target, breakpoints: improve error handling
[openocd.git] / src / jtag / drivers / ftdi.c
1 /**************************************************************************
2 * Copyright (C) 2012 by Andreas Fritiofson *
3 * andreas.fritiofson@gmail.com *
4 * *
5 * This program is free software; you can redistribute it and/or modify *
6 * it under the terms of the GNU General Public License as published by *
7 * the Free Software Foundation; either version 2 of the License, or *
8 * (at your option) any later version. *
9 * *
10 * This program is distributed in the hope that it will be useful, *
11 * but WITHOUT ANY WARRANTY; without even the implied warranty of *
12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the *
13 * GNU General Public License for more details. *
14 * *
15 * You should have received a copy of the GNU General Public License *
16 * along with this program. If not, see <http://www.gnu.org/licenses/>. *
17 ***************************************************************************/
18
19 /**
20 * @file
21 * JTAG adapters based on the FT2232 full and high speed USB parts are
22 * popular low cost JTAG debug solutions. Many FT2232 based JTAG adapters
23 * are discrete, but development boards may integrate them as alternatives
24 * to more capable (and expensive) third party JTAG pods.
25 *
26 * JTAG uses only one of the two communications channels ("MPSSE engines")
27 * on these devices. Adapters based on FT4232 parts have four ports/channels
28 * (A/B/C/D), instead of just two (A/B).
29 *
30 * Especially on development boards integrating one of these chips (as
31 * opposed to discrete pods/dongles), the additional channels can be used
32 * for a variety of purposes, but OpenOCD only uses one channel at a time.
33 *
34 * - As a USB-to-serial adapter for the target's console UART ...
35 * which may be able to support ROM boot loaders that load initial
36 * firmware images to flash (or SRAM).
37 *
38 * - On systems which support ARM's SWD in addition to JTAG, or instead
39 * of it, that second port can be used for reading SWV/SWO trace data.
40 *
41 * - Additional JTAG links, e.g. to a CPLD or * FPGA.
42 *
43 * FT2232 based JTAG adapters are "dumb" not "smart", because most JTAG
44 * request/response interactions involve round trips over the USB link.
45 * A "smart" JTAG adapter has intelligence close to the scan chain, so it
46 * can for example poll quickly for a status change (usually taking on the
47 * order of microseconds not milliseconds) before beginning a queued
48 * transaction which require the previous one to have completed.
49 *
50 * There are dozens of adapters of this type, differing in details which
51 * this driver needs to understand. Those "layout" details are required
52 * as part of FT2232 driver configuration.
53 *
54 * This code uses information contained in the MPSSE specification which was
55 * found here:
56 * http://www.ftdichip.com/Documents/AppNotes/AN2232C-01_MPSSE_Cmnd.pdf
57 * Hereafter this is called the "MPSSE Spec".
58 *
59 * The datasheet for the ftdichip.com's FT2232D part is here:
60 * http://www.ftdichip.com/Documents/DataSheets/DS_FT2232D.pdf
61 *
62 * Also note the issue with code 0x4b (clock data to TMS) noted in
63 * http://developer.intra2net.com/mailarchive/html/libftdi/2009/msg00292.html
64 * which can affect longer JTAG state paths.
65 */
66
67 #ifdef HAVE_CONFIG_H
68 #include "config.h"
69 #endif
70
71 /* project specific includes */
72 #include <jtag/interface.h>
73 #include <jtag/swd.h>
74 #include <transport/transport.h>
75 #include <helper/time_support.h>
76
77 #if IS_CYGWIN == 1
78 #include <windows.h>
79 #endif
80
81 #include <assert.h>
82
83 /* FTDI access library includes */
84 #include "mpsse.h"
85
86 #define JTAG_MODE (LSB_FIRST | POS_EDGE_IN | NEG_EDGE_OUT)
87 #define JTAG_MODE_ALT (LSB_FIRST | NEG_EDGE_IN | NEG_EDGE_OUT)
88 #define SWD_MODE (LSB_FIRST | POS_EDGE_IN | NEG_EDGE_OUT)
89
90 static char *ftdi_device_desc;
91 static char *ftdi_serial;
92 static char *ftdi_location;
93 static uint8_t ftdi_channel;
94 static uint8_t ftdi_jtag_mode = JTAG_MODE;
95
96 static bool swd_mode;
97
98 #define MAX_USB_IDS 8
99 /* vid = pid = 0 marks the end of the list */
100 static uint16_t ftdi_vid[MAX_USB_IDS + 1] = { 0 };
101 static uint16_t ftdi_pid[MAX_USB_IDS + 1] = { 0 };
102
103 static struct mpsse_ctx *mpsse_ctx;
104
105 struct signal {
106 const char *name;
107 uint16_t data_mask;
108 uint16_t input_mask;
109 uint16_t oe_mask;
110 bool invert_data;
111 bool invert_input;
112 bool invert_oe;
113 struct signal *next;
114 };
115
116 static struct signal *signals;
117
118 /* FIXME: Where to store per-instance data? We need an SWD context. */
119 static struct swd_cmd_queue_entry {
120 uint8_t cmd;
121 uint32_t *dst;
122 uint8_t trn_ack_data_parity_trn[DIV_ROUND_UP(4 + 3 + 32 + 1 + 4, 8)];
123 } *swd_cmd_queue;
124 static size_t swd_cmd_queue_length;
125 static size_t swd_cmd_queue_alloced;
126 static int queued_retval;
127 static int freq;
128
129 static uint16_t output;
130 static uint16_t direction;
131 static uint16_t jtag_output_init;
132 static uint16_t jtag_direction_init;
133
134 static int ftdi_swd_switch_seq(enum swd_special_seq seq);
135
136 static struct signal *find_signal_by_name(const char *name)
137 {
138 for (struct signal *sig = signals; sig; sig = sig->next) {
139 if (strcmp(name, sig->name) == 0)
140 return sig;
141 }
142 return NULL;
143 }
144
145 static struct signal *create_signal(const char *name)
146 {
147 struct signal **psig = &signals;
148 while (*psig)
149 psig = &(*psig)->next;
150
151 *psig = calloc(1, sizeof(**psig));
152 if (*psig == NULL)
153 return NULL;
154
155 (*psig)->name = strdup(name);
156 if ((*psig)->name == NULL) {
157 free(*psig);
158 *psig = NULL;
159 }
160 return *psig;
161 }
162
163 static int ftdi_set_signal(const struct signal *s, char value)
