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1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 2013 poljar (Damir Jelić) <poljarinho@gmail.com>
5 * Copyright (C) 2015 Bert Vermeulen <bert@biot.com>
6 *
7 * This program is free software: you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License as published by
9 * the Free Software Foundation, either version 3 of the License, or
10 * (at your option) any later version.
11 *
12 * This program is distributed in the hope that it will be useful,
13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 * GNU General Public License for more details.
16 *
17 * You should have received a copy of the GNU General Public License
18 * along with this program. If not, see <http://www.gnu.org/licenses/>.
19 */
20
21#include <config.h>
22#include <glib.h>
23#include <string.h>
24#include <libsigrok/libsigrok.h>
25#include "libsigrok-internal.h"
26#include "scpi.h"
27
28#define LOG_PREFIX "scpi"
29
30#define SCPI_READ_RETRIES 100
31#define SCPI_READ_RETRY_TIMEOUT_US (10 * 1000)
32
33static const char *scpi_vendors[][2] = {
34 { "Agilent Technologies", "Agilent" },
35 { "CHROMA", "Chroma" },
36 { "Chroma ATE", "Chroma" },
37 { "HEWLETT-PACKARD", "HP" },
38 { "Keysight Technologies", "Keysight" },
39 { "PHILIPS", "Philips" },
40 { "RIGOL TECHNOLOGIES", "Rigol" },
41};
42
43/**
44 * Parse a string representation of a boolean-like value into a gboolean.
45 * Similar to sr_parse_boolstring but rejects strings which do not represent
46 * a boolean-like value.
47 *
48 * @param str String to convert.
49 * @param ret Pointer to a gboolean where the result of the conversion will be
50 * stored.
51 *
52 * @return SR_OK on success, SR_ERR on failure.
53 */
54static int parse_strict_bool(const char *str, gboolean *ret)
55{
56 if (!str)
57 return SR_ERR_ARG;
58
59 if (!g_strcmp0(str, "1") ||
60 !g_ascii_strncasecmp(str, "y", 1) ||
61 !g_ascii_strncasecmp(str, "t", 1) ||
62 !g_ascii_strncasecmp(str, "yes", 3) ||
63 !g_ascii_strncasecmp(str, "true", 4) ||
64 !g_ascii_strncasecmp(str, "on", 2)) {
65 *ret = TRUE;
66 return SR_OK;
67 } else if (!g_strcmp0(str, "0") ||
68 !g_ascii_strncasecmp(str, "n", 1) ||
69 !g_ascii_strncasecmp(str, "f", 1) ||
70 !g_ascii_strncasecmp(str, "no", 2) ||
71 !g_ascii_strncasecmp(str, "false", 5) ||
72 !g_ascii_strncasecmp(str, "off", 3)) {
73 *ret = FALSE;
74 return SR_OK;
75 }
76
77 return SR_ERR;
78}
79
80SR_PRIV extern const struct sr_scpi_dev_inst scpi_serial_dev;
81SR_PRIV extern const struct sr_scpi_dev_inst scpi_tcp_raw_dev;
82SR_PRIV extern const struct sr_scpi_dev_inst scpi_tcp_rigol_dev;
83SR_PRIV extern const struct sr_scpi_dev_inst scpi_usbtmc_libusb_dev;
84SR_PRIV extern const struct sr_scpi_dev_inst scpi_vxi_dev;
85SR_PRIV extern const struct sr_scpi_dev_inst scpi_visa_dev;
86SR_PRIV extern const struct sr_scpi_dev_inst scpi_libgpib_dev;
87
88static const struct sr_scpi_dev_inst *scpi_devs[] = {
89 &scpi_tcp_raw_dev,
90 &scpi_tcp_rigol_dev,
91#ifdef HAVE_LIBUSB_1_0
92 &scpi_usbtmc_libusb_dev,
93#endif
94#if HAVE_RPC
95 &scpi_vxi_dev,
96#endif
97#ifdef HAVE_LIBREVISA
98 &scpi_visa_dev,
99#endif
100#ifdef HAVE_LIBGPIB
101 &scpi_libgpib_dev,
102#endif
103#ifdef HAVE_SERIAL_COMM
104 &scpi_serial_dev, /* Must be last as it matches any resource. */
105#endif
106};
107
108static struct sr_dev_inst *sr_scpi_scan_resource(struct drv_context *drvc,
109 const char *resource, const char *serialcomm,
110 struct sr_dev_inst *(*probe_device)(struct sr_scpi_dev_inst *scpi))
111{
112 struct sr_scpi_dev_inst *scpi;
113 struct sr_dev_inst *sdi;
114
115 if (!(scpi = scpi_dev_inst_new(drvc, resource, serialcomm)))
116 return NULL;
117
118 if (sr_scpi_open(scpi) != SR_OK) {
119 sr_info("Couldn't open SCPI device.");
120 sr_scpi_free(scpi);
121 return NULL;
122 };
123
124 sdi = probe_device(scpi);
125
126 sr_scpi_close(scpi);
127
128 if (sdi)
129 sdi->status = SR_ST_INACTIVE;
130 else
131 sr_scpi_free(scpi);
132
133 return sdi;
134}
135
136/**
137 * Send a SCPI command with a variadic argument list without mutex.
138 *
139 * @param scpi Previously initialized SCPI device structure.
140 * @param format Format string.
141 * @param args Argument list.
142 *
143 * @return SR_OK on success, SR_ERR on failure.
144 */
145static int scpi_send_variadic(struct sr_scpi_dev_inst *scpi,
146 const char *format, va_list args)
147{
148 va_list args_copy;
149 char *buf;
150 int len, ret;
151
152 /* Get length of buffer required. */
153 va_copy(args_copy, args);
154 len = sr_vsnprintf_ascii(NULL, 0, format, args_copy);
155 va_end(args_copy);
156
157 /* Allocate buffer and write out command. */
158 buf = g_malloc0(len + 2);
159 sr_vsprintf_ascii(buf, format, args);
160 if (buf[len - 1] != '\n')
161 buf[len] = '\n';
162
163 /* Send command. */
164 ret = scpi->send(scpi->priv, buf);
165
166 /* Free command buffer. */
167 g_free(buf);
168
169 return ret;
170}
171
172/**
173 * Send a SCPI command without mutex.
