink_speed(stlink_dap_handle, speed, false);
3701 return ERROR_OK;
3702 }
3703
3704 /** */
3705 static int stlink_dap_khz(int khz, int *jtag_speed)
3706 {
3707 if (khz == 0) {
3708 LOG_ERROR("RCLK not supported");
3709 return ERROR_FAIL;
3710 }
3711
3712 *jtag_speed = stlink_speed(stlink_dap_handle, khz, true);
3713 return ERROR_OK;
3714 }
3715
3716 /** */
3717 static int stlink_dap_speed_div(int speed, int *khz)
3718 {
3719 *khz = speed;
3720 return ERROR_OK;
3721 }
3722
3723 static const struct dap_ops stlink_dap_ops = {
3724 .connect = stlink_dap_op_connect,
3725 .send_sequence = stlink_dap_op_send_sequence,
3726 .queue_dp_read = stlink_dap_op_queue_dp_read,
3727 .queue_dp_write = stlink_dap_op_queue_dp_write,
3728 .queue_ap_read = stlink_dap_op_queue_ap_read,
3729 .queue_ap_write = stlink_dap_op_queue_ap_write,
3730 .queue_ap_abort = stlink_dap_op_queue_ap_abort,
3731 .run = stlink_dap_op_run,
3732 .sync = NULL, /* optional */
3733 .quit = stlink_dap_op_quit, /* optional */
3734 };
3735
3736 static const char *const stlink_dap_transport[] = { "dapdirect_jtag", "dapdirect_swd", NULL };
3737
3738 struct adapter_driver stlink_dap_adapter_driver = {
3739 .name = "st-link",
3740 .transports = stlink_dap_transport,
3741 .commands = stlink_dap_command_handlers,
3742
3743 .init = stlink_dap_init,
3744 .quit = stlink_dap_quit,
3745 .reset = stlink_dap_reset,
3746 .speed = stlink_dap_speed,
3747 .khz = stlink_dap_khz,
3748 .speed_div = stlink_dap_speed_div,
3749 .config_trace = stlink_dap_config_trace,
3750 .poll_trace = stlink_dap_trace_read,
3751
3752 .dap_jtag_ops = &stlink_dap_ops,
3753 .dap_swd_ops = &stlink_dap_ops,
3754 };

Linking to existing account procedure

If you already have an account and want to add another login method you MUST first sign in with your existing account and then change URL to read https://review.openocd.org/login/?link to get to this page again but this time it'll work for linking. Thank you.

SSH host keys fingerprints

1024 SHA256:YKx8b7u5ZWdcbp7/4AeXNaqElP49m6QrwfXaqQGJAOk gerrit-code-review@openocd.zylin.com (DSA)
384 SHA256:jHIbSQa4REvwCFG4cq5LBlBLxmxSqelQPem/EXIrxjk gerrit-code-review@openocd.org (ECDSA)
521 SHA256:UAOPYkU9Fjtcao0Ul/Rrlnj/OsQvt+pgdYSZ4jOYdgs gerrit-code-review@openocd.org (ECDSA)
256 SHA256:A13M5QlnozFOvTllybRZH6vm7iSt0XLxbA48yfc2yfY gerrit-code-review@openocd.org (ECDSA)
256 SHA256:spYMBqEYoAOtK7yZBrcwE8ZpYt6b68Cfh9yEVetvbXg gerrit-code-review@openocd.org (ED25519)
+--[ED25519 256]--+
|=..              |
|+o..   .         |
|*.o   . .        |
|+B . . .         |
|Bo. = o S        |
|Oo.+ + =         |
|oB=.* = . o      |
| =+=.+   + E     |
|. .=o   . o      |
+----[SHA256]-----+
2048 SHA256:0Onrb7/PHjpo6iVZ7xQX2riKN83FJ3KGU0TvI0TaFG4 gerrit-code-review@openocd.zylin.com (RSA)