164 {
165 bool data;
166 bool oe;
167
168 if (s->data_mask == 0 && s->oe_mask == 0) {
169 LOG_ERROR("interface doesn't provide signal '%s'", s->name);
170 return ERROR_FAIL;
171 }
172 switch (value) {
173 case '0':
174 data = s->invert_data;
175 oe = !s->invert_oe;
176 break;
177 case '1':
178 if (s->data_mask == 0) {
179 LOG_ERROR("interface can't drive '%s' high", s->name);
180 return ERROR_FAIL;
181 }
182 data = !s->invert_data;
183 oe = !s->invert_oe;
184 break;
185 case 'z':
186 case 'Z':
187 if (s->oe_mask == 0) {
188 LOG_ERROR("interface can't tri-state '%s'", s->name);
189 return ERROR_FAIL;
190 }
191 data = s->invert_data;
192 oe = s->invert_oe;
193 break;
194 default:
195 assert(0 && "invalid signal level specifier");
196 return ERROR_FAIL;
197 }
198
199 uint16_t old_output = output;
200 uint16_t old_direction = direction;
201
202 output = data ? output | s->data_mask : output & ~s->data_mask;
203 if (s->oe_mask == s->data_mask)
204 direction = oe ? direction | s->oe_mask : direction & ~s->oe_mask;
205 else
206 output = oe ? output | s->oe_mask : output & ~s->oe_mask;
207
208 if ((output & 0xff) != (old_output & 0xff) || (direction & 0xff) != (old_direction & 0xff))
209 mpsse_set_data_bits_low_byte(mpsse_ctx, output & 0xff, direction & 0xff);
210 if ((output >> 8 != old_output >> 8) || (direction >> 8 != old_direction >> 8))
211 mpsse_set_data_bits_high_byte(mpsse_ctx, output >> 8, direction >> 8);
212
213 return ERROR_OK;
214 }
215
216 static int ftdi_get_signal(const struct signal *s, uint16_t * value_out)
217 {
218 uint8_t data_low = 0;
219 uint8_t data_high = 0;
220
221 if (s->input_mask == 0) {
222 LOG_ERROR("interface doesn't provide signal '%s'", s->name);
223 return ERROR_FAIL;
224 }
225
226 if (s->input_mask & 0xff)
227 mpsse_read_data_bits_low_byte(mpsse_ctx, &data_low);
228 if (s->input_mask >> 8)
229 mpsse_read_data_bits_high_byte(mpsse_ctx, &data_high);
230
231 mpsse_flush(mpsse_ctx);
232
233 *value_out = (((uint16_t)data_high) << 8) | data_low;
234
235 if (s->invert_input)
236 *value_out = ~(*value_out);
237
238 *value_out &= s->input_mask;
239
240 return ERROR_OK;
241 }
242
243 /**
244 * Function move_to_state
245 * moves the TAP controller from the current state to a
246 * \a goal_state through a path given by tap_get_tms_path(). State transition
247 * logging is performed by delegation to clock_tms().
248 *
249 * @param goal_state is the destination state for the move.
250 */
251 static void move_to_state(tap_state_t goal_state)
252 {
253 tap_state_t start_state = tap_get_state();
254
255 /* goal_state is 1/2 of a tuple/pair of states which allow convenient
256 lookup of the required TMS pattern to move to this state from the
257 start state.
258 */
259
260 /* do the 2 lookups */
261 uint8_t tms_bits = tap_get_tms_path(start_state, goal_state);
262 int tms_count = tap_get_tms_path_len(start_state, goal_state);
263 assert(tms_count <= 8);
264
265 DEBUG_JTAG_IO("start=%s goal=%s", tap_state_name(start_state), tap_state_name(goal_state));
266
267 /* Track state transitions step by step */
268 for (int i = 0; i < tms_count; i++)
269 tap_set_state(tap_state_transition(tap_get_state(), (tms_bits >> i) & 1));
270
271 mpsse_clock_tms_cs_out(mpsse_ctx,
272 &tms_bits,
273 0,
274 tms_count,
275 false,
276 ftdi_jtag_mode);
277 }
278
279 static int ftdi_speed(int speed)
280 {
281 int retval;
282 retval = mpsse_set_frequency(mpsse_ctx, speed);
283
284 if (retval < 0) {
285 LOG_ERROR("couldn't set FTDI TCK speed");
286 return retval;
287 }
288
289 if (!swd_mode && speed >= 10000000 && ftdi_jtag_mode != JTAG_MODE_ALT)
290 LOG_INFO("ftdi: if you experience problems at higher adapter clocks, try "
291 "the command \"ftdi_tdo_sample_edge falling\"");
292 return ERROR_OK;
293 }
294
295 static int ftdi_speed_div(int speed, int *khz)
296 {
297 *khz = speed / 1000;
298 return ERROR_OK;
299 }
300
301 static int ftdi_khz(int khz, int *jtag_speed)
302 {
303 if (khz == 0 && !mpsse_is_high_speed(mpsse_ctx)) {
304 LOG_DEBUG("RCLK not supported");
305 return ERROR_FAIL;
306 }
307
308 *jtag_speed = khz * 1000;
309 return ERROR_OK;
310 }
311
312 static void ftdi_end_state(tap_state_t state)
313 {
314 if (tap_is_state_stable(state))
315 tap_set_end_state(state);
316 else {
317 LOG_ERROR("BUG: %s is not a stable end state", tap_state_name(state));
318 exit(-1);
319 }
320 }
321
322 static void ftdi_execute_runtest(struct jtag_command *cmd)
323 {
324 int i;
325 uint8_t zero = 0;
326
327 DEBUG_JTAG_IO("runtest %i cycles, end in %s",
328 cmd->cmd.runtest->num_cycles,
329 tap_state_name(cmd->cmd.runtest->end_state));
330
331 if (tap_get_state() != TAP_IDLE)
332 move_to_state(TAP_IDLE);
333
334 /* TODO: Reuse ftdi_execute_stableclocks */
335 i = cmd->cmd.runtest->num_cycles;
336 while (i > 0) {
337 /* there are no state transitions in this code, so omit state tracking */
338 unsigned this_len = i > 7 ? 7 : i;
339 mpsse_clock_tms_cs_out(mpsse_ctx, &zero, 0, this_len, false, ftdi_jtag_mode);
340 i -= this_len;
341 }
342
343 ftdi_end_state(cmd->cmd.runtest->end_state);
344
345 if (tap_get_state() != tap_get_end_state())
346 move_to_state(tap_get_end_state());
347
348 DEBUG_JTAG_IO("runtest: %i, end in %s",
349 cmd->cmd.runtest->num_cycles,
350 tap_state_name(tap_get_end_state()));
351 }
352
353 static void ftdi_execute_statemove(struct jtag_command *cmd)
354 {
355 DEBUG_JTAG_IO("statemove end in %s",
356 tap_state_name(cmd->cmd.statemove->end_state));
357
358 ftdi_end_state(cmd->cmd.statemove->end_state);
359
360 /* shortest-path move to desired end state */
361 if (tap_get_state() != tap_get_end_state() || tap_get_end_state() == TAP_RESET)
362 move_to_state(tap_get_end_state());
363 }
364
365 /**
366 * Clock a bunch of TMS (or SWDIO) transitions, to change the JTAG
367 * (or SWD) state machine. REVISIT: Not the best method, perhaps.
