jtag/core: fix unused assignment
[openocd.git] / src / jtag / core.c
1 /***************************************************************************
2 * Copyright (C) 2009 Zachary T Welch *
3 * zw@superlucidity.net *
4 * *
5 * Copyright (C) 2007,2008,2009 Øyvind Harboe *
6 * oyvind.harboe@zylin.com *
7 * *
8 * Copyright (C) 2009 SoftPLC Corporation *
9 * http://softplc.com *
10 * dick@softplc.com *
11 * *
12 * Copyright (C) 2005 by Dominic Rath *
13 * Dominic.Rath@gmx.de *
14 * *
15 * This program is free software; you can redistribute it and/or modify *
16 * it under the terms of the GNU General Public License as published by *
17 * the Free Software Foundation; either version 2 of the License, or *
18 * (at your option) any later version. *
19 * *
20 * This program is distributed in the hope that it will be useful, *
21 * but WITHOUT ANY WARRANTY; without even the implied warranty of *
22 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the *
23 * GNU General Public License for more details. *
24 * *
25 * You should have received a copy of the GNU General Public License *
26 * along with this program. If not, see <http://www.gnu.org/licenses/>. *
27 ***************************************************************************/
28
29 #ifdef HAVE_CONFIG_H
30 #include "config.h"
31 #endif
32
33 #include "jtag.h"
34 #include "swd.h"
35 #include "interface.h"
36 #include <transport/transport.h>
37 #include <helper/jep106.h>
38 #include "helper/system.h"
39
40 #ifdef HAVE_STRINGS_H
41 #include <strings.h>
42 #endif
43
44 /* SVF and XSVF are higher level JTAG command sets (for boundary scan) */
45 #include "svf/svf.h"
46 #include "xsvf/xsvf.h"
47
48 /* ipdbg are utilities to debug IP-cores. It uses JTAG for transport. */
49 #include "server/ipdbg.h"
50
51 /** The number of JTAG queue flushes (for profiling and debugging purposes). */
52 static int jtag_flush_queue_count;
53
54 /* Sleep this # of ms after flushing the queue */
55 static int jtag_flush_queue_sleep;
56
57 static void jtag_add_scan_check(struct jtag_tap *active,
58 void (*jtag_add_scan)(struct jtag_tap *active,
59 int in_num_fields,
60 const struct scan_field *in_fields,
61 tap_state_t state),
62 int in_num_fields, struct scan_field *in_fields, tap_state_t state);
63
64 /**
65 * The jtag_error variable is set when an error occurs while executing
66 * the queue. Application code may set this using jtag_set_error(),
67 * when an error occurs during processing that should be reported during
68 * jtag_execute_queue().
69 *
70 * The value is set and cleared, but never read by normal application code.
71 *
72 * This value is returned (and cleared) by jtag_execute_queue().
73 */
74 static int jtag_error = ERROR_OK;
75
76 static const char *jtag_event_strings[] = {
77 [JTAG_TRST_ASSERTED] = "TAP reset",
78 [JTAG_TAP_EVENT_SETUP] = "TAP setup",
79 [JTAG_TAP_EVENT_ENABLE] = "TAP enabled",
80 [JTAG_TAP_EVENT_DISABLE] = "TAP disabled",
81 };
82
83 /*
84 * JTAG adapters must initialize with TRST and SRST de-asserted
85 * (they're negative logic, so that means *high*). But some
86 * hardware doesn't necessarily work that way ... so set things
87 * up so that jtag_init() always forces that state.
88 */
89 static int jtag_trst = -1;
90 static int jtag_srst = -1;
91
92 /**
93 * List all TAPs that have been created.
94 */
95 static struct jtag_tap *__jtag_all_taps;
96
97 static enum reset_types jtag_reset_config = RESET_NONE;
98 tap_state_t cmd_queue_cur_state = TAP_RESET;
99
100 static bool jtag_verify_capture_ir = true;
101 static int jtag_verify = 1;
102
103 /* how long the OpenOCD should wait before attempting JTAG communication after reset lines
104 *deasserted (in ms) */
105 static int adapter_nsrst_delay; /* default to no nSRST delay */
106 static int jtag_ntrst_delay;/* default to no nTRST delay */
107 static int adapter_nsrst_assert_width; /* width of assertion */
108 static int jtag_ntrst_assert_width; /* width of assertion */
109
110 /**
111 * Contains a single callback along with a pointer that will be passed
112 * when an event occurs.
113 */
114 struct jtag_event_callback {
115 /** a event callback */
116 jtag_event_handler_t callback;
117 /** the private data to pass to the callback */
118 void *priv;
119 /** the next callback */
120 struct jtag_event_callback *next;
121 };
122
123 /* callbacks to inform high-level handlers about JTAG state changes */
124 static struct jtag_event_callback *jtag_event_callbacks;
125
126 /* speed in kHz*/
127 static int speed_khz;
128 /* speed to fallback to when RCLK is requested but not supported */
129 static int rclk_fallback_speed_khz;
130 static enum {CLOCK_MODE_UNSELECTED, CLOCK_MODE_KHZ, CLOCK_MODE_RCLK} clock_mode;
131 static int jtag_speed;
132
133 /* FIXME: change name to this variable, it is not anymore JTAG only */
134 static struct adapter_driver *jtag;
135
136 extern struct adapter_driver *adapter_driver;
137
138 void jtag_set_flush_queue_sleep(int ms)
139 {
140 jtag_flush_queue_sleep = ms;
141 }
142
143 void jtag_set_error(int error)
144 {
145 if ((error == ERROR_OK) || (jtag_error != ERROR_OK))
146 return;
147 jtag_error = error;
148 }
149
150 int jtag_error_clear(void)
151 {
152 int temp = jtag_error;
153 jtag_error = ERROR_OK;
154 return temp;
155 }
156
157 /************/
158
159 static bool jtag_poll = 1;
160
161 bool is_jtag_poll_safe(void)
162 {
163 /* Polling can be disabled explicitly with set_enabled(false).
164 * It is also implicitly disabled while TRST is active and
165 * while SRST is gating the JTAG clock.
166 */
167 if (!transport_is_jtag())
168 return jtag_poll;
169
170 if (!jtag_poll || jtag_trst != 0)
171 return false;
172 return jtag_srst == 0 || (jtag_reset_config & RESET_SRST_NO_GATING);
173 }
174
175 bool jtag_poll_get_enabled(void)
176 {
177 return jtag_poll;
178 }
179
180 void jtag_poll_set_enabled(bool value)
181 {
182 jtag_poll = value;
183 }
184
185 /************/
186
187 struct jtag_tap *jtag_all_taps(void)
188 {
189 return __jtag_all_taps;
190 };
191
192 unsigned jtag_tap_count(void)
193 {
194 struct jtag_tap *t = jtag_all_taps();
195 unsigned n = 0;
196 while (t) {
197 n++;
198 t = t->next_tap;
199 }
200 return n;
201 }
202
203 unsigned jtag_tap_count_enabled(void)
204 {
205 struct jtag_tap *t = jtag_all_taps();
206 unsigned n = 0;
207 while (t) {
208 if (t->enabled)
209 n++;
210 t = t->next_tap;
211 }
212 return n;
213 }
214
215 /** Append a new TAP to the chain of all taps. */
216 static void jtag_tap_add(struct jtag_tap *t)
217 {
218 unsigned jtag_num_taps = 0;
219
220 struct jtag_tap **tap = &__jtag_all_taps;
221 while (*tap) {
222 jtag_num_taps++;
223 tap = &(*tap)->next_tap;
224 }
225 *tap = t;
226 t->abs_chain_position = jtag_num_taps;
227 }
228
229 /* returns a pointer to the n-th device in the scan chain */
230 struct jtag_tap *jtag_tap_by_position(unsigned n)
231 {
232 struct jtag_tap *t = jtag_all_taps();
233
234 while (t && n-- > 0)
235 t = t->next_tap;
236
237 return t;
238 }
239
240 struct jtag_tap *jtag_tap_by_string(const char *s)
241 {
242 /* try by name first */
243 struct jtag_tap *t = jtag_all_taps();
244
245 while (t) {
246 if (strcmp(t->dotted_name, s) == 0)
247 return t;
248 t = t->next_tap;
249 }
250
251 /* no tap found by name, so try to parse the name as a number */
252 unsigned n;
253 if (parse_uint(s, &n) != ERROR_OK)
254 return NULL;
255
256 /* FIXME remove this numeric fallback code late June 2010, along
257 * with all info in the User's Guide that TAPs have numeric IDs.
258 * Also update "scan_chain" output to not display the numbers.