174 *
175 * @param scpi Previously initialized SCPI device structure.
176 * @param format Format string, to be followed by any necessary arguments.
177 *
178 * @return SR_OK on success, SR_ERR on failure.
179 */
180static int scpi_send(struct sr_scpi_dev_inst *scpi, const char *format, ...)
181{
182 va_list args;
183 int ret;
184
185 va_start(args, format);
186 ret = scpi_send_variadic(scpi, format, args);
187 va_end(args);
188
189 return ret;
190}
191
192/**
193 * Send data to SCPI device without mutex.
194 *
195 * TODO: This is only implemented in TcpRaw, but never used.
196 * TODO: Use Mutex at all?
197 *
198 * @param scpi Previously initialised SCPI device structure.
199 * @param buf Buffer with data to send.
200 * @param len Number of bytes to send.
201 *
202 * @return Number of bytes read, or SR_ERR upon failure.
203 */
204static int scpi_write_data(struct sr_scpi_dev_inst *scpi, char *buf, int maxlen)
205{
206 return scpi->write_data(scpi->priv, buf, maxlen);
207}
208
209/**
210 * Read part of a response from SCPI device without mutex.
211 *
212 * @param scpi Previously initialised SCPI device structure.
213 * @param buf Buffer to store result.
214 * @param maxlen Maximum number of bytes to read.
215 *
216 * @return Number of bytes read, or SR_ERR upon failure.
217 */
218static int scpi_read_data(struct sr_scpi_dev_inst *scpi, char *buf, int maxlen)
219{
220 return scpi->read_data(scpi->priv, buf, maxlen);
221}
222
223/**
224 * Do a non-blocking read of up to the allocated length, and
225 * check if a timeout has occured, without mutex.
226 *
227 * @param scpi Previously initialised SCPI device structure.
228 * @param response Buffer to which the response is appended.
229 * @param abs_timeout_us Absolute timeout in microseconds
230 *
231 * @return read length on success, SR_ERR* on failure.
232 */
233static int scpi_read_response(struct sr_scpi_dev_inst *scpi,
234 GString *response, gint64 abs_timeout_us)
235{
236 int len, space;
237
238 space = response->allocated_len - response->len;
239 len = scpi->read_data(scpi->priv, &response->str[response->len], space);
240
241 if (len < 0) {
242 sr_err("Incompletely read SCPI response.");
243 return SR_ERR;
244 }
245
246 if (len > 0) {
247 g_string_set_size(response, response->len + len);
248 return len;
249 }
250
251 if (g_get_monotonic_time() > abs_timeout_us) {
252 sr_err("Timed out waiting for SCPI response.");
253 return SR_ERR_TIMEOUT;
254 }
255
256 return 0;
257}
258
259/**
260 * Send a SCPI command, receive the reply and store the reply in
261 * scpi_response, without mutex.
262 *
263 * @param scpi Previously initialised SCPI device structure.
264 * @param command The SCPI command to send to the device.
265 * @param scpi_response Pointer where to store the SCPI response.
266 *
267 * @return SR_OK on success, SR_ERR on failure.
268 */
269static int scpi_get_data(struct sr_scpi_dev_inst *scpi,
270 const char *command, GString **scpi_response)
271{
272 int ret;
273 GString *response;
274 int space;
275 gint64 timeout;
276
277 /* Optionally send caller provided command. */
278 if (command) {
279 if (scpi_send(scpi, command) != SR_OK)
280 return SR_ERR;
281 }
282
283 /* Initiate SCPI read operation. */
284 if (sr_scpi_read_begin(scpi) != SR_OK)
285 return SR_ERR;
286
287 /* Keep reading until completion or until timeout. */
288 timeout = g_get_monotonic_time() + scpi->read_timeout_us;
289
290 response = *scpi_response;
291
292 while (!sr_scpi_read_complete(scpi)) {
293 /* Resize the buffer when free space drops below a threshold. */
294 space = response->allocated_len - response->len;
295 if (space < 128) {
296 int oldlen = response->len;
297 g_string_set_size(response, oldlen + 1024);
298 g_string_set_size(response, oldlen);
299 }
300
301 /* Read another chunk of the response. */
302 ret = scpi_read_response(scpi, response, timeout);
303
304 if (ret < 0)
305 return ret;
306 if (ret > 0)
307 timeout = g_get_monotonic_time() + scpi->read_timeout_us;
308 }
309
310 return SR_OK;
311}
312
313SR_PRIV GSList *sr_scpi_scan(struct drv_context *drvc, GSList *options,
314 struct sr_dev_inst *(*probe_device)(struct sr_scpi_dev_inst *scpi))
315{
316 GSList *resources, *l, *devices;
317 struct sr_dev_inst *sdi;
318 const char *resource = NULL;
319 const char *serialcomm = NULL;
320 gchar **res;
321 unsigned i;
322
323 for (l = options; l; l = l->next) {
324 struct sr_config *src = l->data;
325 switch (src->key) {
326 case SR_CONF_CONN:
327 resource = g_variant_get_string(src->data, NULL);
328 break;
329 case SR_CONF_SERIALCOMM:
330 serialcomm = g_variant_get_string(src->data, NULL);
331 break;
332 }
333 }
334
335 devices = NULL;
336 for (i = 0; i < ARRAY_SIZE(scpi_devs); i++) {
337 if ((resource && strcmp(resource, scpi_devs[i]->prefix))
338 || !scpi_devs[i]->scan)
339 continue;
340 resources = scpi_devs[i]->scan(drvc);
341 for (l = resources; l; l = l->next) {
342 res = g_strsplit(l->data, ":", 2);
343 if (res[0] && (sdi = sr_scpi_scan_resource(drvc, res[0],