368 */
369 static void ftdi_execute_tms(struct jtag_command *cmd)
370 {
371 DEBUG_JTAG_IO("TMS: %d bits", cmd->cmd.tms->num_bits);
372
373 /* TODO: Missing tap state tracking, also missing from ft2232.c! */
374 mpsse_clock_tms_cs_out(mpsse_ctx,
375 cmd->cmd.tms->bits,
376 0,
377 cmd->cmd.tms->num_bits,
378 false,
379 ftdi_jtag_mode);
380 }
381
382 static void ftdi_execute_pathmove(struct jtag_command *cmd)
383 {
384 tap_state_t *path = cmd->cmd.pathmove->path;
385 int num_states = cmd->cmd.pathmove->num_states;
386
387 DEBUG_JTAG_IO("pathmove: %i states, current: %s end: %s", num_states,
388 tap_state_name(tap_get_state()),
389 tap_state_name(path[num_states-1]));
390
391 int state_count = 0;
392 unsigned bit_count = 0;
393 uint8_t tms_byte = 0;
394
395 DEBUG_JTAG_IO("-");
396
397 /* this loop verifies that the path is legal and logs each state in the path */
398 while (num_states--) {
399
400 /* either TMS=0 or TMS=1 must work ... */
401 if (tap_state_transition(tap_get_state(), false)
402 == path[state_count])
403 buf_set_u32(&tms_byte, bit_count++, 1, 0x0);
404 else if (tap_state_transition(tap_get_state(), true)
405 == path[state_count]) {
406 buf_set_u32(&tms_byte, bit_count++, 1, 0x1);
407
408 /* ... or else the caller goofed BADLY */
409 } else {
410 LOG_ERROR("BUG: %s -> %s isn't a valid "
411 "TAP state transition",
412 tap_state_name(tap_get_state()),
413 tap_state_name(path[state_count]));
414 exit(-1);
415 }
416
417 tap_set_state(path[state_count]);
418 state_count++;
419
420 if (bit_count == 7 || num_states == 0) {
421 mpsse_clock_tms_cs_out(mpsse_ctx,
422 &tms_byte,
423 0,
424 bit_count,
425 false,
426 ftdi_jtag_mode);
427 bit_count = 0;
428 }
429 }
430 tap_set_end_state(tap_get_state());
431 }
432
433 static void ftdi_execute_scan(struct jtag_command *cmd)
434 {
435 DEBUG_JTAG_IO("%s type:%d", cmd->cmd.scan->ir_scan ? "IRSCAN" : "DRSCAN",
436 jtag_scan_type(cmd->cmd.scan));
437
438 /* Make sure there are no trailing fields with num_bits == 0, or the logic below will fail. */
439 while (cmd->cmd.scan->num_fields > 0
440 && cmd->cmd.scan->fields[cmd->cmd.scan->num_fields - 1].num_bits == 0) {
441 cmd->cmd.scan->num_fields--;
442 DEBUG_JTAG_IO("discarding trailing empty field");
443 }
444
445 if (cmd->cmd.scan->num_fields == 0) {
446 DEBUG_JTAG_IO("empty scan, doing nothing");
447 return;
448 }
449
450 if (cmd->cmd.scan->ir_scan) {
451 if (tap_get_state() != TAP_IRSHIFT)
452 move_to_state(TAP_IRSHIFT);
453 } else {
454 if (tap_get_state() != TAP_DRSHIFT)
455 move_to_state(TAP_DRSHIFT);
456 }
457
458 ftdi_end_state(cmd->cmd.scan->end_state);
459
460 struct scan_field *field = cmd->cmd.scan->fields;
461 unsigned scan_size = 0;
462
463 for (int i = 0; i < cmd->cmd.scan->num_fields; i++, field++) {
464 scan_size += field->num_bits;
465 DEBUG_JTAG_IO("%s%s field %d/%d %d bits",
466 field->in_value ? "in" : "",
467 field->out_value ? "out" : "",
468 i,
469 cmd->cmd.scan->num_fields,
470 field->num_bits);
471
472 if (i == cmd->cmd.scan->num_fields - 1 && tap_get_state() != tap_get_end_state()) {
473 /* Last field, and we're leaving IRSHIFT/DRSHIFT. Clock last bit during tap
474 * movement. This last field can't have length zero, it was checked above. */
475 mpsse_clock_data(mpsse_ctx,
476 field->out_value,
477 0,
478 field->in_value,
479 0,
480 field->num_bits - 1,
481 ftdi_jtag_mode);
482 uint8_t last_bit = 0;
483 if (field->out_value)
484 bit_copy(&last_bit, 0, field->out_value, field->num_bits - 1, 1);
485 uint8_t tms_bits = 0x01;
486 mpsse_clock_tms_cs(mpsse_ctx,
487 &tms_bits,
488 0,
489 field->in_value,
490 field->num_bits - 1,
491 1,
492 last_bit,
493 ftdi_jtag_mode);
494 tap_set_state(tap_state_transition(tap_get_state(), 1));
495 mpsse_clock_tms_cs_out(mpsse_ctx,
496 &tms_bits,
497 1,
498 1,
499 last_bit,
500 ftdi_jtag_mode);
501 tap_set_state(tap_state_transition(tap_get_state(), 0));
502 } else
503 mpsse_clock_data(mpsse_ctx,
504 field->out_value,
505 0,
506 field->in_value,
507 0,
508 field->num_bits,
509 ftdi_jtag_mode);
510 }
511
512 if (tap_get_state() != tap_get_end_state())
513 move_to_state(tap_get_end_state());
514
515 DEBUG_JTAG_IO("%s scan, %i bits, end in %s",
516 (cmd->cmd.scan->ir_scan) ? "IR" : "DR", scan_size,
517 tap_state_name(tap_get_end_state()));
518 }
519
520 static void ftdi_execute_reset(struct jtag_command *cmd)
521 {
522 DEBUG_JTAG_IO("reset trst: %i srst %i",
523 cmd->cmd.reset->trst, cmd->cmd.reset->srst);
524
525 if (cmd->cmd.reset->trst == 1
526 || (cmd->cmd.reset->srst
527 && (jtag_get_reset_config() & RESET_SRST_PULLS_TRST)))
528 tap_set_state(TAP_RESET);
529
530 struct signal *trst = find_signal_by_name("nTRST");