259 */
260 t = jtag_tap_by_position(n);
261 if (t)
262 LOG_WARNING("Specify TAP '%s' by name, not number %u",
263 t->dotted_name, n);
264
265 return t;
266 }
267
268 struct jtag_tap *jtag_tap_next_enabled(struct jtag_tap *p)
269 {
270 p = p ? p->next_tap : jtag_all_taps();
271 while (p) {
272 if (p->enabled)
273 return p;
274 p = p->next_tap;
275 }
276 return NULL;
277 }
278
279 const char *jtag_tap_name(const struct jtag_tap *tap)
280 {
281 return (!tap) ? "(unknown)" : tap->dotted_name;
282 }
283
284
285 int jtag_register_event_callback(jtag_event_handler_t callback, void *priv)
286 {
287 struct jtag_event_callback **callbacks_p = &jtag_event_callbacks;
288
289 if (!callback)
290 return ERROR_COMMAND_SYNTAX_ERROR;
291
292 if (*callbacks_p) {
293 while ((*callbacks_p)->next)
294 callbacks_p = &((*callbacks_p)->next);
295 callbacks_p = &((*callbacks_p)->next);
296 }
297
298 (*callbacks_p) = malloc(sizeof(struct jtag_event_callback));
299 (*callbacks_p)->callback = callback;
300 (*callbacks_p)->priv = priv;
301 (*callbacks_p)->next = NULL;
302
303 return ERROR_OK;
304 }
305
306 int jtag_unregister_event_callback(jtag_event_handler_t callback, void *priv)
307 {
308 struct jtag_event_callback **p = &jtag_event_callbacks, *temp;
309
310 if (!callback)
311 return ERROR_COMMAND_SYNTAX_ERROR;
312
313 while (*p) {
314 if (((*p)->priv != priv) || ((*p)->callback != callback)) {
315 p = &(*p)->next;
316 continue;
317 }
318
319 temp = *p;
320 *p = (*p)->next;
321 free(temp);
322 }
323
324 return ERROR_OK;
325 }
326
327 int jtag_call_event_callbacks(enum jtag_event event)
328 {
329 struct jtag_event_callback *callback = jtag_event_callbacks;
330
331 LOG_DEBUG("jtag event: %s", jtag_event_strings[event]);
332
333 while (callback) {
334 struct jtag_event_callback *next;
335
336 /* callback may remove itself */
337 next = callback->next;
338 callback->callback(event, callback->priv);
339 callback = next;
340 }
341
342 return ERROR_OK;
343 }
344
345 static void jtag_checks(void)
346 {
347 assert(jtag_trst == 0);
348 }
349
350 static void jtag_prelude(tap_state_t state)
351 {
352 jtag_checks();
353
354 assert(state != TAP_INVALID);
355
356 cmd_queue_cur_state = state;
357 }
358
359 void jtag_add_ir_scan_noverify(struct jtag_tap *active, const struct scan_field *in_fields,
360 tap_state_t state)
361 {
362 jtag_prelude(state);
363
364 int retval = interface_jtag_add_ir_scan(active, in_fields, state);
365 jtag_set_error(retval);
366 }
367
368 static void jtag_add_ir_scan_noverify_callback(struct jtag_tap *active,
369 int dummy,
370 const struct scan_field *in_fields,
371 tap_state_t state)
372 {
373 jtag_add_ir_scan_noverify(active, in_fields, state);
374 }
375
376 /* If fields->in_value is filled out, then the captured IR value will be checked */
377 void jtag_add_ir_scan(struct jtag_tap *active, struct scan_field *in_fields, tap_state_t state)
378 {
379 assert(state != TAP_RESET);
380
381 if (jtag_verify && jtag_verify_capture_ir) {
382 /* 8 x 32 bit id's is enough for all invocations */
383
384 /* if we are to run a verification of the ir scan, we need to get the input back.
385 * We may have to allocate space if the caller didn't ask for the input back.
386 */
387 in_fields->check_value = active->expected;
388 in_fields->check_mask = active->expected_mask;
389 jtag_add_scan_check(active, jtag_add_ir_scan_noverify_callback, 1, in_fields,
390 state);
391 } else
392 jtag_add_ir_scan_noverify(active, in_fields, state);
393 }
394
395 void jtag_add_plain_ir_scan(int num_bits, const uint8_t *out_bits, uint8_t *in_bits,
396 tap_state_t state)
397 {
398 assert(out_bits);
399 assert(state != TAP_RESET);
400
401 jtag_prelude(state);
402
403 int retval = interface_jtag_add_plain_ir_scan(
404 num_bits, out_bits, in_bits, state);
405 jtag_set_error(retval);
406 }
407
408 static int jtag_check_value_inner(uint8_t *captured, uint8_t *in_check_value,
409 uint8_t *in_check_mask, int num_bits);
410
411 static int jtag_check_value_mask_callback(jtag_callback_data_t data0,
412 jtag_callback_data_t data1,
413 jtag_callback_data_t data2,
414 jtag_callback_data_t data3)
415 {
416 return jtag_check_value_inner((uint8_t *)data0,
417 (uint8_t *)data1,
418 (uint8_t *)data2,
419 (int)data3);
420 }
421
422 static void jtag_add_scan_check(struct jtag_tap *active, void (*jtag_add_scan)(
423 struct jtag_tap *active,
424 int in_num_fields,
425 const struct scan_field *in_fields,
426 tap_state_t state),
427 int in_num_fields, struct scan_field *in_fields, tap_state_t state)
428 {
429 jtag_add_scan(active, in_num_fields, in_fields, state);
430
431 for (int i = 0; i < in_num_fields; i++) {
432 if ((in_fields[i].check_value) && (in_fields[i].in_value)) {
433 jtag_add_callback4(jtag_check_value_mask_callback,
434 (jtag_callback_data_t)in_fields[i].in_value,
435 (jtag_callback_data_t)in_fields[i].check_value,
436 (jtag_callback_data_t)in_fields[i].check_mask,
437 (jtag_callback_data_t)in_fields[i].num_bits);
438 }
439 }
440 }
441
442 void jtag_add_dr_scan_check(struct jtag_tap *active,
443 int in_num_fields,
444 struct scan_field *in_fields,
445 tap_state_t state)
446 {
447 if (jtag_verify)
448 jtag_add_scan_check(active, jtag_add_dr_scan, in_num_fields, in_fields, state);
449 else
450 jtag_add_dr_scan(active, in_num_fields, in_fields, state);
451 }
452
453
454 void jtag_add_dr_scan(struct jtag_tap *active,
455 int in_num_fields,
456 const struct scan_field *in_fields,
457 tap_state_t state)
458 {
459 assert(state != TAP_RESET);
460
461 jtag_prelude(state);
462
463 int retval;
464 retval = interface_jtag_add_dr_scan(active, in_num_fields, in_fields, state);
465 jtag_set_error(retval);
466 }
467
468 void jtag_add_plain_dr_scan(int num_bits, const uint8_t *out_bits, uint8_t *in_bits,
469 tap_state_t state)
470 {
471 assert(out_bits);
472 assert(state != TAP_RESET);
473
474 jtag_prelude(state);
475
476 int retval;
477 retval = interface_jtag_add_plain_dr_scan(num_bits, out_bits, in_bits, state);
478 jtag_set_error(retval);
479 }
480
481 void jtag_add_tlr(void)
482 {
483 jtag_prelude(TAP_RESET);
484 jtag_set_error(interface_jtag_add_tlr());
485
486 /* NOTE: order here matches TRST path in jtag_add_reset() */
487 jtag_call_event_callbacks(JTAG_TRST_ASSERTED);
488 jtag_notify_event(JTAG_TRST_ASSERTED);
489 }
490
491 /**
492 * If supported by the underlying adapter, this clocks a raw bit sequence
493 * onto TMS for switching between JTAG and SWD modes.
494 *
495 * DO NOT use this to bypass the integrity checks and logging provided
496 * by the jtag_add_pathmove() and jtag_add_statemove() calls.
497 *
498 * @param nbits How many bits to clock out.
499 * @param seq The bit sequence. The LSB is bit 0 of seq[0].
500 * @param state The JTAG tap state to record on completion. Use
501 * TAP_INVALID to represent being in in SWD mode.
502 *
503 * @todo Update naming conventions to stop assuming everything is JTAG.
504 */
505 int jtag_add_tms_seq(unsigned nbits, const uint8_t *seq, enum tap_state state)
506 {
507 int retval;
508
509 if (!(jtag->jtag_ops->supported & DEBUG_CAP_TMS_SEQ))
510 return ERROR_JTAG_NOT_IMPLEMENTED;
511
512 jtag_checks();
513 cmd_queue_cur_state = state;
514
515 retval = interface_add_tms_seq(nbits, seq, state);
516 jtag_set_error(retval);
517 return retval;
518 }
519
520 void jtag_add_pathmove(int num_states, const tap_state_t *path)
521 {
522 tap_state_t cur_state = cmd_queue_cur_state;
523
524 /* the last state has to be a stable state */
525 if (!tap_is_state_stable(path[num_states - 1])) {
526 LOG_ERROR("BUG: TAP path doesn't finish in a stable state");
527 jtag_set_error(ERROR_JTAG_NOT_STABLE_STATE);
528 return;
529 }
530
531 for (int i = 0; i < num_states; i++) {
532 if (path[i] == TAP_RESET) {
533 LOG_ERROR("BUG: TAP_RESET is not a valid state for pathmove sequences");
534 jtag_set_error(ERROR_JTAG_STATE_INVALID);
535 return;
536 }
537
538 if (tap_state_transition(cur_state, true) != path[i] &&
539 tap_state_transition(cur_state, false) != path[i]) {
540 LOG_ERROR("BUG: %s -> %s isn't a valid TAP transition",
541 tap_state_name(cur_state), tap_state_name(path[i]));
542 jtag_set_error(ERROR_JTAG_TRANSITION_INVALID);
543 return;
544 }
545 cur_state = path[i];
546 }
547
548 jtag_checks();
549
550 jtag_set_error(interface_jtag_add_pathmove(num_states, path));
551 cmd_queue_cur_state = path[num_states - 1];
552 }
553
554 int jtag_add_statemove(tap_state_t goal_state)
555 {
556 tap_state_t cur_state = cmd_queue_cur_state;
557
558 if (goal_state != cur_state) {
559 LOG_DEBUG("cur_state=%s goal_state=%s",
560 tap_state_name(cur_state),
561 tap_state_name(goal_state));
562 }
563
564 /* If goal is RESET, be paranoid and force that that transition
565 * (e.g. five TCK cycles, TMS high). Else trust "cur_state".