344 serialcomm ? serialcomm : res[1], probe_device))) {
345 devices = g_slist_append(devices, sdi);
346 sdi->connection_id = g_strdup(l->data);
347 }
348 g_strfreev(res);
349 }
350 g_slist_free_full(resources, g_free);
351 }
352
353 if (!devices && resource) {
354 sdi = sr_scpi_scan_resource(drvc, resource, serialcomm, probe_device);
355 if (sdi)
356 devices = g_slist_append(NULL, sdi);
357 }
358
359 /* Tack a copy of the newly found devices onto the driver list. */
360 if (devices)
361 drvc->instances = g_slist_concat(drvc->instances, g_slist_copy(devices));
362
363 return devices;
364}
365
366SR_PRIV struct sr_scpi_dev_inst *scpi_dev_inst_new(struct drv_context *drvc,
367 const char *resource, const char *serialcomm)
368{
369 struct sr_scpi_dev_inst *scpi = NULL;
370 const struct sr_scpi_dev_inst *scpi_dev;
371 gchar **params;
372 unsigned i;
373
374 for (i = 0; i < ARRAY_SIZE(scpi_devs); i++) {
375 scpi_dev = scpi_devs[i];
376 if (!strncmp(resource, scpi_dev->prefix, strlen(scpi_dev->prefix))) {
377 sr_dbg("Opening %s device %s.", scpi_dev->name, resource);
378 scpi = g_malloc(sizeof(*scpi));
379 *scpi = *scpi_dev;
380 scpi->priv = g_malloc0(scpi->priv_size);
381 scpi->read_timeout_us = 1000 * 1000;
382 params = g_strsplit(resource, "/", 0);
383 if (scpi->dev_inst_new(scpi->priv, drvc, resource,
384 params, serialcomm) != SR_OK) {
385 sr_scpi_free(scpi);
386 scpi = NULL;
387 }
388 g_strfreev(params);
389 break;
390 }
391 }
392
393 return scpi;
394}
395
396/**
397 * Open SCPI device.
398 *
399 * @param scpi Previously initialized SCPI device structure.
400 *
401 * @return SR_OK on success, SR_ERR on failure.
402 */
403SR_PRIV int sr_scpi_open(struct sr_scpi_dev_inst *scpi)
404{
405 g_mutex_init(&scpi->scpi_mutex);
406
407 return scpi->open(scpi);
408}
409
410/**
411 * Get the connection ID of the SCPI device.
412 *
413 * @param scpi Previously initialized SCPI device structure.
414 * @param connection_id Pointer where to store the connection ID. The caller
415 * is responsible for g_free()ing the string when it is no longer needed.
416 *
417 * @return SR_OK on success, SR_ERR on failure.
418 */
419SR_PRIV int sr_scpi_connection_id(struct sr_scpi_dev_inst *scpi,
420 char **connection_id)
421{
422 return scpi->connection_id(scpi, connection_id);
423}
424
425/**
426 * Add an event source for an SCPI device.
427 *
428 * @param session The session to add the event source to.
429 * @param scpi Previously initialized SCPI device structure.
430 * @param events Events to check for.
431 * @param timeout Max time to wait before the callback is called, ignored if 0.
432 * @param cb Callback function to add. Must not be NULL.
433 * @param cb_data Data for the callback function. Can be NULL.
434 *
435 * @return SR_OK upon success, SR_ERR_ARG upon invalid arguments, or
436 * SR_ERR_MALLOC upon memory allocation errors.
437 */
438SR_PRIV int sr_scpi_source_add(struct sr_session *session,
439 struct sr_scpi_dev_inst *scpi, int events, int timeout,
440 sr_receive_data_callback cb, void *cb_data)
441{
442 return scpi->source_add(session, scpi->priv, events, timeout, cb, cb_data);
443}
444
445/**
446 * Remove event source for an SCPI device.
447 *
448 * @param session The session to remove the event source from.
449 * @param scpi Previously initialized SCPI device structure.
450 *
451 * @return SR_OK upon success, SR_ERR_ARG upon invalid arguments, or
452 * SR_ERR_MALLOC upon memory allocation errors, SR_ERR_BUG upon
453 * internal errors.
454 */
455SR_PRIV int sr_scpi_source_remove(struct sr_session *session,
456 struct sr_scpi_dev_inst *scpi)
457{
458 return scpi->source_remove(session, scpi->priv);
459}
460
461/**
462 * Send a SCPI command.
463 *
464 * @param scpi Previously initialized SCPI device structure.
465 * @param format Format string, to be followed by any necessary arguments.
466 *
467 * @return SR_OK on success, SR_ERR on failure.
468 */
469SR_PRIV int sr_scpi_send(struct sr_scpi_dev_inst *scpi,
470 const char *format, ...)
471{
472 va_list args;
473 int ret;
474
475 va_start(args, format);
476 g_mutex_lock(&scpi->scpi_mutex);
477 ret = scpi_send_variadic(scpi, format, args);
478 g_mutex_unlock(&scpi->scpi_mutex);
479 va_end(args);
480
481 return ret;
482}
483
484/**
485 * Send a SCPI command with a variadic argument list.
486 *
487 * @param scpi Previously initialized SCPI device structure.
488 * @param format Format string.
489 * @param args Argument list.
490 *
491 * @return SR_OK on success, SR_ERR on failure.
492 */
493SR_PRIV int sr_scpi_send_variadic(struct sr_scpi_dev_inst *scpi,
494 const char *format, va_list args)
495{
496 int ret;
497
498 g_mutex_lock(&scpi->scpi_mutex);
499 ret = scpi_send_variadic(scpi, format, args);
500 g_mutex_unlock(&scpi->scpi_mutex);
501
502 return ret;
503}
504
505/**
506 * Begin receiving an SCPI reply.
507 *
508 * @param scpi Previously initialised SCPI device structure.
509 *
510 * @return SR_OK on success, SR_ERR on failure.