531 if (cmd->cmd.reset->trst == 1) {
532 if (trst)
533 ftdi_set_signal(trst, '0');
534 else
535 LOG_ERROR("Can't assert TRST: nTRST signal is not defined");
536 } else if (trst && jtag_get_reset_config() & RESET_HAS_TRST &&
537 cmd->cmd.reset->trst == 0) {
538 if (jtag_get_reset_config() & RESET_TRST_OPEN_DRAIN)
539 ftdi_set_signal(trst, 'z');
540 else
541 ftdi_set_signal(trst, '1');
542 }
543
544 struct signal *srst = find_signal_by_name("nSRST");
545 if (cmd->cmd.reset->srst == 1) {
546 if (srst)
547 ftdi_set_signal(srst, '0');
548 else
549 LOG_ERROR("Can't assert SRST: nSRST signal is not defined");
550 } else if (srst && jtag_get_reset_config() & RESET_HAS_SRST &&
551 cmd->cmd.reset->srst == 0) {
552 if (jtag_get_reset_config() & RESET_SRST_PUSH_PULL)
553 ftdi_set_signal(srst, '1');
554 else
555 ftdi_set_signal(srst, 'z');
556 }
557
558 DEBUG_JTAG_IO("trst: %i, srst: %i",
559 cmd->cmd.reset->trst, cmd->cmd.reset->srst);
560 }
561
562 static void ftdi_execute_sleep(struct jtag_command *cmd)
563 {
564 DEBUG_JTAG_IO("sleep %" PRIi32, cmd->cmd.sleep->us);
565
566 mpsse_flush(mpsse_ctx);
567 jtag_sleep(cmd->cmd.sleep->us);
568 DEBUG_JTAG_IO("sleep %" PRIi32 " usec while in %s",
569 cmd->cmd.sleep->us,
570 tap_state_name(tap_get_state()));
571 }
572
573 static void ftdi_execute_stableclocks(struct jtag_command *cmd)
574 {
575 /* this is only allowed while in a stable state. A check for a stable
576 * state was done in jtag_add_clocks()
577 */
578 int num_cycles = cmd->cmd.stableclocks->num_cycles;
579
580 /* 7 bits of either ones or zeros. */
581 uint8_t tms = tap_get_state() == TAP_RESET ? 0x7f : 0x00;
582
583 /* TODO: Use mpsse_clock_data with in=out=0 for this, if TMS can be set to
584 * the correct level and remain there during the scan */
585 while (num_cycles > 0) {
586 /* there are no state transitions in this code, so omit state tracking */
587 unsigned this_len = num_cycles > 7 ? 7 : num_cycles;
588 mpsse_clock_tms_cs_out(mpsse_ctx, &tms, 0, this_len, false, ftdi_jtag_mode);
589 num_cycles -= this_len;
590 }
591
592 DEBUG_JTAG_IO("clocks %i while in %s",
593 cmd->cmd.stableclocks->num_cycles,
594 tap_state_name(tap_get_state()));
595 }
596
597 static void ftdi_execute_command(struct jtag_command *cmd)
598 {
599 switch (cmd->type) {
600 case JTAG_RESET:
601 ftdi_execute_reset(cmd);
602 break;
603 case JTAG_RUNTEST:
604 ftdi_execute_runtest(cmd);
605 break;
606 case JTAG_TLR_RESET:
607 ftdi_execute_statemove(cmd);
608 break;
609 case JTAG_PATHMOVE:
610 ftdi_execute_pathmove(cmd);
611 break;
612 case JTAG_SCAN:
613 ftdi_execute_scan(cmd);
614 break;
615 case JTAG_SLEEP:
616 ftdi_execute_sleep(cmd);
617 break;
618 case JTAG_STABLECLOCKS:
619 ftdi_execute_stableclocks(cmd);
620 break;
621 case JTAG_TMS:
622 ftdi_execute_tms(cmd);
623 break;
624 default:
625 LOG_ERROR("BUG: unknown JTAG command type encountered: %d", cmd->type);
626 break;
627 }
628 }
629
630 static int ftdi_execute_queue(void)
631 {
632 /* blink, if the current layout has that feature */
633 struct signal *led = find_signal_by_name("LED");
634 if (led)
635 ftdi_set_signal(led, '1');
636
637 for (struct jtag_command *cmd = jtag_command_queue; cmd; cmd = cmd->next) {
638 /* fill the write buffer with the desired command */
639 ftdi_execute_command(cmd);
640 }
641
642 if (led)
643 ftdi_set_signal(led, '0');
644
645 int retval = mpsse_flush(mpsse_ctx);
646 if (retval != ERROR_OK)
647 LOG_ERROR("error while flushing MPSSE queue: %d", retval);
648
649 return retval;
650 }
651
652 static int ftdi_initialize(void)
653 {
654 if (tap_get_tms_path_len(TAP_IRPAUSE, TAP_IRPAUSE) == 7)
655 LOG_DEBUG("ftdi interface using 7 step jtag state transitions");
656 else
657 LOG_DEBUG("ftdi interface using shortest path jtag state transitions");
658
659 for (int i = 0; ftdi_vid[i] || ftdi_pid[i]; i++) {
660 mpsse_ctx = mpsse_open(&ftdi_vid[i], &ftdi_pid[i], ftdi_device_desc,
661 ftdi_serial, ftdi_location, ftdi_channel);
662 if (mpsse_ctx)
663 break;
664 }
665
666 if (!mpsse_ctx)
667 return ERROR_JTAG_INIT_FAILED;
668
669 output = jtag_output_init;
670 direction = jtag_direction_init;
671
672 if (swd_mode) {
673 struct signal *sig = find_signal_by_name("SWD_EN");
674 if (!sig) {
675 LOG_ERROR("SWD mode is active but SWD_EN signal is not defined");
676 return ERROR_JTAG_INIT_FAILED;
677 }
678 /* A dummy SWD_EN would have zero mask */
679 if (sig->data_mask)
680 ftdi_set_signal(sig, '1');
681 }
682
683 mpsse_set_data_bits_low_byte(mpsse_ctx, output & 0xff, direction & 0xff);
684 mpsse_set_data_bits_high_byte(mpsse_ctx, output >> 8, direction >> 8);
685
686 mpsse_loopback_config(mpsse_ctx, false);