566 */
567 if (goal_state == TAP_RESET)
568 jtag_add_tlr();
569 else if (goal_state == cur_state)
570 /* nothing to do */;
571
572 else if (tap_is_state_stable(cur_state) && tap_is_state_stable(goal_state)) {
573 unsigned tms_bits = tap_get_tms_path(cur_state, goal_state);
574 unsigned tms_count = tap_get_tms_path_len(cur_state, goal_state);
575 tap_state_t moves[8];
576 assert(tms_count < ARRAY_SIZE(moves));
577
578 for (unsigned i = 0; i < tms_count; i++, tms_bits >>= 1) {
579 bool bit = tms_bits & 1;
580
581 cur_state = tap_state_transition(cur_state, bit);
582 moves[i] = cur_state;
583 }
584
585 jtag_add_pathmove(tms_count, moves);
586 } else if (tap_state_transition(cur_state, true) == goal_state
587 || tap_state_transition(cur_state, false) == goal_state)
588 jtag_add_pathmove(1, &goal_state);
589 else
590 return ERROR_FAIL;
591
592 return ERROR_OK;
593 }
594
595 void jtag_add_runtest(int num_cycles, tap_state_t state)
596 {
597 jtag_prelude(state);
598 jtag_set_error(interface_jtag_add_runtest(num_cycles, state));
599 }
600
601
602 void jtag_add_clocks(int num_cycles)
603 {
604 if (!tap_is_state_stable(cmd_queue_cur_state)) {
605 LOG_ERROR("jtag_add_clocks() called with TAP in unstable state \"%s\"",
606 tap_state_name(cmd_queue_cur_state));
607 jtag_set_error(ERROR_JTAG_NOT_STABLE_STATE);
608 return;
609 }
610
611 if (num_cycles > 0) {
612 jtag_checks();
613 jtag_set_error(interface_jtag_add_clocks(num_cycles));
614 }
615 }
616
617 static int adapter_system_reset(int req_srst)
618 {
619 int retval;
620
621 if (req_srst) {
622 if (!(jtag_reset_config & RESET_HAS_SRST)) {
623 LOG_ERROR("BUG: can't assert SRST");
624 return ERROR_FAIL;
625 }
626 req_srst = 1;
627 }
628
629 /* Maybe change SRST signal state */
630 if (jtag_srst != req_srst) {
631 retval = jtag->reset(0, req_srst);
632 if (retval != ERROR_OK) {
633 LOG_ERROR("SRST error");
634 return ERROR_FAIL;
635 }
636 jtag_srst = req_srst;
637
638 if (req_srst) {
639 LOG_DEBUG("SRST line asserted");
640 if (adapter_nsrst_assert_width)
641 jtag_sleep(adapter_nsrst_assert_width * 1000);
642 } else {
643 LOG_DEBUG("SRST line released");
644 if (adapter_nsrst_delay)
645 jtag_sleep(adapter_nsrst_delay * 1000);
646 }
647 }
648
649 return ERROR_OK;
650 }
651
652 static void legacy_jtag_add_reset(int req_tlr_or_trst, int req_srst)
653 {
654 int trst_with_tlr = 0;
655 int new_srst = 0;
656 int new_trst = 0;
657
658 /* Without SRST, we must use target-specific JTAG operations
659 * on each target; callers should not be requesting SRST when
660 * that signal doesn't exist.
661 *
662 * RESET_SRST_PULLS_TRST is a board or chip level quirk, which
663 * can kick in even if the JTAG adapter can't drive TRST.
664 */
665 if (req_srst) {
666 if (!(jtag_reset_config & RESET_HAS_SRST)) {
667 LOG_ERROR("BUG: can't assert SRST");
668 jtag_set_error(ERROR_FAIL);
669 return;
670 }
671 if ((jtag_reset_config & RESET_SRST_PULLS_TRST) != 0
672 && !req_tlr_or_trst) {
673 LOG_ERROR("BUG: can't assert only SRST");
674 jtag_set_error(ERROR_FAIL);
675 return;
676 }
677 new_srst = 1;
678 }
679
680 /* JTAG reset (entry to TAP_RESET state) can always be achieved
681 * using TCK and TMS; that may go through a TAP_{IR,DR}UPDATE
682 * state first. TRST accelerates it, and bypasses those states.
683 *
684 * RESET_TRST_PULLS_SRST is a board or chip level quirk, which
685 * can kick in even if the JTAG adapter can't drive SRST.
686 */
687 if (req_tlr_or_trst) {
688 if (!(jtag_reset_config & RESET_HAS_TRST))
689 trst_with_tlr = 1;
690 else if ((jtag_reset_config & RESET_TRST_PULLS_SRST) != 0
691 && !req_srst)
692 trst_with_tlr = 1;
693 else
694 new_trst = 1;
695 }
696
697 /* Maybe change TRST and/or SRST signal state */
698 if (jtag_srst != new_srst || jtag_trst != new_trst) {
699 int retval;
700
701 retval = interface_jtag_add_reset(new_trst, new_srst);
702 if (retval != ERROR_OK)
703 jtag_set_error(retval);
704 else
705 retval = jtag_execute_queue();
706
707 if (retval != ERROR_OK) {
708 LOG_ERROR("TRST/SRST error");
709 return;
710 }
711 }
712
713 /* SRST resets everything hooked up to that signal */
714 if (jtag_srst != new_srst) {
715 jtag_srst = new_srst;
716 if (jtag_srst) {
717 LOG_DEBUG("SRST line asserted");
718 if (adapter_nsrst_assert_width)
719 jtag_add_sleep(adapter_nsrst_assert_width * 1000);
720 } else {
721 LOG_DEBUG("SRST line released");
722 if (adapter_nsrst_delay)
723 jtag_add_sleep(adapter_nsrst_delay * 1000);
724 }
725 }
726
727 /* Maybe enter the JTAG TAP_RESET state ...
728 * - using only TMS, TCK, and the JTAG state machine
729 * - or else more directly, using TRST
730 *
731 * TAP_RESET should be invisible to non-debug parts of the system.
732 */
733 if (trst_with_tlr) {
734 LOG_DEBUG("JTAG reset with TLR instead of TRST");
735 jtag_add_tlr();
736
737 } else if (jtag_trst != new_trst) {
738 jtag_trst = new_trst;
739 if (jtag_trst) {
740 LOG_DEBUG("TRST line asserted");
741 tap_set_state(TAP_RESET);
742 if (jtag_ntrst_assert_width)
743 jtag_add_sleep(jtag_ntrst_assert_width * 1000);
744 } else {
745 LOG_DEBUG("TRST line released");
746 if (jtag_ntrst_delay)
747 jtag_add_sleep(jtag_ntrst_delay * 1000);
748
749 /* We just asserted nTRST, so we're now in TAP_RESET.
750 * Inform possible listeners about this, now that
751 * JTAG instructions and data can be shifted. This
752 * sequence must match jtag_add_tlr().
753 */
754 jtag_call_event_callbacks(JTAG_TRST_ASSERTED);
755 jtag_notify_event(JTAG_TRST_ASSERTED);
756 }
757 }
758 }
759
760 /* FIXME: name is misleading; we do not plan to "add" reset into jtag queue */
761 void jtag_add_reset(int req_tlr_or_trst, int req_srst)
762 {
763 int retval;
764 int trst_with_tlr = 0;
765 int new_srst = 0;
766 int new_trst = 0;
767
768 if (!jtag->reset) {
769 legacy_jtag_add_reset(req_tlr_or_trst, req_srst);
770 return;
771 }
772
773 /* Without SRST, we must use target-specific JTAG operations
774 * on each target; callers should not be requesting SRST when
775 * that signal doesn't exist.
776 *
777 * RESET_SRST_PULLS_TRST is a board or chip level quirk, which
778 * can kick in even if the JTAG adapter can't drive TRST.
779 */
780 if (req_srst) {
781 if (!(jtag_reset_config & RESET_HAS_SRST)) {
782 LOG_ERROR("BUG: can't assert SRST");
783 jtag_set_error(ERROR_FAIL);
784 return;
785 }
786 if ((jtag_reset_config & RESET_SRST_PULLS_TRST) != 0
787 && !req_tlr_or_trst) {
788 LOG_ERROR("BUG: can't assert only SRST");
789 jtag_set_error(ERROR_FAIL);
790 return;
791 }
792 new_srst = 1;
793 }
794
795 /* JTAG reset (entry to TAP_RESET state) can always be achieved
796 * using TCK and TMS; that may go through a TAP_{IR,DR}UPDATE
797 * state first. TRST accelerates it, and bypasses those states.
798 *
799 * RESET_TRST_PULLS_SRST is a board or chip level quirk, which
800 * can kick in even if the JTAG adapter can't drive SRST.
801 */
802 if (req_tlr_or_trst) {
803 if (!(jtag_reset_config & RESET_HAS_TRST))
804 trst_with_tlr = 1;
805 else if ((jtag_reset_config & RESET_TRST_PULLS_SRST) != 0
806 && !req_srst)
807 trst_with_tlr = 1;
808 else
809 new_trst = 1;
810 }
811
812 /* Maybe change TRST and/or SRST signal state */
813 if (jtag_srst != new_srst || jtag_trst != new_trst) {
814 /* guarantee jtag queue empty before changing reset status */
815 jtag_execute_queue();
816
817 retval = jtag->reset(new_trst, new_srst);
818 if (retval != ERROR_OK) {
819 jtag_set_error(retval);
820 LOG_ERROR("TRST/SRST error");
821 return;
822 }
823 }
824
825 /* SRST resets everything hooked up to that signal */
826 if (jtag_srst != new_srst) {
827 jtag_srst = new_srst;
828 if (jtag_srst) {
829 LOG_DEBUG("SRST line asserted");
830 if (adapter_nsrst_assert_width)
831 jtag_add_sleep(adapter_nsrst_assert_width * 1000);
832 } else {
833 LOG_DEBUG("SRST line released");
834 if (adapter_nsrst_delay)
835 jtag_add_sleep(adapter_nsrst_delay * 1000);
836 }
837 }
838
839 /* Maybe enter the JTAG TAP_RESET state ...