511 */
512SR_PRIV int sr_scpi_read_begin(struct sr_scpi_dev_inst *scpi)
513{
514 return scpi->read_begin(scpi->priv);
515}
516
517/**
518 * Read part of a response from SCPI device.
519 *
520 * @param scpi Previously initialised SCPI device structure.
521 * @param buf Buffer to store result.
522 * @param maxlen Maximum number of bytes to read.
523 *
524 * @return Number of bytes read, or SR_ERR upon failure.
525 */
526SR_PRIV int sr_scpi_read_data(struct sr_scpi_dev_inst *scpi,
527 char *buf, int maxlen)
528{
529 int ret;
530
531 g_mutex_lock(&scpi->scpi_mutex);
532 ret = scpi_read_data(scpi, buf, maxlen);
533 g_mutex_unlock(&scpi->scpi_mutex);
534
535 return ret;
536}
537
538/**
539 * Send data to SCPI device.
540 *
541 * TODO: This is only implemented in TcpRaw, but never used.
542 * TODO: Use Mutex at all?
543 *
544 * @param scpi Previously initialised SCPI device structure.
545 * @param buf Buffer with data to send.
546 * @param len Number of bytes to send.
547 *
548 * @return Number of bytes read, or SR_ERR upon failure.
549 */
550SR_PRIV int sr_scpi_write_data(struct sr_scpi_dev_inst *scpi,
551 char *buf, int maxlen)
552{
553 int ret;
554
555 g_mutex_lock(&scpi->scpi_mutex);
556 ret = scpi_write_data(scpi, buf, maxlen);
557 g_mutex_unlock(&scpi->scpi_mutex);
558
559 return ret;
560}
561
562/**
563 * Check whether a complete SCPI response has been received.
564 *
565 * @param scpi Previously initialised SCPI device structure.
566 *
567 * @return 1 if complete, 0 otherwise.
568 */
569SR_PRIV int sr_scpi_read_complete(struct sr_scpi_dev_inst *scpi)
570{
571 return scpi->read_complete(scpi->priv);
572}
573
574/**
575 * Close SCPI device.
576 *
577 * @param scpi Previously initialized SCPI device structure.
578 *
579 * @return SR_OK on success, SR_ERR on failure.
580 */
581SR_PRIV int sr_scpi_close(struct sr_scpi_dev_inst *scpi)
582{
583 int ret;
584
585 g_mutex_lock(&scpi->scpi_mutex);
586 ret = scpi->close(scpi);
587 g_mutex_unlock(&scpi->scpi_mutex);
588 g_mutex_clear(&scpi->scpi_mutex);
589
590 return ret;
591}
592
593/**
594 * Free SCPI device.
595 *
596 * @param scpi Previously initialized SCPI device structure. If NULL,
597 * this function does nothing.
598 */
599SR_PRIV void sr_scpi_free(struct sr_scpi_dev_inst *scpi)
600{
601 if (!scpi)
602 return;
603
604 scpi->free(scpi->priv);
605 g_free(scpi->priv);
606 g_free(scpi->actual_channel_name);
607 g_free(scpi);
608}
609
610/**
611 * Send a SCPI command, receive the reply and store the reply in scpi_response.
612 *
613 * @param scpi Previously initialised SCPI device structure.
614 * @param command The SCPI command to send to the device (can be NULL).
615 * @param scpi_response Pointer where to store the SCPI response.
616 *
617 * @return SR_OK on success, SR_ERR* on failure.
618 */
619SR_PRIV int sr_scpi_get_string(struct sr_scpi_dev_inst *scpi,
620 const char *command, char **scpi_response)
621{
622 GString *response;
623 response = g_string_sized_new(1024);
624
625 if (sr_scpi_get_data(scpi, command, &response) != SR_OK) {
626 if (response)
627 g_string_free(response, TRUE);
628 return SR_ERR;
629 }
630
631 /* Get rid of trailing linefeed if present */
632 if (response->len >= 1 && response->str[response->len - 1] == '\n')
633 g_string_truncate(response, response->len - 1);
634
635 /* Get rid of trailing carriage return if present */
636 if (response->len >= 1 && response->str[response->len - 1] == '\r')
637 g_string_truncate(response, response->len - 1);
638
639 sr_spew("Got response: '%.70s', length %" G_GSIZE_FORMAT ".",
640 response->str, response->len);
641
642 *scpi_response = g_string_free(response, FALSE);
643
644 return SR_OK;
645}
646
647/**
648 * Do a non-blocking read of up to the allocated length, and
649 * check if a timeout has occured.
650 *
651 * @param scpi Previously initialised SCPI device structure.
652 * @param response Buffer to which the response is appended.
653 * @param abs_timeout_us Absolute timeout in microseconds
654 *
655 * @return read length on success, SR_ERR* on failure.
656 */
657SR_PRIV int sr_scpi_read_response(struct sr_scpi_dev_inst *scpi,
658 GString *response, gint64 abs_timeout_us)
659{
660 int ret;
661
662 g_mutex_lock(&scpi->scpi_mutex);
663 ret = scpi_read_response(scpi, response, abs_timeout_us);
664 g_mutex_unlock(&scpi->scpi_mutex);
665
666 return ret;
667}
668
669SR_PRIV int sr_scpi_get_data(struct sr_scpi_dev_inst *scpi,
670 const char *command, GString **scpi_response)
671{
672 int ret;
673
674 g_mutex_lock(&scpi->scpi_mutex);
675 ret = scpi_get_data(scpi, command, scpi_response);
676 g_mutex_unlock(&scpi->scpi_mutex);
677
678 return ret;
679}
680
681/**
682 * Send a SCPI command, read the reply, parse it as a bool value and store the
683 * result in scpi_response.
684 *
685 * @param scpi Previously initialised SCPI device structure.
686 * @param command The SCPI command to send to the device (can be NULL).
687 * @param scpi_response Pointer where to store the parsed result.
688 *
689 * @return SR_OK on success, SR_ERR* on failure.