687
688 freq = mpsse_set_frequency(mpsse_ctx, jtag_get_speed_khz() * 1000);
689
690 return mpsse_flush(mpsse_ctx);
691 }
692
693 static int ftdi_quit(void)
694 {
695 mpsse_close(mpsse_ctx);
696
697 struct signal *sig = signals;
698 while (sig) {
699 struct signal *next = sig->next;
700 free((void *)sig->name);
701 free(sig);
702 sig = next;
703 }
704
705 free(ftdi_device_desc);
706 free(ftdi_serial);
707 free(ftdi_location);
708
709 free(swd_cmd_queue);
710
711 return ERROR_OK;
712 }
713
714 COMMAND_HANDLER(ftdi_handle_device_desc_command)
715 {
716 if (CMD_ARGC == 1) {
717 if (ftdi_device_desc)
718 free(ftdi_device_desc);
719 ftdi_device_desc = strdup(CMD_ARGV[0]);
720 } else {
721 LOG_ERROR("expected exactly one argument to ftdi_device_desc <description>");
722 }
723
724 return ERROR_OK;
725 }
726
727 COMMAND_HANDLER(ftdi_handle_serial_command)
728 {
729 if (CMD_ARGC == 1) {
730 if (ftdi_serial)
731 free(ftdi_serial);
732 ftdi_serial = strdup(CMD_ARGV[0]);
733 } else {
734 return ERROR_COMMAND_SYNTAX_ERROR;
735 }
736
737 return ERROR_OK;
738 }
739
740 #ifdef HAVE_LIBUSB_GET_PORT_NUMBERS
741 COMMAND_HANDLER(ftdi_handle_location_command)
742 {
743 if (CMD_ARGC == 1) {
744 if (ftdi_location)
745 free(ftdi_location);
746 ftdi_location = strdup(CMD_ARGV[0]);
747 } else {
748 return ERROR_COMMAND_SYNTAX_ERROR;
749 }
750
751 return ERROR_OK;
752 }
753 #endif
754
755 COMMAND_HANDLER(ftdi_handle_channel_command)
756 {
757 if (CMD_ARGC == 1)
758 COMMAND_PARSE_NUMBER(u8, CMD_ARGV[0], ftdi_channel);
759 else
760 return ERROR_COMMAND_SYNTAX_ERROR;
761
762 return ERROR_OK;
763 }
764
765 COMMAND_HANDLER(ftdi_handle_layout_init_command)
766 {
767 if (CMD_ARGC != 2)
768 return ERROR_COMMAND_SYNTAX_ERROR;
769
770 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[0], jtag_output_init);
771 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[1], jtag_direction_init);
772
773 return ERROR_OK;
774 }
775
776 COMMAND_HANDLER(ftdi_handle_layout_signal_command)
777 {
778 if (CMD_ARGC < 1)
779 return ERROR_COMMAND_SYNTAX_ERROR;
780
781 bool invert_data = false;
782 uint16_t data_mask = 0;
783 bool invert_input = false;
784 uint16_t input_mask = 0;
785 bool invert_oe = false;
786 uint16_t oe_mask = 0;
787 for (unsigned i = 1; i < CMD_ARGC; i += 2) {
788 if (strcmp("-data", CMD_ARGV[i]) == 0) {
789 invert_data = false;
790 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], data_mask);
791 } else if (strcmp("-ndata", CMD_ARGV[i]) == 0) {
792 invert_data = true;
793 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], data_mask);
794 } else if (strcmp("-input", CMD_ARGV[i]) == 0) {
795 invert_input = false;
796 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], input_mask);
797 } else if (strcmp("-ninput", CMD_ARGV[i]) == 0) {
798 invert_input = true;
799 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], input_mask);
800 } else if (strcmp("-oe", CMD_ARGV[i]) == 0) {
801 invert_oe = false;
802 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], oe_mask);
803 } else if (strcmp("-noe", CMD_ARGV[i]) == 0) {
804 invert_oe = true;
805 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], oe_mask);
806 } else if (!strcmp("-alias", CMD_ARGV[i]) ||
807 !strcmp("-nalias", CMD_ARGV[i])) {
808 if (!strcmp("-nalias", CMD_ARGV[i])) {
809 invert_data = true;
810 invert_input = true;
811 }
812 struct signal *sig = find_signal_by_name(CMD_ARGV[i + 1]);
813 if (!sig) {
814 LOG_ERROR("signal %s is not defined", CMD_ARGV[i + 1]);
815 return ERROR_FAIL;
816 }
817 data_mask = sig->data_mask;
818 input_mask = sig->input_mask;
819 oe_mask = sig->oe_mask;
820 invert_input ^= sig->invert_input;
821 invert_oe = sig->invert_oe;
822 invert_data ^= sig->invert_data;
823 } else {
824 LOG_ERROR("unknown option '%s'", CMD_ARGV[i]);
825 return ERROR_COMMAND_SYNTAX_ERROR;
826 }
827 }
828
829 struct signal *sig;
830 sig = find_signal_by_name(CMD_ARGV[0]);
831 if (!sig)
832 sig = create_signal(CMD_ARGV[0]);
833 if (!sig) {
834 LOG_ERROR("failed to create signal %s", CMD_ARGV[0]);
835 return ERROR_FAIL;
836 }
837
838 sig->invert_data = invert_data;
839 sig->data_mask = data_mask;
840 sig->invert_input = invert_input;
841 sig->input_mask = input_mask;
842 sig->invert_oe = invert_oe;
843 sig->oe_mask = oe_mask;
844
845 return ERROR_OK;
846 }
847
848 COMMAND_HANDLER(ftdi_handle_set_signal_command)
849 {
850 if (CMD_ARGC < 2)
851 return ERROR_COMMAND_SYNTAX_ERROR;
852
853 struct signal *sig;
854 sig = find_signal_by_name(CMD_ARGV[0]);
855 if (!sig) {
856 LOG_ERROR("interface configuration doesn't define signal '%s'", CMD_ARGV[0]);
857 return ERROR_FAIL;
858 }
859
860 switch (*CMD_ARGV[1]) {