840 * - using only TMS, TCK, and the JTAG state machine
841 * - or else more directly, using TRST
842 *
843 * TAP_RESET should be invisible to non-debug parts of the system.
844 */
845 if (trst_with_tlr) {
846 LOG_DEBUG("JTAG reset with TLR instead of TRST");
847 jtag_add_tlr();
848 jtag_execute_queue();
849
850 } else if (jtag_trst != new_trst) {
851 jtag_trst = new_trst;
852 if (jtag_trst) {
853 LOG_DEBUG("TRST line asserted");
854 tap_set_state(TAP_RESET);
855 if (jtag_ntrst_assert_width)
856 jtag_add_sleep(jtag_ntrst_assert_width * 1000);
857 } else {
858 LOG_DEBUG("TRST line released");
859 if (jtag_ntrst_delay)
860 jtag_add_sleep(jtag_ntrst_delay * 1000);
861
862 /* We just asserted nTRST, so we're now in TAP_RESET.
863 * Inform possible listeners about this, now that
864 * JTAG instructions and data can be shifted. This
865 * sequence must match jtag_add_tlr().
866 */
867 jtag_call_event_callbacks(JTAG_TRST_ASSERTED);
868 jtag_notify_event(JTAG_TRST_ASSERTED);
869 }
870 }
871 }
872
873 void jtag_add_sleep(uint32_t us)
874 {
875 /** @todo Here, keep_alive() appears to be a layering violation!!! */
876 keep_alive();
877 jtag_set_error(interface_jtag_add_sleep(us));
878 }
879
880 static int jtag_check_value_inner(uint8_t *captured, uint8_t *in_check_value,
881 uint8_t *in_check_mask, int num_bits)
882 {
883 int retval = ERROR_OK;
884 int compare_failed;
885
886 if (in_check_mask)
887 compare_failed = buf_cmp_mask(captured, in_check_value, in_check_mask, num_bits);
888 else
889 compare_failed = buf_cmp(captured, in_check_value, num_bits);
890
891 if (compare_failed) {
892 char *captured_str, *in_check_value_str;
893 int bits = (num_bits > DEBUG_JTAG_IOZ) ? DEBUG_JTAG_IOZ : num_bits;
894
895 /* NOTE: we've lost diagnostic context here -- 'which tap' */
896
897 captured_str = buf_to_hex_str(captured, bits);
898 in_check_value_str = buf_to_hex_str(in_check_value, bits);
899
900 LOG_WARNING("Bad value '%s' captured during DR or IR scan:",
901 captured_str);
902 LOG_WARNING(" check_value: 0x%s", in_check_value_str);
903
904 free(captured_str);
905 free(in_check_value_str);
906
907 if (in_check_mask) {
908 char *in_check_mask_str;
909
910 in_check_mask_str = buf_to_hex_str(in_check_mask, bits);
911 LOG_WARNING(" check_mask: 0x%s", in_check_mask_str);
912 free(in_check_mask_str);
913 }
914
915 retval = ERROR_JTAG_QUEUE_FAILED;
916 }
917 return retval;
918 }
919
920 void jtag_check_value_mask(struct scan_field *field, uint8_t *value, uint8_t *mask)
921 {
922 assert(field->in_value);
923
924 if (!value) {
925 /* no checking to do */
926 return;
927 }
928
929 jtag_execute_queue_noclear();
930
931 int retval = jtag_check_value_inner(field->in_value, value, mask, field->num_bits);
932 jtag_set_error(retval);
933 }
934
935 int default_interface_jtag_execute_queue(void)
936 {
937 if (!jtag) {
938 LOG_ERROR("No JTAG interface configured yet. "
939 "Issue 'init' command in startup scripts "
940 "before communicating with targets.");
941 return ERROR_FAIL;
942 }
943
944 if (!transport_is_jtag()) {
945 /*
946 * FIXME: This should not happen!
947 * There could be old code that queues jtag commands with non jtag interfaces so, for
948 * the moment simply highlight it by log an error and return on empty execute_queue.
949 * We should fix it quitting with assert(0) because it is an internal error.
950 * The fix can be applied immediately after next release (v0.11.0 ?)
951 */
952 LOG_ERROR("JTAG API jtag_execute_queue() called on non JTAG interface");
953 if (!jtag->jtag_ops || !jtag->jtag_ops->execute_queue)
954 return ERROR_OK;
955 }
956
957 int result = jtag->jtag_ops->execute_queue();
958
959 struct jtag_command *cmd = jtag_command_queue;
960 while (debug_level >= LOG_LVL_DEBUG_IO && cmd) {
961 switch (cmd->type) {
962 case JTAG_SCAN:
963 LOG_DEBUG_IO("JTAG %s SCAN to %s",
964 cmd->cmd.scan->ir_scan ? "IR" : "DR",
965 tap_state_name(cmd->cmd.scan->end_state));
966 for (int i = 0; i < cmd->cmd.scan->num_fields; i++) {
967 struct scan_field *field = cmd->cmd.scan->fields + i;
968 if (field->out_value) {
969 char *str = buf_to_hex_str(field->out_value, field->num_bits);
970 LOG_DEBUG_IO(" %db out: %s", field->num_bits, str);
971 free(str);
972 }
973 if (field->in_value) {
974 char *str = buf_to_hex_str(field->in_value, field->num_bits);
975 LOG_DEBUG_IO(" %db in: %s", field->num_bits, str);
976 free(str);
977 }
978 }
979 break;
980 case JTAG_TLR_RESET:
981 LOG_DEBUG_IO("JTAG TLR RESET to %s",
982 tap_state_name(cmd->cmd.statemove->end_state));
983 break;
984 case JTAG_RUNTEST:
985 LOG_DEBUG_IO("JTAG RUNTEST %d cycles to %s",
986 cmd->cmd.runtest->num_cycles,
987 tap_state_name(cmd->cmd.runtest->end_state));
988 break;
989 case JTAG_RESET:
990 {
991 const char *reset_str[3] = {
992 "leave", "deassert", "assert"
993 };
994 LOG_DEBUG_IO("JTAG RESET %s TRST, %s SRST",
995 reset_str[cmd->cmd.reset->trst + 1],
996 reset_str[cmd->cmd.reset->srst + 1]);
997 }
998 break;
999 case JTAG_PATHMOVE:
1000 LOG_DEBUG_IO("JTAG PATHMOVE (TODO)");
1001 break;
1002 case JTAG_SLEEP:
1003 LOG_DEBUG_IO("JTAG SLEEP (TODO)");
1004 break;
1005 case JTAG_STABLECLOCKS:
1006 LOG_DEBUG_IO("JTAG STABLECLOCKS (TODO)");
1007 break;
1008 case JTAG_TMS:
1009 LOG_DEBUG_IO("JTAG TMS (TODO)");
1010 break;
1011 default:
1012 LOG_ERROR("Unknown JTAG command: %d", cmd->type);
1013 break;
1014 }
1015 cmd = cmd->next;
1016 }
1017
1018 return result;
1019 }
1020
1021 void jtag_execute_queue_noclear(void)
1022 {
1023 jtag_flush_queue_count++;
1024 jtag_set_error(interface_jtag_execute_queue());
1025
1026 if (jtag_flush_queue_sleep > 0) {
1027 /* For debug purposes it can be useful to test performance
1028 * or behavior when delaying after flushing the queue,
1029 * e.g. to simulate long roundtrip times.
1030 */
1031 usleep(jtag_flush_queue_sleep * 1000);
1032 }
1033 }
1034
1035 int jtag_get_flush_queue_count(void)
1036 {
1037 return jtag_flush_queue_count;
1038 }
1039
1040 int jtag_execute_queue(void)
1041 {
1042 jtag_execute_queue_noclear();
1043 return jtag_error_clear();
1044 }
1045
1046 static int jtag_reset_callback(enum jtag_event event, void *priv)
1047 {
1048 struct jtag_tap *tap = priv;
1049
1050 if (event == JTAG_TRST_ASSERTED) {
1051 tap->enabled = !tap->disabled_after_reset;
1052
1053 /* current instruction is either BYPASS or IDCODE */
1054 buf_set_ones(tap->cur_instr, tap->ir_length);
1055 tap->bypass = 1;
1056 }
1057
1058 return ERROR_OK;
1059 }
1060
1061 /* sleep at least us microseconds. When we sleep more than 1000ms we
1062 * do an alive sleep, i.e. keep GDB alive. Note that we could starve
1063 * GDB if we slept for <1000ms many times.
1064 */
1065 void jtag_sleep(uint32_t us)
1066 {
1067 if (us < 1000)
1068 usleep(us);
1069 else
1070 alive_sleep((us+999)/1000);
1071 }
1072
1073 #define JTAG_MAX_AUTO_TAPS 20
1074
1075 #define EXTRACT_MFG(X) (((X) & 0xffe) >> 1)
1076 #define EXTRACT_PART(X) (((X) & 0xffff000) >> 12)
1077 #define EXTRACT_VER(X) (((X) & 0xf0000000) >> 28)
1078
1079 /* A reserved manufacturer ID is used in END_OF_CHAIN_FLAG, so we
1080 * know that no valid TAP will have it as an IDCODE value.