690 */
691SR_PRIV int sr_scpi_get_bool(struct sr_scpi_dev_inst *scpi,
692 const char *command, gboolean *scpi_response)
693{
694 int ret;
695 char *response;
696
697 response = NULL;
698
699 ret = sr_scpi_get_string(scpi, command, &response);
700 if (ret != SR_OK && !response)
701 return ret;
702
703 if (parse_strict_bool(response, scpi_response) == SR_OK)
704 ret = SR_OK;
705 else
706 ret = SR_ERR_DATA;
707
708 g_free(response);
709
710 return ret;
711}
712
713/**
714 * Send a SCPI command, read the reply, parse it as an integer and store the
715 * result in scpi_response.
716 *
717 * @param scpi Previously initialised SCPI device structure.
718 * @param command The SCPI command to send to the device (can be NULL).
719 * @param scpi_response Pointer where to store the parsed result.
720 *
721 * @return SR_OK on success, SR_ERR* on failure.
722 */
723SR_PRIV int sr_scpi_get_int(struct sr_scpi_dev_inst *scpi,
724 const char *command, int *scpi_response)
725{
726 int ret;
727 char *response;
728
729 response = NULL;
730
731 ret = sr_scpi_get_string(scpi, command, &response);
732 if (ret != SR_OK && !response)
733 return ret;
734
735 if (sr_atoi(response, scpi_response) == SR_OK)
736 ret = SR_OK;
737 else
738 ret = SR_ERR_DATA;
739
740 g_free(response);
741
742 return ret;
743}
744
745/**
746 * Send a SCPI command, read the reply, parse it as a float and store the
747 * result in scpi_response.
748 *
749 * @param scpi Previously initialised SCPI device structure.
750 * @param command The SCPI command to send to the device (can be NULL).
751 * @param scpi_response Pointer where to store the parsed result.
752 *
753 * @return SR_OK on success, SR_ERR* on failure.
754 */
755SR_PRIV int sr_scpi_get_float(struct sr_scpi_dev_inst *scpi,
756 const char *command, float *scpi_response)
757{
758 int ret;
759 char *response;
760
761 response = NULL;
762
763 ret = sr_scpi_get_string(scpi, command, &response);
764 if (ret != SR_OK && !response)
765 return ret;
766
767 if (sr_atof_ascii(response, scpi_response) == SR_OK)
768 ret = SR_OK;
769 else
770 ret = SR_ERR_DATA;
771
772 g_free(response);
773
774 return ret;
775}
776
777/**
778 * Send a SCPI command, read the reply, parse it as a double and store the
779 * result in scpi_response.
780 *
781 * @param scpi Previously initialised SCPI device structure.
782 * @param command The SCPI command to send to the device (can be NULL).
783 * @param scpi_response Pointer where to store the parsed result.
784 *
785 * @return SR_OK on success, SR_ERR* on failure.
786 */
787SR_PRIV int sr_scpi_get_double(struct sr_scpi_dev_inst *scpi,
788 const char *command, double *scpi_response)
789{
790 int ret;
791 char *response;
792
793 response = NULL;
794
795 ret = sr_scpi_get_string(scpi, command, &response);
796 if (ret != SR_OK && !response)
797 return ret;
798
799 if (sr_atod_ascii(response, scpi_response) == SR_OK)
800 ret = SR_OK;
801 else
802 ret = SR_ERR_DATA;
803
804 g_free(response);
805
806 return ret;
807}
808
809/**
810 * Send a SCPI *OPC? command, read the reply and return the result of the
811 * command.
812 *
813 * @param scpi Previously initialised SCPI device structure.
814 *
815 * @return SR_OK on success, SR_ERR* on failure.
816 */
817SR_PRIV int sr_scpi_get_opc(struct sr_scpi_dev_inst *scpi)
818{
819 unsigned int i;
820 gboolean opc;
821
822 for (i = 0; i < SCPI_READ_RETRIES; i++) {
823 opc = FALSE;
824 sr_scpi_get_bool(scpi, SCPI_CMD_OPC, &opc);
825 if (opc)
826 return SR_OK;
827 g_usleep(SCPI_READ_RETRY_TIMEOUT_US);
828 }
829
830 return SR_ERR;
831}
832
833/**
834 * Send a SCPI command, read the reply, parse it as comma separated list of
835 * floats and store the as an result in scpi_response.
836 *
837 * @param scpi Previously initialised SCPI device structure.
838 * @param command The SCPI command to send to the device (can be NULL).
839 * @param scpi_response Pointer where to store the parsed result.
840 *
841 * @return SR_OK upon successfully parsing all values, SR_ERR* upon a parsing
842 * error or upon no response. The allocated response must be freed by
843 * the caller in the case of an SR_OK as well as in the case of
844 * parsing error.
845 */
846SR_PRIV int sr_scpi_get_floatv(struct sr_scpi_dev_inst *scpi,
847 const char *command, GArray **scpi_response)
848{
849 int ret;
850 float tmp;
851 char *response;
852 gchar **ptr, **tokens;
853 GArray *response_array;
854
855 response = NULL;
856 tokens = NULL;
857
858 ret = sr_scpi_get_string(scpi, command, &response);
859 if (ret != SR_OK && !response)
860 return ret;
861
862 tokens = g_strsplit(response, ",", 0);
863 ptr = tokens;
864
865 response_array = g_array_sized_new(TRUE, FALSE, sizeof(float), 256);
866
867 while (*ptr) {
868 if (sr_atof_ascii(*ptr, &tmp) == SR_OK)
869 response_array = g_array_append_val(response_array,
870 tmp);
871 else
872 ret = SR_ERR_DATA;
873
874 ptr++;
875 }
876 g_strfreev(tokens);
877 g_free(response);
878
879 if (ret != SR_OK && response_array->len == 0) {
880 g_array_free(response_array, TRUE);
881 *scpi_response = NULL;
882 return SR_ERR_DATA;
883 }
884
885 *scpi_response = response_array;
886
887 return ret;
888}
889
890/**
891 * Send a SCPI command, read the reply, parse it as comma separated list of
892 * unsigned 8 bit integers and store the as an result in scpi_response.