861 case '0':
862 case '1':
863 case 'z':
864 case 'Z':
865 /* single character level specifier only */
866 if (CMD_ARGV[1][1] == '\0') {
867 ftdi_set_signal(sig, *CMD_ARGV[1]);
868 break;
869 }
870 /* fallthrough */
871 default:
872 LOG_ERROR("unknown signal level '%s', use 0, 1 or z", CMD_ARGV[1]);
873 return ERROR_COMMAND_SYNTAX_ERROR;
874 }
875
876 return mpsse_flush(mpsse_ctx);
877 }
878
879 COMMAND_HANDLER(ftdi_handle_get_signal_command)
880 {
881 if (CMD_ARGC < 1)
882 return ERROR_COMMAND_SYNTAX_ERROR;
883
884 struct signal *sig;
885 uint16_t sig_data = 0;
886 sig = find_signal_by_name(CMD_ARGV[0]);
887 if (!sig) {
888 LOG_ERROR("interface configuration doesn't define signal '%s'", CMD_ARGV[0]);
889 return ERROR_FAIL;
890 }
891
892 int ret = ftdi_get_signal(sig, &sig_data);
893 if (ret != ERROR_OK)
894 return ret;
895
896 LOG_USER("Signal %s = %#06x", sig->name, sig_data);
897
898 return ERROR_OK;
899 }
900
901 COMMAND_HANDLER(ftdi_handle_vid_pid_command)
902 {
903 if (CMD_ARGC > MAX_USB_IDS * 2) {
904 LOG_WARNING("ignoring extra IDs in ftdi_vid_pid "
905 "(maximum is %d pairs)", MAX_USB_IDS);
906 CMD_ARGC = MAX_USB_IDS * 2;
907 }
908 if (CMD_ARGC < 2 || (CMD_ARGC & 1)) {
909 LOG_WARNING("incomplete ftdi_vid_pid configuration directive");
910 if (CMD_ARGC < 2)
911 return ERROR_COMMAND_SYNTAX_ERROR;
912 /* remove the incomplete trailing id */
913 CMD_ARGC -= 1;
914 }
915
916 unsigned i;
917 for (i = 0; i < CMD_ARGC; i += 2) {
918 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i], ftdi_vid[i >> 1]);
919 COMMAND_PARSE_NUMBER(u16, CMD_ARGV[i + 1], ftdi_pid[i >> 1]);
920 }
921
922 /*
923 * Explicitly terminate, in case there are multiples instances of
924 * ftdi_vid_pid.
925 */
926 ftdi_vid[i >> 1] = ftdi_pid[i >> 1] = 0;
927
928 return ERROR_OK;
929 }
930
931 COMMAND_HANDLER(ftdi_handle_tdo_sample_edge_command)
932 {
933 Jim_Nvp *n;
934 static const Jim_Nvp nvp_ftdi_jtag_modes[] = {
935 { .name = "rising", .value = JTAG_MODE },
936 { .name = "falling", .value = JTAG_MODE_ALT },
937 { .name = NULL, .value = -1 },
938 };
939
940 if (CMD_ARGC > 0) {
941 n = Jim_Nvp_name2value_simple(nvp_ftdi_jtag_modes, CMD_ARGV[0]);
942 if (n->name == NULL)
943 return ERROR_COMMAND_SYNTAX_ERROR;
944 ftdi_jtag_mode = n->value;
945
946 }
947
948 n = Jim_Nvp_value2name_simple(nvp_ftdi_jtag_modes, ftdi_jtag_mode);
949 command_print(CMD_CTX, "ftdi samples TDO on %s edge of TCK", n->name);
950
951 return ERROR_OK;
952 }
953
954 static const struct command_registration ftdi_command_handlers[] = {
955 {
956 .name = "ftdi_device_desc",
957 .handler = &ftdi_handle_device_desc_command,
958 .mode = COMMAND_CONFIG,
959 .help = "set the USB device description of the FTDI device",
960 .usage = "description_string",
961 },
962 {
963 .name = "ftdi_serial",
964 .handler = &ftdi_handle_serial_command,
965 .mode = COMMAND_CONFIG,
966 .help = "set the serial number of the FTDI device",
967 .usage = "serial_string",
968 },
969 #ifdef HAVE_LIBUSB_GET_PORT_NUMBERS
970 {
971 .name = "ftdi_location",
972 .handler = &ftdi_handle_location_command,
973 .mode = COMMAND_CONFIG,
974 .help = "set the USB bus location of the FTDI device",
975 .usage = "<bus>:port[,port]...",
976 },
977 #endif
978 {
979 .name = "ftdi_channel",
980 .handler = &ftdi_handle_channel_command,
981 .mode = COMMAND_CONFIG,
982 .help = "set the channel of the FTDI device that is used as JTAG",
983 .usage = "(0-3)",
984 },
985 {
986 .name = "ftdi_layout_init",
987 .handler = &ftdi_handle_layout_init_command,
988 .mode = COMMAND_CONFIG,
989 .help = "initialize the FTDI GPIO signals used "
990 "to control output-enables and reset signals",
991 .usage = "data direction",
992 },
993 {
994 .name = "ftdi_layout_signal",
995 .handler = &ftdi_handle_layout_signal_command,
996 .mode = COMMAND_ANY,
997 .help = "define a signal controlled by one or more FTDI GPIO as data "
998 "and/or output enable",
999 .usage = "name [-data mask|-ndata mask] [-oe mask|-noe mask] [-alias|-nalias name]",
1000 },
1001 {
1002 .name = "ftdi_set_signal",
1003 .handler = &ftdi_handle_set_signal_command,
1004 .mode = COMMAND_EXEC,
1005 .help = "control a layout-specific signal",
1006 .usage = "name (1|0|z)",
1007 },
1008 {
1009 .name = "ftdi_get_signal",
1010 .handler = &ftdi_handle_get_signal_command,
1011 .mode = COMMAND_EXEC,
1012 .help = "read the value of a layout-specific signal",
1013 .usage = "name",
1014 },
1015 {
1016 .name = "ftdi_vid_pid",
1017 .handler = &ftdi_handle_vid_pid_command,
1018 .mode = COMMAND_CONFIG,
1019 .help = "the vendor ID and product ID of the FTDI device",
1020 .usage = "(vid pid)* ",
1021 },
1022 {