1081 */
1082 #define END_OF_CHAIN_FLAG 0xffffffff
1083
1084 /* a larger IR length than we ever expect to autoprobe */
1085 #define JTAG_IRLEN_MAX 60
1086
1087 static int jtag_examine_chain_execute(uint8_t *idcode_buffer, unsigned num_idcode)
1088 {
1089 struct scan_field field = {
1090 .num_bits = num_idcode * 32,
1091 .out_value = idcode_buffer,
1092 .in_value = idcode_buffer,
1093 };
1094
1095 /* initialize to the end of chain ID value */
1096 for (unsigned i = 0; i < num_idcode; i++)
1097 buf_set_u32(idcode_buffer, i * 32, 32, END_OF_CHAIN_FLAG);
1098
1099 jtag_add_plain_dr_scan(field.num_bits, field.out_value, field.in_value, TAP_DRPAUSE);
1100 jtag_add_tlr();
1101 return jtag_execute_queue();
1102 }
1103
1104 static bool jtag_examine_chain_check(uint8_t *idcodes, unsigned count)
1105 {
1106 uint8_t zero_check = 0x0;
1107 uint8_t one_check = 0xff;
1108
1109 for (unsigned i = 0; i < count * 4; i++) {
1110 zero_check |= idcodes[i];
1111 one_check &= idcodes[i];
1112 }
1113
1114 /* if there wasn't a single non-zero bit or if all bits were one,
1115 * the scan is not valid. We wrote a mix of both values; either
1116 *
1117 * - There's a hardware issue (almost certainly):
1118 * + all-zeroes can mean a target stuck in JTAG reset
1119 * + all-ones tends to mean no target
1120 * - The scan chain is WAY longer than we can handle, *AND* either
1121 * + there are several hundreds of TAPs in bypass, or
1122 * + at least a few dozen TAPs all have an all-ones IDCODE
1123 */
1124 if (zero_check == 0x00 || one_check == 0xff) {
1125 LOG_ERROR("JTAG scan chain interrogation failed: all %s",
1126 (zero_check == 0x00) ? "zeroes" : "ones");
1127 LOG_ERROR("Check JTAG interface, timings, target power, etc.");
1128 return false;
1129 }
1130 return true;
1131 }
1132
1133 static void jtag_examine_chain_display(enum log_levels level, const char *msg,
1134 const char *name, uint32_t idcode)
1135 {
1136 log_printf_lf(level, __FILE__, __LINE__, __func__,
1137 "JTAG tap: %s %16.16s: 0x%08x "
1138 "(mfg: 0x%3.3x (%s), part: 0x%4.4x, ver: 0x%1.1x)",
1139 name, msg,
1140 (unsigned int)idcode,
1141 (unsigned int)EXTRACT_MFG(idcode),
1142 jep106_manufacturer(EXTRACT_MFG(idcode)),
1143 (unsigned int)EXTRACT_PART(idcode),
1144 (unsigned int)EXTRACT_VER(idcode));
1145 }
1146
1147 static bool jtag_idcode_is_final(uint32_t idcode)
1148 {
1149 /*
1150 * Some devices, such as AVR8, will output all 1's instead
1151 * of TDI input value at end of chain. Allow those values
1152 * instead of failing.
1153 */
1154 return idcode == END_OF_CHAIN_FLAG;
1155 }
1156
1157 /**
1158 * This helper checks that remaining bits in the examined chain data are
1159 * all as expected, but a single JTAG device requires only 64 bits to be
1160 * read back correctly. This can help identify and diagnose problems
1161 * with the JTAG chain earlier, gives more helpful/explicit error messages.
1162 * Returns TRUE iff garbage was found.
1163 */
1164 static bool jtag_examine_chain_end(uint8_t *idcodes, unsigned count, unsigned max)
1165 {
1166 bool triggered = false;
1167 for (; count < max - 31; count += 32) {
1168 uint32_t idcode = buf_get_u32(idcodes, count, 32);
1169
1170 /* do not trigger the warning if the data looks good */
1171 if (jtag_idcode_is_final(idcode))
1172 continue;
1173 LOG_WARNING("Unexpected idcode after end of chain: %d 0x%08x",
1174 count, (unsigned int)idcode);
1175 triggered = true;
1176 }
1177 return triggered;
1178 }
1179
1180 static bool jtag_examine_chain_match_tap(const struct jtag_tap *tap)
1181 {
1182
1183 if (tap->expected_ids_cnt == 0 || !tap->hasidcode)
1184 return true;
1185
1186 /* optionally ignore the JTAG version field - bits 28-31 of IDCODE */
1187 uint32_t mask = tap->ignore_version ? ~(0xfU << 28) : ~0U;
1188 uint32_t idcode = tap->idcode & mask;
1189
1190 /* Loop over the expected identification codes and test for a match */
1191 for (unsigned ii = 0; ii < tap->expected_ids_cnt; ii++) {
1192 uint32_t expected = tap->expected_ids[ii] & mask;
1193
1194 if (idcode == expected)
1195 return true;
1196
1197 /* treat "-expected-id 0" as a "don't-warn" wildcard */
1198 if (tap->expected_ids[ii] == 0)
1199 return true;
1200 }
1201
1202 /* If none of the expected ids matched, warn */
1203 jtag_examine_chain_display(LOG_LVL_WARNING, "UNEXPECTED",
1204 tap->dotted_name, tap->idcode);
1205 for (unsigned ii = 0; ii < tap->expected_ids_cnt; ii++) {
1206 char msg[32];
1207
1208 snprintf(msg, sizeof(msg), "expected %u of %u", ii + 1, tap->expected_ids_cnt);
1209 jtag_examine_chain_display(LOG_LVL_ERROR, msg,
1210 tap->dotted_name, tap->expected_ids[ii]);
1211 }
1212 return false;
1213 }
1214
1215 /* Try to examine chain layout according to IEEE 1149.1 §12
1216 * This is called a "blind interrogation" of the scan chain.
1217 */
1218 static int jtag_examine_chain(void)
1219 {
1220 int retval;
1221 unsigned max_taps = jtag_tap_count();
1222
1223 /* Autoprobe up to this many. */
1224 if (max_taps < JTAG_MAX_AUTO_TAPS)
1225 max_taps = JTAG_MAX_AUTO_TAPS;
1226
1227 /* Add room for end-of-chain marker. */
1228 max_taps++;
1229
1230 uint8_t *idcode_buffer = calloc(4, max_taps);
1231 if (!idcode_buffer)
1232 return ERROR_JTAG_INIT_FAILED;
1233
1234 /* DR scan to collect BYPASS or IDCODE register contents.
1235 * Then make sure the scan data has both ones and zeroes.
1236 */
1237 LOG_DEBUG("DR scan interrogation for IDCODE/BYPASS");
1238 retval = jtag_examine_chain_execute(idcode_buffer, max_taps);
1239 if (retval != ERROR_OK)
1240 goto out;
1241 if (!jtag_examine_chain_check(idcode_buffer, max_taps)) {
1242 retval = ERROR_JTAG_INIT_FAILED;
1243 goto out;
1244 }
1245
1246 /* Point at the 1st predefined tap, if any */
1247 struct jtag_tap *tap = jtag_tap_next_enabled(NULL);
1248
1249 unsigned bit_count = 0;
1250 unsigned autocount = 0;
1251 for (unsigned i = 0; i < max_taps; i++) {
1252 assert(bit_count < max_taps * 32);
1253 uint32_t idcode = buf_get_u32(idcode_buffer, bit_count, 32);
1254
1255 /* No predefined TAP? Auto-probe. */
1256 if (!tap) {
1257 /* Is there another TAP? */
1258 if (jtag_idcode_is_final(idcode))
1259 break;
1260
1261 /* Default everything in this TAP except IR length.
1262 *
1263 * REVISIT create a jtag_alloc(chip, tap) routine, and
1264 * share it with jim_newtap_cmd().
1265 */
1266 tap = calloc(1, sizeof(*tap));
1267 if (!tap) {
1268 retval = ERROR_FAIL;
1269 goto out;
1270 }
1271
1272 tap->chip = alloc_printf("auto%u", autocount++);
1273 tap->tapname = strdup("tap");
1274 tap->dotted_name = alloc_printf("%s.%s", tap->chip, tap->tapname);
1275
1276 tap->ir_length = 0; /* ... signifying irlen autoprobe */
1277 tap->ir_capture_mask = 0x03;
1278 tap->ir_capture_value = 0x01;
1279
1280 tap->enabled = true;
1281
1282 jtag_tap_init(tap);
1283 }
1284
1285 if ((idcode & 1) == 0) {
1286 /* Zero for LSB indicates a device in bypass */
1287 LOG_INFO("TAP %s does not have valid IDCODE (idcode=0x%" PRIx32 ")",
1288 tap->dotted_name, idcode);
1289 tap->hasidcode = false;
1290 tap->idcode = 0;
1291
1292 bit_count += 1;
1293 } else {
1294 /* Friendly devices support IDCODE */
1295 tap->hasidcode = true;
1296 tap->idcode = idcode;
1297 jtag_examine_chain_display(LOG_LVL_INFO, "tap/device found", tap->dotted_name, idcode);
1298
1299 bit_count += 32;
1300 }
1301
1302 /* ensure the TAP ID matches what was expected */
1303 if (!jtag_examine_chain_match_tap(tap))
1304 retval = ERROR_JTAG_INIT_SOFT_FAIL;
1305
1306 tap = jtag_tap_next_enabled(tap);
1307 }
1308
1309 /* After those IDCODE or BYPASS register values should be
1310 * only the data we fed into the scan chain.
1311 */
1312 if (jtag_examine_chain_end(idcode_buffer, bit_count, max_taps * 32)) {
1313 LOG_ERROR("double-check your JTAG setup (interface, speed, ...)");
1314 retval = ERROR_JTAG_INIT_FAILED;
1315 goto out;
1316 }
1317
1318 /* Return success or, for backwards compatibility if only
1319 * some IDCODE values mismatched, a soft/continuable fault.
1320 */
1321 out:
1322 free(idcode_buffer);
1323 return retval;
1324 }
1325
1326 /*
1327 * Validate the date loaded by entry to the Capture-IR state, to help
1328 * find errors related to scan chain configuration (wrong IR lengths)
1329 * or communication.