893 *
894 * @param scpi Previously initialised SCPI device structure.
895 * @param command The SCPI command to send to the device (can be NULL).
896 * @param scpi_response Pointer where to store the parsed result.
897 *
898 * @return SR_OK upon successfully parsing all values, SR_ERR* upon a parsing
899 * error or upon no response. The allocated response must be freed by
900 * the caller in the case of an SR_OK as well as in the case of
901 * parsing error.
902 */
903SR_PRIV int sr_scpi_get_uint8v(struct sr_scpi_dev_inst *scpi,
904 const char *command, GArray **scpi_response)
905{
906 int tmp, ret;
907 char *response;
908 gchar **ptr, **tokens;
909 GArray *response_array;
910
911 response = NULL;
912 tokens = NULL;
913
914 ret = sr_scpi_get_string(scpi, command, &response);
915 if (ret != SR_OK && !response)
916 return ret;
917
918 tokens = g_strsplit(response, ",", 0);
919 ptr = tokens;
920
921 response_array = g_array_sized_new(TRUE, FALSE, sizeof(uint8_t), 256);
922
923 while (*ptr) {
924 if (sr_atoi(*ptr, &tmp) == SR_OK)
925 response_array = g_array_append_val(response_array,
926 tmp);
927 else
928 ret = SR_ERR_DATA;
929
930 ptr++;
931 }
932 g_strfreev(tokens);
933 g_free(response);
934
935 if (response_array->len == 0) {
936 g_array_free(response_array, TRUE);
937 *scpi_response = NULL;
938 return SR_ERR_DATA;
939 }
940
941 *scpi_response = response_array;
942
943 return ret;
944}
945
946/**
947 * Send a SCPI command, read the reply, parse it as binary data with a
948 * "definite length block" header and store the as an result in scpi_response.
949 *
950 * @param scpi Previously initialised SCPI device structure.
951 * @param command The SCPI command to send to the device (can be NULL).
952 * @param scpi_response Pointer where to store the parsed result.
953 *
954 * @return SR_OK upon successfully parsing all values, SR_ERR* upon a parsing
955 * error or upon no response. The allocated response must be freed by
956 * the caller in the case of an SR_OK as well as in the case of
957 * parsing error.
958 */
959SR_PRIV int sr_scpi_get_block(struct sr_scpi_dev_inst *scpi,
960 const char *command, GByteArray **scpi_response)
961{
962 int ret;
963 GString* response;
964 gsize oldlen;
965 char buf[10];
966 long llen;
967 long datalen;
968 gint64 timeout;
969
970 g_mutex_lock(&scpi->scpi_mutex);
971
972 if (command)
973 if (scpi_send(scpi, command) != SR_OK) {
974 g_mutex_unlock(&scpi->scpi_mutex);
975 return SR_ERR;
976 }
977
978 if (sr_scpi_read_begin(scpi) != SR_OK) {
979 g_mutex_unlock(&scpi->scpi_mutex);
980 return SR_ERR;
981 }
982
983 /*
984 * Assume an initial maximum length, optionally gets adjusted below.
985 * Prepare a NULL return value for when error paths will be taken.
986 */
987 response = g_string_sized_new(1024);
988
989 timeout = g_get_monotonic_time() + scpi->read_timeout_us;
990
991 *scpi_response = NULL;
992
993 /* Get (the first chunk of) the response. */
994 do {
995 ret = scpi_read_response(scpi, response, timeout);
996 if (ret < 0) {
997 g_mutex_unlock(&scpi->scpi_mutex);
998 g_string_free(response, TRUE);
999 return ret;
1000 }
1001 } while (response->len < 2);
1002
1003 /*
1004 * SCPI protocol data blocks are preceeded with a length spec.
1005 * The length spec consists of a '#' marker, one digit which
1006 * specifies the character count of the length spec, and the
1007 * respective number of characters which specify the data block's
1008 * length. Raw data bytes follow (thus one must no longer assume
1009 * that the received input stream would be an ASCIIZ string).
1010 *
1011 * Get the data block length, and strip off the length spec from
1012 * the input buffer, leaving just the data bytes.
1013 */
1014 if (response->str[0] != '#') {
1015 g_mutex_unlock(&scpi->scpi_mutex);
1016 g_string_free(response, TRUE);
1017 return SR_ERR_DATA;
1018 }
1019 buf[0] = response->str[1];
1020 buf[1] = '\0';
1021 ret = sr_atol(buf, &llen);
1022 if ((ret != SR_OK) || (llen == 0)) {
1023 g_mutex_unlock(&scpi->scpi_mutex);
1024 g_string_free(response, TRUE);
1025 return ret;
1026 }
1027
1028 while (response->len < (unsigned long)(2 + llen)) {
1029 ret = scpi_read_response(scpi, response, timeout);
1030 if (ret < 0) {
1031 g_mutex_unlock(&scpi->scpi_mutex);
1032 g_string_free(response, TRUE);
1033 return ret;
1034 }
1035 }
1036
1037 memcpy(buf, &response->str[2], llen);
1038 buf[llen] = '\0';
1039 ret = sr_atol(buf, &datalen);
1040 if ((ret != SR_OK) || (datalen == 0)) {
1041 g_mutex_unlock(&scpi->scpi_mutex);
1042 g_string_free(response, TRUE);
1043 return ret;
1044 }
1045 g_string_erase(response, 0, 2 + llen);
1046
1047 /*
1048 * Re-allocate the buffer size to the now known length
1049 * and keep reading more chunks of response data.
1050 */
1051 oldlen = response->len;
1052 g_string_set_size(response, datalen);
1053 g_string_set_size(response, oldlen);
1054
1055 if (oldlen < (unsigned long)(datalen)) {
1056 do {
1057 oldlen = response->len;
1058 ret = scpi_read_response(scpi, response, timeout);
1059
1060 /* On timeout truncate the buffer and send the partial response
1061 * instead of getting stuck on timeouts...