1023 .name = "ftdi_tdo_sample_edge",
1024 .handler = &ftdi_handle_tdo_sample_edge_command,
1025 .mode = COMMAND_ANY,
1026 .help = "set which TCK clock edge is used for sampling TDO "
1027 "- default is rising-edge (Setting to falling-edge may "
1028 "allow signalling speed increase)",
1029 .usage = "(rising|falling)",
1030 },
1031 COMMAND_REGISTRATION_DONE
1032 };
1033
1034 static int create_default_signal(const char *name, uint16_t data_mask)
1035 {
1036 struct signal *sig = create_signal(name);
1037 if (!sig) {
1038 LOG_ERROR("failed to create signal %s", name);
1039 return ERROR_FAIL;
1040 }
1041 sig->invert_data = false;
1042 sig->data_mask = data_mask;
1043 sig->invert_oe = false;
1044 sig->oe_mask = 0;
1045
1046 return ERROR_OK;
1047 }
1048
1049 static int create_signals(void)
1050 {
1051 if (create_default_signal("TCK", 0x01) != ERROR_OK)
1052 return ERROR_FAIL;
1053 if (create_default_signal("TDI", 0x02) != ERROR_OK)
1054 return ERROR_FAIL;
1055 if (create_default_signal("TDO", 0x04) != ERROR_OK)
1056 return ERROR_FAIL;
1057 if (create_default_signal("TMS", 0x08) != ERROR_OK)
1058 return ERROR_FAIL;
1059 return ERROR_OK;
1060 }
1061
1062 static int ftdi_swd_init(void)
1063 {
1064 LOG_INFO("FTDI SWD mode enabled");
1065 swd_mode = true;
1066
1067 if (create_signals() != ERROR_OK)
1068 return ERROR_FAIL;
1069
1070 swd_cmd_queue_alloced = 10;
1071 swd_cmd_queue = malloc(swd_cmd_queue_alloced * sizeof(*swd_cmd_queue));
1072
1073 return swd_cmd_queue != NULL ? ERROR_OK : ERROR_FAIL;
1074 }
1075
1076 static void ftdi_swd_swdio_en(bool enable)
1077 {
1078 struct signal *oe = find_signal_by_name("SWDIO_OE");
1079 if (oe) {
1080 if (oe->data_mask)
1081 ftdi_set_signal(oe, enable ? '1' : '0');
1082 else {
1083 /* Sets TDI/DO pin (pin 2) to input during rx when both pins are connected
1084 to SWDIO */
1085 if (enable)
1086 direction |= jtag_direction_init & 0x0002U;
1087 else
1088 direction &= ~0x0002U;
1089 mpsse_set_data_bits_low_byte(mpsse_ctx, output & 0xff, direction & 0xff);
1090 }
1091 }
1092 }
1093
1094 /**
1095 * Flush the MPSSE queue and process the SWD transaction queue
1096 * @param dap
1097 * @return
1098 */
1099 static int ftdi_swd_run_queue(void)
1100 {
1101 LOG_DEBUG_IO("Executing %zu queued transactions", swd_cmd_queue_length);
1102 int retval;
1103 struct signal *led = find_signal_by_name("LED");
1104
1105 if (queued_retval != ERROR_OK) {
1106 LOG_DEBUG_IO("Skipping due to previous errors: %d", queued_retval);
1107 goto skip;
1108 }
1109
1110 /* A transaction must be followed by another transaction or at least 8 idle cycles to
1111 * ensure that data is clocked through the AP. */
1112 mpsse_clock_data_out(mpsse_ctx, NULL, 0, 8, SWD_MODE);
1113
1114 /* Terminate the "blink", if the current layout has that feature */
1115 if (led)
1116 ftdi_set_signal(led, '0');
1117
1118 queued_retval = mpsse_flush(mpsse_ctx);
1119 if (queued_retval != ERROR_OK) {
1120 LOG_ERROR("MPSSE failed");
1121 goto skip;
1122 }
1123
1124 for (size_t i = 0; i < swd_cmd_queue_length; i++) {
1125 int ack = buf_get_u32(swd_cmd_queue[i].trn_ack_data_parity_trn, 1, 3);
1126
1127 LOG_DEBUG_IO("%s %s %s reg %X = %08"PRIx32,
1128 ack == SWD_ACK_OK ? "OK" : ack == SWD_ACK_WAIT ? "WAIT" : ack == SWD_ACK_FAULT ? "FAULT" : "JUNK",
1129 swd_cmd_queue[i].cmd & SWD_CMD_APnDP ? "AP" : "DP",
1130 swd_cmd_queue[i].cmd & SWD_CMD_RnW ? "read" : "write",
1131 (swd_cmd_queue[i].cmd & SWD_CMD_A32) >> 1,
1132 buf_get_u32(swd_cmd_queue[i].trn_ack_data_parity_trn,
1133 1 + 3 + (swd_cmd_queue[i].cmd & SWD_CMD_RnW ? 0 : 1), 32));
1134
1135 if (ack != SWD_ACK_OK) {
1136 queued_retval = ack == SWD_ACK_WAIT ? ERROR_WAIT : ERROR_FAIL;
1137 goto skip;
1138
1139 } else if (swd_cmd_queue[i].cmd & SWD_CMD_RnW) {
1140 uint32_t data = buf_get_u32(swd_cmd_queue[i].trn_ack_data_parity_trn, 1 + 3, 32);
1141 int parity = buf_get_u32(swd_cmd_queue[i].trn_ack_data_parity_trn, 1 + 3 + 32, 1);
1142
1143 if (parity != parity_u32(data)) {
1144 LOG_ERROR("SWD Read data parity mismatch");
1145 queued_retval = ERROR_FAIL;
1146 goto skip;
1147 }
1148
1149 if (swd_cmd_queue[i].dst != NULL)
1150 *swd_cmd_queue[i].dst = data;
1151 }
1152 }
1153
1154 skip:
1155 swd_cmd_queue_length = 0;
1156 retval = queued_retval;
1157 queued_retval = ERROR_OK;
1158
1159 /* Queue a new "blink" */
1160 if (led && retval == ERROR_OK)
1161 ftdi_set_signal(led, '1');
1162
1163 return retval;
1164 }
1165
1166 static void ftdi_swd_queue_cmd(uint8_t cmd, uint32_t *dst, uint32_t data, uint32_t ap_delay_clk)
1167 {
1168 if (swd_cmd_queue_length >= swd_cmd_queue_alloced) {
1169 /* Not enough room in the queue. Run the queue and increase its size for next time.