1330 *
1331 * Entry state can be anything. On non-error exit, all TAPs are in
1332 * bypass mode. On error exits, the scan chain is reset.
1333 */
1334 static int jtag_validate_ircapture(void)
1335 {
1336 struct jtag_tap *tap;
1337 uint8_t *ir_test = NULL;
1338 struct scan_field field;
1339 int chain_pos = 0;
1340 int retval;
1341
1342 /* when autoprobing, accommodate huge IR lengths */
1343 int total_ir_length = 0;
1344 for (tap = jtag_tap_next_enabled(NULL); tap; tap = jtag_tap_next_enabled(tap)) {
1345 if (tap->ir_length == 0)
1346 total_ir_length += JTAG_IRLEN_MAX;
1347 else
1348 total_ir_length += tap->ir_length;
1349 }
1350
1351 /* increase length to add 2 bit sentinel after scan */
1352 total_ir_length += 2;
1353
1354 ir_test = malloc(DIV_ROUND_UP(total_ir_length, 8));
1355 if (!ir_test)
1356 return ERROR_FAIL;
1357
1358 /* after this scan, all TAPs will capture BYPASS instructions */
1359 buf_set_ones(ir_test, total_ir_length);
1360
1361 field.num_bits = total_ir_length;
1362 field.out_value = ir_test;
1363 field.in_value = ir_test;
1364
1365 jtag_add_plain_ir_scan(field.num_bits, field.out_value, field.in_value, TAP_IDLE);
1366
1367 LOG_DEBUG("IR capture validation scan");
1368 retval = jtag_execute_queue();
1369 if (retval != ERROR_OK)
1370 goto done;
1371
1372 tap = NULL;
1373 chain_pos = 0;
1374
1375 for (;; ) {
1376 tap = jtag_tap_next_enabled(tap);
1377 if (!tap)
1378 break;
1379
1380 /* If we're autoprobing, guess IR lengths. They must be at
1381 * least two bits. Guessing will fail if (a) any TAP does
1382 * not conform to the JTAG spec; or (b) when the upper bits
1383 * captured from some conforming TAP are nonzero. Or if
1384 * (c) an IR length is longer than JTAG_IRLEN_MAX bits,
1385 * an implementation limit, which could someday be raised.
1386 *
1387 * REVISIT optimization: if there's a *single* TAP we can
1388 * lift restrictions (a) and (b) by scanning a recognizable
1389 * pattern before the all-ones BYPASS. Check for where the
1390 * pattern starts in the result, instead of an 0...01 value.
1391 *
1392 * REVISIT alternative approach: escape to some tcl code
1393 * which could provide more knowledge, based on IDCODE; and
1394 * only guess when that has no success.
1395 */
1396 if (tap->ir_length == 0) {
1397 tap->ir_length = 2;
1398 while (buf_get_u64(ir_test, chain_pos, tap->ir_length + 1) == 1
1399 && tap->ir_length < JTAG_IRLEN_MAX) {
1400 tap->ir_length++;
1401 }
1402 LOG_WARNING("AUTO %s - use \"jtag newtap %s %s -irlen %d "
1403 "-expected-id 0x%08" PRIx32 "\"",
1404 tap->dotted_name, tap->chip, tap->tapname, tap->ir_length, tap->idcode);
1405 }
1406
1407 /* Validate the two LSBs, which must be 01 per JTAG spec.
1408 *
1409 * Or ... more bits could be provided by TAP declaration.
1410 * Plus, some taps (notably in i.MX series chips) violate
1411 * this part of the JTAG spec, so their capture mask/value
1412 * attributes might disable this test.
1413 */
1414 uint64_t val = buf_get_u64(ir_test, chain_pos, tap->ir_length);
1415 if ((val & tap->ir_capture_mask) != tap->ir_capture_value) {
1416 LOG_ERROR("%s: IR capture error; saw 0x%0*" PRIx64 " not 0x%0*" PRIx32,
1417 jtag_tap_name(tap),
1418 (tap->ir_length + 7) / tap->ir_length, val,
1419 (tap->ir_length + 7) / tap->ir_length, tap->ir_capture_value);
1420
1421 retval = ERROR_JTAG_INIT_FAILED;
1422 goto done;
1423 }
1424 LOG_DEBUG("%s: IR capture 0x%0*" PRIx64, jtag_tap_name(tap),
1425 (tap->ir_length + 7) / tap->ir_length, val);
1426 chain_pos += tap->ir_length;
1427 }
1428
1429 /* verify the '11' sentinel we wrote is returned at the end */
1430 uint64_t val = buf_get_u64(ir_test, chain_pos, 2);
1431 if (val != 0x3) {
1432 char *cbuf = buf_to_hex_str(ir_test, total_ir_length);
1433
1434 LOG_ERROR("IR capture error at bit %d, saw 0x%s not 0x...3",
1435 chain_pos, cbuf);
1436 free(cbuf);
1437 retval = ERROR_JTAG_INIT_FAILED;
1438 }
1439
1440 done:
1441 free(ir_test);
1442 if (retval != ERROR_OK) {
1443 jtag_add_tlr();
1444 jtag_execute_queue();
1445 }
1446 return retval;
1447 }
1448
1449 void jtag_tap_init(struct jtag_tap *tap)
1450 {
1451 unsigned ir_len_bits;
1452 unsigned ir_len_bytes;
1453
1454 /* if we're autoprobing, cope with potentially huge ir_length */
1455 ir_len_bits = tap->ir_length ? tap->ir_length : JTAG_IRLEN_MAX;
1456 ir_len_bytes = DIV_ROUND_UP(ir_len_bits, 8);
1457
1458 tap->expected = calloc(1, ir_len_bytes);
1459 tap->expected_mask = calloc(1, ir_len_bytes);
1460 tap->cur_instr = malloc(ir_len_bytes);
1461
1462 /** @todo cope better with ir_length bigger than 32 bits */
1463 if (ir_len_bits > 32)
1464 ir_len_bits = 32;
1465
1466 buf_set_u32(tap->expected, 0, ir_len_bits, tap->ir_capture_value);
1467 buf_set_u32(tap->expected_mask, 0, ir_len_bits, tap->ir_capture_mask);
1468
1469 /* TAP will be in bypass mode after jtag_validate_ircapture() */
1470 tap->bypass = 1;
1471 buf_set_ones(tap->cur_instr, tap->ir_length);
1472
1473 /* register the reset callback for the TAP */
1474 jtag_register_event_callback(&jtag_reset_callback, tap);
1475 jtag_tap_add(tap);
1476
1477 LOG_DEBUG("Created Tap: %s @ abs position %d, "
1478 "irlen %d, capture: 0x%x mask: 0x%x", tap->dotted_name,
1479 tap->abs_chain_position, tap->ir_length,
1480 (unsigned) tap->ir_capture_value,
1481 (unsigned) tap->ir_capture_mask);
1482 }
1483
1484 void jtag_tap_free(struct jtag_tap *tap)
1485 {
1486 jtag_unregister_event_callback(&jtag_reset_callback, tap);
1487
1488 struct jtag_tap_event_action *jteap = tap->event_action;
1489 while (jteap) {
1490 struct jtag_tap_event_action *next = jteap->next;
1491 Jim_DecrRefCount(jteap->interp, jteap->body);
1492 free(jteap);
1493 jteap = next;
1494 }
1495
1496 free(tap->expected);
1497 free(tap->expected_mask);
1498 free(tap->expected_ids);
1499 free(tap->cur_instr);
1500 free(tap->chip);
1501 free(tap->tapname);
1502 free(tap->dotted_name);
1503 free(tap);
1504 }
1505
1506 /**
1507 * Do low-level setup like initializing registers, output signals,
1508 * and clocking.
1509 */
1510 int adapter_init(struct command_context *cmd_ctx)
1511 {
1512 if (jtag)
1513 return ERROR_OK;
1514
1515 if (!adapter_driver) {
1516 /* nothing was previously specified by "adapter driver" command */
1517 LOG_ERROR("Debug Adapter has to be specified, "
1518 "see \"adapter driver\" command");
1519 return ERROR_JTAG_INVALID_INTERFACE;
1520 }
1521
1522 int retval;
1523 retval = adapter_driver->init();
1524 if (retval != ERROR_OK)
1525 return retval;
1526 jtag = adapter_driver;
1527
1528 if (!jtag->speed) {
1529 LOG_INFO("This adapter doesn't support configurable speed");
1530 return ERROR_OK;
1531 }
1532
1533 if (clock_mode == CLOCK_MODE_UNSELECTED) {
1534 LOG_ERROR("An adapter speed is not selected in the init script."
1535 " Insert a call to \"adapter speed\" or \"jtag_rclk\" to proceed.");
1536 return ERROR_JTAG_INIT_FAILED;
1537 }
1538
1539 int requested_khz = jtag_get_speed_khz();
1540 int actual_khz = requested_khz;
1541 int jtag_speed_var = 0;
1542 retval = jtag_get_speed(&jtag_speed_var);
1543 if (retval != ERROR_OK)
1544 return retval;
1545 retval = jtag->speed(jtag_speed_var);
1546 if (retval != ERROR_OK)
1547 return retval;
1548 retval = jtag_get_speed_readable(&actual_khz);
1549 if (retval != ERROR_OK)
1550 LOG_INFO("adapter-specific clock speed value %d", jtag_speed_var);
1551 else if (actual_khz) {
1552 /* Adaptive clocking -- JTAG-specific */
1553 if ((clock_mode == CLOCK_MODE_RCLK)
1554 || ((clock_mode == CLOCK_MODE_KHZ) && !requested_khz)) {
1555 LOG_INFO("RCLK (adaptive clock speed) not supported - fallback to %d kHz"
1556 , actual_khz);
1557 } else
1558 LOG_INFO("clock speed %d kHz", actual_khz);
1559 } else
1560 LOG_INFO("RCLK (adaptive clock speed)");
1561
1562 return ERROR_OK;
1563 }
1564
1565 int jtag_init_inner(struct command_context *cmd_ctx)
1566 {
1567 struct jtag_tap *tap;
1568 int retval;
1569 bool issue_setup = true;
1570
1571 LOG_DEBUG("Init JTAG chain");
1572
1573 tap = jtag_tap_next_enabled(NULL);
1574 if (!tap) {
1575 /* Once JTAG itself is properly set up, and the scan chain
1576 * isn't absurdly large, IDCODE autoprobe should work fine.