1062 */
1063 if (ret == SR_ERR_TIMEOUT) {
1064 datalen = oldlen;
1065 break;
1066 }
1067 if (ret < 0) {
1068 g_mutex_unlock(&scpi->scpi_mutex);
1069 g_string_free(response, TRUE);
1070 return ret;
1071 }
1072 if (ret > 0)
1073 timeout = g_get_monotonic_time() + scpi->read_timeout_us;
1074 } while (response->len < (unsigned long)(datalen));
1075 }
1076
1077 g_mutex_unlock(&scpi->scpi_mutex);
1078
1079 /* Convert received data to byte array. */
1080 *scpi_response = g_byte_array_new_take(
1081 (guint8*)g_string_free(response, FALSE), datalen);
1082
1083 return SR_OK;
1084}
1085
1086/**
1087 * Send the *IDN? SCPI command, receive the reply, parse it and store the
1088 * reply as a sr_scpi_hw_info structure in the supplied scpi_response pointer.
1089 *
1090 * The hw_info structure must be freed by the caller via sr_scpi_hw_info_free().
1091 *
1092 * @param scpi Previously initialised SCPI device structure.
1093 * @param scpi_response Pointer where to store the hw_info structure.
1094 *
1095 * @return SR_OK upon success, SR_ERR* on failure.
1096 */
1097SR_PRIV int sr_scpi_get_hw_id(struct sr_scpi_dev_inst *scpi,
1098 struct sr_scpi_hw_info **scpi_response)
1099{
1100 int num_tokens, ret;
1101 char *response;
1102 gchar **tokens;
1103 struct sr_scpi_hw_info *hw_info;
1104 gchar *idn_substr;
1105
1106 response = NULL;
1107 tokens = NULL;
1108
1109 ret = sr_scpi_get_string(scpi, SCPI_CMD_IDN, &response);
1110 if (ret != SR_OK && !response)
1111 return ret;
1112
1113 /*
1114 * The response to a '*IDN?' is specified by the SCPI spec. It contains
1115 * a comma-separated list containing the manufacturer name, instrument
1116 * model, serial number of the instrument and the firmware version.
1117 *
1118 * BEWARE! Although strictly speaking a smaller field count is invalid,
1119 * this implementation also accepts IDN responses with one field less,
1120 * and assumes that the serial number is missing. Some GWInstek DMMs
1121 * were found to do this. Keep warning about this condition, which may
1122 * need more consideration later.
1123 */
1124 tokens = g_strsplit(response, ",", 0);
1125 num_tokens = g_strv_length(tokens);
1126 if (num_tokens < 3) {
1127 sr_dbg("IDN response not according to spec: '%s'", response);
1128 g_strfreev(tokens);
1129 g_free(response);
1130 return SR_ERR_DATA;
1131 }
1132 if (num_tokens < 4) {
1133 sr_warn("Short IDN response, assume missing serial number.");
1134 }
1135 g_free(response);
1136
1137 hw_info = g_malloc0(sizeof(struct sr_scpi_hw_info));
1138
1139 idn_substr = g_strstr_len(tokens[0], -1, "IDN ");
1140 if (idn_substr == NULL)
1141 hw_info->manufacturer = g_strstrip(g_strdup(tokens[0]));
1142 else
1143 hw_info->manufacturer = g_strstrip(g_strdup(idn_substr + 4));
1144
1145 hw_info->model = g_strstrip(g_strdup(tokens[1]));
1146 if (num_tokens < 4) {
1147 hw_info->serial_number = g_strdup("Unknown");
1148 hw_info->firmware_version = g_strstrip(g_strdup(tokens[2]));
1149 } else {
1150 hw_info->serial_number = g_strstrip(g_strdup(tokens[2]));
1151 hw_info->firmware_version = g_strstrip(g_strdup(tokens[3]));
1152 }
1153
1154 g_strfreev(tokens);
1155
1156 *scpi_response = hw_info;
1157
1158 return SR_OK;
1159}
1160
1161/**
1162 * Free a sr_scpi_hw_info struct.
1163 *
1164 * @param hw_info Pointer to the struct to free. If NULL, this
1165 * function does nothing.
1166 */
1167SR_PRIV void sr_scpi_hw_info_free(struct sr_scpi_hw_info *hw_info)
1168{
1169 if (!hw_info)
1170 return;
1171
1172 g_free(hw_info->manufacturer);
1173 g_free(hw_info->model);
1174 g_free(hw_info->serial_number);
1175 g_free(hw_info->firmware_version);
1176 g_free(hw_info);
1177}
1178
1179/**
1180 * Remove potentially enclosing pairs of quotes, un-escape content.
1181 * This implementation modifies the caller's buffer when quotes are found
1182 * and doubled quote characters need to get removed from the content.
1183 *
1184 * @param[in, out] s The SCPI string to check and un-quote.
1185 *
1186 * @return The start of the un-quoted string.