1170 * Note that it's not possible to avoid running the queue here, because mpsse contains
1171 * pointers into the queue which may be invalid after the realloc. */
1172 queued_retval = ftdi_swd_run_queue();
1173 struct swd_cmd_queue_entry *q = realloc(swd_cmd_queue, swd_cmd_queue_alloced * 2 * sizeof(*swd_cmd_queue));
1174 if (q != NULL) {
1175 swd_cmd_queue = q;
1176 swd_cmd_queue_alloced *= 2;
1177 LOG_DEBUG("Increased SWD command queue to %zu elements", swd_cmd_queue_alloced);
1178 }
1179 }
1180
1181 if (queued_retval != ERROR_OK)
1182 return;
1183
1184 size_t i = swd_cmd_queue_length++;
1185 swd_cmd_queue[i].cmd = cmd | SWD_CMD_START | SWD_CMD_PARK;
1186
1187 mpsse_clock_data_out(mpsse_ctx, &swd_cmd_queue[i].cmd, 0, 8, SWD_MODE);
1188
1189 if (swd_cmd_queue[i].cmd & SWD_CMD_RnW) {
1190 /* Queue a read transaction */
1191 swd_cmd_queue[i].dst = dst;
1192
1193 ftdi_swd_swdio_en(false);
1194 mpsse_clock_data_in(mpsse_ctx, swd_cmd_queue[i].trn_ack_data_parity_trn,
1195 0, 1 + 3 + 32 + 1 + 1, SWD_MODE);
1196 ftdi_swd_swdio_en(true);
1197 } else {
1198 /* Queue a write transaction */
1199 ftdi_swd_swdio_en(false);
1200
1201 mpsse_clock_data_in(mpsse_ctx, swd_cmd_queue[i].trn_ack_data_parity_trn,
1202 0, 1 + 3 + 1, SWD_MODE);
1203
1204 ftdi_swd_swdio_en(true);
1205
1206 buf_set_u32(swd_cmd_queue[i].trn_ack_data_parity_trn, 1 + 3 + 1, 32, data);
1207 buf_set_u32(swd_cmd_queue[i].trn_ack_data_parity_trn, 1 + 3 + 1 + 32, 1, parity_u32(data));
1208
1209 mpsse_clock_data_out(mpsse_ctx, swd_cmd_queue[i].trn_ack_data_parity_trn,
1210 1 + 3 + 1, 32 + 1, SWD_MODE);
1211 }
1212
1213 /* Insert idle cycles after AP accesses to avoid WAIT */
1214 if (cmd & SWD_CMD_APnDP)
1215 mpsse_clock_data_out(mpsse_ctx, NULL, 0, ap_delay_clk, SWD_MODE);
1216
1217 }
1218
1219 static void ftdi_swd_read_reg(uint8_t cmd, uint32_t *value, uint32_t ap_delay_clk)
1220 {
1221 assert(cmd & SWD_CMD_RnW);
1222 ftdi_swd_queue_cmd(cmd, value, 0, ap_delay_clk);
1223 }
1224
1225 static void ftdi_swd_write_reg(uint8_t cmd, uint32_t value, uint32_t ap_delay_clk)
1226 {
1227 assert(!(cmd & SWD_CMD_RnW));
1228 ftdi_swd_queue_cmd(cmd, NULL, value, ap_delay_clk);
1229 }
1230
1231 static int_least32_t ftdi_swd_frequency(int_least32_t hz)
1232 {
1233 if (hz > 0)
1234 freq = mpsse_set_frequency(mpsse_ctx, hz);
1235
1236 return freq;
1237 }
1238
1239 static int ftdi_swd_switch_seq(enum swd_special_seq seq)
1240 {
1241 switch (seq) {
1242 case LINE_RESET:
1243 LOG_DEBUG("SWD line reset");
1244 ftdi_swd_swdio_en(true);
1245 mpsse_clock_data_out(mpsse_ctx, swd_seq_line_reset, 0, swd_seq_line_reset_len, SWD_MODE);
1246 break;
1247 case JTAG_TO_SWD:
1248 LOG_DEBUG("JTAG-to-SWD");
1249 ftdi_swd_swdio_en(true);
1250 mpsse_clock_data_out(mpsse_ctx, swd_seq_jtag_to_swd, 0, swd_seq_jtag_to_swd_len, SWD_MODE);
1251 break;
1252 case SWD_TO_JTAG:
1253 LOG_DEBUG("SWD-to-JTAG");
1254 ftdi_swd_swdio_en(true);
1255 mpsse_clock_data_out(mpsse_ctx, swd_seq_swd_to_jtag, 0, swd_seq_swd_to_jtag_len, SWD_MODE);
1256 break;
1257 default:
1258 LOG_ERROR("Sequence %d not supported", seq);
1259 return ERROR_FAIL;
1260 }
1261
1262 return ERROR_OK;
1263 }
1264
1265 static const struct swd_driver ftdi_swd = {
1266 .init = ftdi_swd_init,
1267 .frequency = ftdi_swd_frequency,
1268 .switch_seq = ftdi_swd_switch_seq,
1269 .read_reg = ftdi_swd_read_reg,
1270 .write_reg = ftdi_swd_write_reg,
1271 .run = ftdi_swd_run_queue,
1272 };
1273
1274 static const char * const ftdi_transports[] = { "jtag", "swd", NULL };
1275
1276 struct jtag_interface ftdi_interface = {
1277 .name = "ftdi",
1278 .supported = DEBUG_CAP_TMS_SEQ,
1279 .commands = ftdi_command_handlers,
1280 .transports = ftdi_transports,
1281 .swd = &ftdi_swd,
1282
1283 .init = ftdi_initialize,
1284 .quit = ftdi_quit,
1285 .speed = ftdi_speed,
1286 .speed_div = ftdi_speed_div,
1287 .khz = ftdi_khz,
1288 .execute_queue = ftdi_execute_queue,
1289 };

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)