1577 *
1578 * But ... IRLEN autoprobe can fail even on systems which
1579 * are fully conformant to JTAG. Also, JTAG setup can be
1580 * quite finicky on some systems.
1581 *
1582 * REVISIT: if TAP autoprobe works OK, then in many cases
1583 * we could escape to tcl code and set up targets based on
1584 * the TAP's IDCODE values.
1585 */
1586 LOG_WARNING("There are no enabled taps. "
1587 "AUTO PROBING MIGHT NOT WORK!!");
1588
1589 /* REVISIT default clock will often be too fast ... */
1590 }
1591
1592 jtag_add_tlr();
1593 retval = jtag_execute_queue();
1594 if (retval != ERROR_OK)
1595 return retval;
1596
1597 /* Examine DR values first. This discovers problems which will
1598 * prevent communication ... hardware issues like TDO stuck, or
1599 * configuring the wrong number of (enabled) TAPs.
1600 */
1601 retval = jtag_examine_chain();
1602 switch (retval) {
1603 case ERROR_OK:
1604 /* complete success */
1605 break;
1606 default:
1607 /* For backward compatibility reasons, try coping with
1608 * configuration errors involving only ID mismatches.
1609 * We might be able to talk to the devices.
1610 *
1611 * Also the device might be powered down during startup.
1612 *
1613 * After OpenOCD starts, we can try to power on the device
1614 * and run a reset.
1615 */
1616 LOG_ERROR("Trying to use configured scan chain anyway...");
1617 issue_setup = false;
1618 break;
1619 }
1620
1621 /* Now look at IR values. Problems here will prevent real
1622 * communication. They mostly mean that the IR length is
1623 * wrong ... or that the IR capture value is wrong. (The
1624 * latter is uncommon, but easily worked around: provide
1625 * ircapture/irmask values during TAP setup.)
1626 */
1627 retval = jtag_validate_ircapture();
1628 if (retval != ERROR_OK) {
1629 /* The target might be powered down. The user
1630 * can power it up and reset it after firing
1631 * up OpenOCD.
1632 */
1633 issue_setup = false;
1634 }
1635
1636 if (issue_setup)
1637 jtag_notify_event(JTAG_TAP_EVENT_SETUP);
1638 else
1639 LOG_WARNING("Bypassing JTAG setup events due to errors");
1640
1641
1642 return ERROR_OK;
1643 }
1644
1645 int adapter_quit(void)
1646 {
1647 if (jtag && jtag->quit) {
1648 /* close the JTAG interface */
1649 int result = jtag->quit();
1650 if (result != ERROR_OK)
1651 LOG_ERROR("failed: %d", result);
1652 }
1653
1654 struct jtag_tap *t = jtag_all_taps();
1655 while (t) {
1656 struct jtag_tap *n = t->next_tap;
1657 jtag_tap_free(t);
1658 t = n;
1659 }
1660
1661 return ERROR_OK;
1662 }
1663
1664 int swd_init_reset(struct command_context *cmd_ctx)
1665 {
1666 int retval, retval1;
1667
1668 retval = adapter_init(cmd_ctx);
1669 if (retval != ERROR_OK)
1670 return retval;
1671
1672 LOG_DEBUG("Initializing with hard SRST reset");
1673
1674 if (jtag_reset_config & RESET_HAS_SRST)
1675 retval = adapter_system_reset(1);
1676 retval1 = adapter_system_reset(0);
1677
1678 return (retval == ERROR_OK) ? retval1 : retval;
1679 }
1680
1681 int jtag_init_reset(struct command_context *cmd_ctx)
1682 {
1683 int retval = adapter_init(cmd_ctx);
1684 if (retval != ERROR_OK)
1685 return retval;
1686
1687 LOG_DEBUG("Initializing with hard TRST+SRST reset");
1688
1689 /*
1690 * This procedure is used by default when OpenOCD triggers a reset.
1691 * It's now done through an overridable Tcl "init_reset" wrapper.
1692 *
1693 * This started out as a more powerful "get JTAG working" reset than
1694 * jtag_init_inner(), applying TRST because some chips won't activate
1695 * JTAG without a TRST cycle (presumed to be async, though some of
1696 * those chips synchronize JTAG activation using TCK).
1697 *
1698 * But some chips only activate JTAG as part of an SRST cycle; SRST
1699 * got mixed in. So it became a hard reset routine, which got used
1700 * in more places, and which coped with JTAG reset being forced as
1701 * part of SRST (srst_pulls_trst).
1702 *
1703 * And even more corner cases started to surface: TRST and/or SRST
1704 * assertion timings matter; some chips need other JTAG operations;
1705 * TRST/SRST sequences can need to be different from these, etc.
1706 *
1707 * Systems should override that wrapper to support system-specific
1708 * requirements that this not-fully-generic code doesn't handle.
1709 *
1710 * REVISIT once Tcl code can read the reset_config modes, this won't
1711 * need to be a C routine at all...
1712 */
1713 if (jtag_reset_config & RESET_HAS_SRST) {
1714 jtag_add_reset(1, 1);
1715 if ((jtag_reset_config & RESET_SRST_PULLS_TRST) == 0)
1716 jtag_add_reset(0, 1);
1717 } else {
1718 jtag_add_reset(1, 0); /* TAP_RESET, using TMS+TCK or TRST */
1719 }
1720
1721 /* some targets enable us to connect with srst asserted */
1722 if (jtag_reset_config & RESET_CNCT_UNDER_SRST) {
1723 if (jtag_reset_config & RESET_SRST_NO_GATING)
1724 jtag_add_reset(0, 1);
1725 else {
1726 LOG_WARNING("\'srst_nogate\' reset_config option is required");
1727 jtag_add_reset(0, 0);
1728 }
1729 } else
1730 jtag_add_reset(0, 0);
1731 retval = jtag_execute_queue();
1732 if (retval != ERROR_OK)
1733 return retval;
1734
1735 /* Check that we can communication on the JTAG chain + eventually we want to
1736 * be able to perform enumeration only after OpenOCD has started
1737 * telnet and GDB server
1738 *
1739 * That would allow users to more easily perform any magic they need to before
1740 * reset happens.
1741 */
1742 return jtag_init_inner(cmd_ctx);
1743 }
1744
1745 int jtag_init(struct command_context *cmd_ctx)
1746 {
1747 int retval = adapter_init(cmd_ctx);
1748 if (retval != ERROR_OK)
1749 return retval;
1750
1751 /* guard against oddball hardware: force resets to be inactive */
1752 jtag_add_reset(0, 0);
1753
1754 /* some targets enable us to connect with srst asserted */
1755 if (jtag_reset_config & RESET_CNCT_UNDER_SRST) {
1756 if (jtag_reset_config & RESET_SRST_NO_GATING)
1757 jtag_add_reset(0, 1);
1758 else
1759 LOG_WARNING("\'srst_nogate\' reset_config option is required");
1760 }
1761 retval = jtag_execute_queue();
1762 if (retval != ERROR_OK)
1763 return retval;
1764
1765 if (Jim_Eval_Named(cmd_ctx->interp, "jtag_init", __FILE__, __LINE__) != JIM_OK)
1766 return ERROR_FAIL;
1767
1768 return ERROR_OK;
1769 }
1770
1771 unsigned jtag_get_speed_khz(void)
1772 {
1773 return speed_khz;
1774 }
1775
1776 static int adapter_khz_to_speed(unsigned khz, int *speed)
1777 {
1778 LOG_DEBUG("convert khz to interface specific speed value");
1779 speed_khz = khz;
1780 if (!jtag)
1781 return ERROR_OK;
1782 LOG_DEBUG("have interface set up");
1783 if (!jtag->khz) {
1784 LOG_ERROR("Translation from khz to jtag_speed not implemented");
1785 return ERROR_FAIL;
1786 }
1787 int speed_div1;
1788 int retval = jtag->khz(jtag_get_speed_khz(), &speed_div1);
1789 if (retval != ERROR_OK)
1790 return retval;
1791 *speed = speed_div1;
1792 return ERROR_OK;
1793 }
1794
1795 static int jtag_rclk_to_speed(unsigned fallback_speed_khz, int *speed)
1796 {
1797 int retval = adapter_khz_to_speed(0, speed);
1798 if ((retval != ERROR_OK) && fallback_speed_khz) {
1799 LOG_DEBUG("trying fallback speed...");
1800 retval = adapter_khz_to_speed(fallback_speed_khz, speed);
1801 }
1802 return retval;
1803 }
1804
1805 static int jtag_set_speed(int speed)
1806 {
1807 jtag_speed = speed;
1808 /* this command can be called during CONFIG,
1809 * in which case jtag isn't initialized */
1810 return jtag ? jtag->speed(speed) : ERROR_OK;
1811 }
1812
1813 int jtag_config_khz(unsigned khz)
1814 {
1815 LOG_DEBUG("handle jtag khz");
1816 clock_mode = CLOCK_MODE_KHZ;
1817 int speed = 0;
1818 int retval = adapter_khz_to_speed(khz, &speed);
1819 return (retval != ERROR_OK) ? retval : jtag_set_speed(speed);
1820 }
1821
1822 int jtag_config_rclk(unsigned fallback_speed_khz)
1823 {
1824 LOG_DEBUG("handle jtag rclk");
1825 clock_mode = CLOCK_MODE_RCLK;
1826 rclk_fallback_speed_khz = fallback_speed_khz;
1827 int speed = 0;
1828 int retval = jtag_rclk_to_speed(fallback_speed_khz, &speed);
1829 return (retval != ERROR_OK) ? retval : jtag_set_speed(speed);
1830 }
1831
1832 int jtag_get_speed(int *speed)
1833 {
1834 switch (clock_mode) {
1835 case CLOCK_MODE_KHZ:
1836 adapter_khz_to_speed(jtag_get_speed_khz(), speed);
1837 break;
1838 case CLOCK_MODE_RCLK:
1839 jtag_rclk_to_speed(rclk_fallback_speed_khz, speed);
1840 break;
1841 default:
1842 LOG_ERROR("BUG: unknown jtag clock mode");
1843 return ERROR_FAIL;
1844 }
1845 return ERROR_OK;
1846 }
1847
1848 int jtag_get_speed_readable(int *khz)
1849 {
1850 int jtag_speed_var = 0;
1851 int retval = jtag_get_speed(&jtag_speed_var);
1852 if (retval != ERROR_OK)
1853 return retval;
1854 if (!jtag)
1855 return ERROR_OK;
1856 if (!jtag->speed_div) {
1857 LOG_ERROR("Translation from jtag_speed to khz not implemented");
1858 return ERROR_FAIL;
1859 }
1860 return jtag->speed_div(jtag_speed_var, khz);
1861 }
1862
1863 void jtag_set_verify(bool enable)
1864 {
1865 jtag_verify = enable;
1866 }
1867
1868 bool jtag_will_verify(void)
1869 {
1870 return jtag_verify;
1871 }
1872
1873 void jtag_set_verify_capture_ir(bool enable)
1874 {
1875 jtag_verify_capture_ir = enable;
1876 }
1877
1878 bool jtag_will_verify_capture_ir(void)
1879 {
1880 return jtag_verify_capture_ir;
1881 }
1882
1883 int jtag_power_dropout(int *dropout)
1884 {
1885 if (!jtag) {
1886 /* TODO: as the jtag interface is not valid all
1887 * we can do at the moment is exit OpenOCD */
1888 LOG_ERROR("No Valid JTAG Interface Configured.");
1889 exit(-1);
1890 }
1891 if (jtag->power_dropout)
1892 return jtag->power_dropout(dropout);
1893
1894 *dropout = 0; /* by default we can't detect power dropout */
1895 return ERROR_OK;
1896 }
1897
1898 int jtag_srst_asserted(int *srst_asserted)
1899 {
1900 if (jtag->srst_asserted)
1901 return jtag->srst_asserted(srst_asserted);
1902
1903 *srst_asserted = 0; /* by default we can't detect srst asserted */
1904 return ERROR_OK;
1905 }
1906
1907 enum reset_types jtag_get_reset_config(void)
1908 {
1909 return jtag_reset_config;
1910 }
1911 void jtag_set_reset_config(enum reset_types type)
1912 {
1913 jtag_reset_config = type;
1914 }
1915
1916 int jtag_get_trst(void)
1917 {
1918 return jtag_trst == 1;
1919 }
1920 int jtag_get_srst(void)
1921 {
1922 return jtag_srst == 1;
1923 }
1924
1925 void jtag_set_nsrst_delay(unsigned delay)
1926 {
1927 adapter_nsrst_delay = delay;
1928 }
1929 unsigned jtag_get_nsrst_delay(void)
1930 {
1931 return adapter_nsrst_delay;
1932 }
1933 void jtag_set_ntrst_delay(unsigned delay)
1934 {
1935 jtag_ntrst_delay = delay;
1936 }
1937 unsigned jtag_get_ntrst_delay(void)
1938 {
1939 return jtag_ntrst_delay;
1940 }
1941
1942
1943 void jtag_set_nsrst_assert_width(unsigned delay)
1944 {
1945 adapter_nsrst_assert_width = delay;
1946 }
1947 unsigned jtag_get_nsrst_assert_width(void)
1948 {
1949 return adapter_nsrst_assert_width;
1950 }
1951 void jtag_set_ntrst_assert_width(unsigned delay)
1952 {
1953 jtag_ntrst_assert_width = delay;
1954 }
1955 unsigned jtag_get_ntrst_assert_width(void)
1956 {
1957 return jtag_ntrst_assert_width;
1958 }
1959
1960 static int jtag_select(struct command_context *ctx)
1961 {
1962 int retval;
1963
1964 /* NOTE: interface init must already have been done.
1965 * That works with only C code ... no Tcl glue required.
1966 */
1967
1968 retval = jtag_register_commands(ctx);
1969
1970 if (retval != ERROR_OK)
1971 return retval;
1972
1973 retval = svf_register_commands(ctx);
1974
1975 if (retval != ERROR_OK)
1976 return retval;
1977
1978 retval = xsvf_register_commands(ctx);
1979
1980 if (retval != ERROR_OK)
1981 return retval;
1982
1983 return ipdbg_register_commands(ctx);
1984 }
1985
1986 static struct transport jtag_transport = {
1987 .name = "jtag",
1988 .select = jtag_select,
1989 .init = jtag_init,
1990 };
1991
1992 static void jtag_constructor(void) __attribute__((constructor));
1993 static void jtag_constructor(void)
1994 {
1995 transport_register(&jtag_transport);
1996 }
1997
1998 /** Returns true if the current debug session
1999 * is using JTAG as its transport.
2000 */
2001 bool transport_is_jtag(void)
2002 {
2003 return get_current_transport() == &jtag_transport;
2004 }
2005
2006 int adapter_resets(int trst, int srst)
2007 {
2008 if (!get_current_transport()) {
2009 LOG_ERROR("transport is not selected");
2010 return ERROR_FAIL;
2011 }
2012
2013 if (transport_is_jtag()) {
2014 if (srst == SRST_ASSERT && !(jtag_reset_config & RESET_HAS_SRST)) {
2015 LOG_ERROR("adapter has no srst signal");
2016 return ERROR_FAIL;
2017 }
2018
2019 /* adapters without trst signal will eventually use tlr sequence */
2020 jtag_add_reset(trst, srst);
2021 /*
2022 * The jtag queue is still used for reset by some adapter. Flush it!
2023 * FIXME: To be removed when all adapter drivers will be updated!
2024 */
2025 jtag_execute_queue();
2026 return ERROR_OK;
2027 } else if (transport_is_swd() || transport_is_hla() ||
2028 transport_is_dapdirect_swd() || transport_is_dapdirect_jtag() ||
2029 transport_is_swim()) {
2030 if (trst == TRST_ASSERT) {
2031 LOG_ERROR("transport %s has no trst signal",
2032 get_current_transport()->name);
2033 return ERROR_FAIL;
2034 }
2035
2036 if (srst == SRST_ASSERT && !(jtag_reset_config & RESET_HAS_SRST)) {
2037 LOG_ERROR("adapter has no srst signal");
2038 return ERROR_FAIL;
2039 }
2040 adapter_system_reset(srst);
2041 return ERROR_OK;
2042 }
2043
2044 if (trst == TRST_DEASSERT && srst == SRST_DEASSERT)
2045 return ERROR_OK;
2046
2047 LOG_ERROR("reset is not supported on transport %s",
2048 get_current_transport()->name);
2049
2050 return ERROR_FAIL;
2051 }
2052
2053 int adapter_assert_reset(void)
2054 {
2055 if (transport_is_jtag()) {
2056 if (jtag_reset_config & RESET_SRST_PULLS_TRST)
2057 jtag_add_reset(1, 1);
2058 else
2059 jtag_add_reset(0, 1);
2060 return ERROR_OK;
2061 } else if (transport_is_swd() || transport_is_hla() ||
2062 transport_is_dapdirect_jtag() || transport_is_dapdirect_swd() ||
2063 transport_is_swim())
2064 return adapter_system_reset(1);
2065 else if (get_current_transport())
2066 LOG_ERROR("reset is not supported on %s",
2067 get_current_transport()->name);
2068 else
2069 LOG_ERROR("transport is not selected");
2070 return ERROR_FAIL;
2071 }
2072
2073 int adapter_deassert_reset(void)
2074 {
2075 if (transport_is_jtag()) {
2076 jtag_add_reset(0, 0);
2077 return ERROR_OK;
2078 } else if (transport_is_swd() || transport_is_hla() ||
2079 transport_is_dapdirect_jtag() || transport_is_dapdirect_swd() ||
2080 transport_is_swim())
2081 return adapter_system_reset(0);
2082 else if (get_current_transport())
2083 LOG_ERROR("reset is not supported on %s",
2084 get_current_transport()->name);
2085 else
2086 LOG_ERROR("transport is not selected");
2087 return ERROR_FAIL;
2088 }
2089
2090 int adapter_config_trace(bool enabled, enum tpiu_pin_protocol pin_protocol,
2091 uint32_t port_size, unsigned int *trace_freq,
2092 unsigned int traceclkin_freq, uint16_t *prescaler)
2093 {
2094 if (jtag->config_trace) {
2095 return jtag->config_trace(enabled, pin_protocol, port_size, trace_freq,
2096 traceclkin_freq, prescaler);
2097 } else if (enabled) {
2098 LOG_ERROR("The selected interface does not support tracing");
2099 return ERROR_FAIL;
2100 }
2101
2102 return ERROR_OK;
2103 }
2104
2105 int adapter_poll_trace(uint8_t *buf, size_t *size)
2106 {
2107 if (jtag->poll_trace)
2108 return jtag->poll_trace(buf, size);
2109
2110 return ERROR_FAIL;
2111 }

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