1187 */
1188SR_PRIV const char *sr_scpi_unquote_string(char *s)
1189{
1190 size_t s_len;
1191 char quotes[3];
1192 char *rdptr;
1193
1194 /* Immediately bail out on invalid or short input. */
1195 if (!s || !*s)
1196 return s;
1197 s_len = strlen(s);
1198 if (s_len < 2)
1199 return s;
1200
1201 /* Check for matching quote characters front and back. */
1202 if (s[0] != '\'' && s[0] != '"')
1203 return s;
1204 if (s[0] != s[s_len - 1])
1205 return s;
1206
1207 /* Need to strip quotes, and un-double quote chars inside. */
1208 quotes[0] = quotes[1] = *s;
1209 quotes[2] = '\0';
1210 s[s_len - 1] = '\0';
1211 s++;
1212 rdptr = s;
1213 while ((rdptr = strstr(rdptr, quotes)) != NULL) {
1214 memmove(rdptr, rdptr + 1, strlen(rdptr));
1215 rdptr++;
1216 }
1217
1218 return s;
1219}
1220
1221SR_PRIV const char *sr_vendor_alias(const char *raw_vendor)
1222{
1223 unsigned int i;
1224
1225 for (i = 0; i < ARRAY_SIZE(scpi_vendors); i++) {
1226 if (!g_ascii_strcasecmp(raw_vendor, scpi_vendors[i][0]))
1227 return scpi_vendors[i][1];
1228 }
1229
1230 return raw_vendor;
1231}
1232
1233SR_PRIV const char *sr_scpi_cmd_get(const struct scpi_command *cmdtable,
1234 int command)
1235{
1236 unsigned int i;
1237 const char *cmd;
1238
1239 if (!cmdtable)
1240 return NULL;
1241
1242 cmd = NULL;
1243 for (i = 0; cmdtable[i].string; i++) {
1244 if (cmdtable[i].command == command) {
1245 cmd = cmdtable[i].string;
1246 break;
1247 }
1248 }
1249
1250 return cmd;
1251}
1252
1253SR_PRIV int sr_scpi_cmd(const struct sr_dev_inst *sdi,
1254 const struct scpi_command *cmdtable,
1255 int channel_command, const char *channel_name,
1256 int command, ...)
1257{
1258 struct sr_scpi_dev_inst *scpi;
1259 va_list args;
1260 int ret;
1261 const char *channel_cmd;
1262 const char *cmd;
1263
1264 scpi = sdi->conn;
1265
1266 if (!(cmd = sr_scpi_cmd_get(cmdtable, command))) {
1267 /* Device does not implement this command, that's OK. */
1268 return SR_OK;
1269 }
1270
1271 g_mutex_lock(&scpi->scpi_mutex);
1272
1273 /* Select channel. */
1274 channel_cmd = sr_scpi_cmd_get(cmdtable, channel_command);
1275 if (channel_cmd && channel_name &&
1276 g_strcmp0(channel_name, scpi->actual_channel_name)) {
1277 sr_spew("sr_scpi_cmd(): new channel = %s", channel_name);
1278 g_free(scpi->actual_channel_name);
1279 scpi->actual_channel_name = g_strdup(channel_name);
1280 ret = scpi_send(scpi, channel_cmd, channel_name);
1281 if (ret != SR_OK)
1282 return ret;
1283 }
1284
1285 va_start(args, command);
1286 ret = scpi_send_variadic(scpi, cmd, args);
1287 va_end(args);
1288
1289 g_mutex_unlock(&scpi->scpi_mutex);
1290
1291 return ret;
1292}
1293
1294SR_PRIV int sr_scpi_cmd_resp(const struct sr_dev_inst *sdi,
1295 const struct scpi_command *cmdtable,
1296 int channel_command, const char *channel_name,
1297 GVariant **gvar, const GVariantType *gvtype, int command, ...)
1298{
1299 struct sr_scpi_dev_inst *scpi;
1300 va_list args;
1301 const char *channel_cmd;
1302 const char *cmd;
1303 GString *response;
1304 char *s;
1305 gboolean b;
1306 double d;
1307 int ret;
1308
1309 scpi = sdi->conn;
1310
1311 if (!(cmd = sr_scpi_cmd_get(cmdtable, command))) {
1312 /* Device does not implement this command. */
1313 return SR_ERR_NA;
1314 }
1315
1316 g_mutex_lock(&scpi->scpi_mutex);
1317
1318 /* Select channel. */
1319 channel_cmd = sr_scpi_cmd_get(cmdtable, channel_command);
1320 if (channel_cmd && channel_name &&
1321 g_strcmp0(channel_name, scpi->actual_channel_name)) {
1322 sr_spew("sr_scpi_cmd_get(): new channel = %s", channel_name);
1323 g_free(scpi->actual_channel_name);
1324 scpi->actual_channel_name = g_strdup(channel_name);
1325 ret = scpi_send(scpi, channel_cmd, channel_name);
1326 if (ret != SR_OK)
1327 return ret;
1328 }
1329
1330 va_start(args, command);
1331 ret = scpi_send_variadic(scpi, cmd, args);
1332 va_end(args);
1333 if (ret != SR_OK) {
1334 g_mutex_unlock(&scpi->scpi_mutex);
1335 return ret;
1336 }
1337
1338 response = g_string_sized_new(1024);
1339 ret = scpi_get_data(scpi, NULL, &response);
1340 if (ret != SR_OK) {
1341 g_mutex_unlock(&scpi->scpi_mutex);
1342 if (response)
1343 g_string_free(response, TRUE);
1344 return ret;
1345 }
1346
1347 g_mutex_unlock(&scpi->scpi_mutex);
1348
1349 /* Get rid of trailing linefeed if present */
1350 if (response->len >= 1 && response->str[response->len - 1] == '\n')
1351 g_string_truncate(response, response->len - 1);
1352
1353 /* Get rid of trailing carriage return if present */
1354 if (response->len >= 1 && response->str[response->len - 1] == '\r')
1355 g_string_truncate(response, response->len - 1);
1356
1357 s = g_string_free(response, FALSE);
1358
1359 ret = SR_OK;
1360 if (g_variant_type_equal(gvtype, G_VARIANT_TYPE_BOOLEAN)) {
1361 if ((ret = parse_strict_bool(s, &b)) == SR_OK)
1362 *gvar = g_variant_new_boolean(b);
1363 } else if (g_variant_type_equal(gvtype, G_VARIANT_TYPE_DOUBLE)) {
1364 if ((ret = sr_atod_ascii(s, &d)) == SR_OK)
1365 *gvar = g_variant_new_double(d);
1366 } else if (g_variant_type_equal(gvtype, G_VARIANT_TYPE_STRING)) {
1367 *gvar = g_variant_new_string(s);
1368 } else {
1369 sr_err("Unable to convert to desired GVariant type.");
1370 ret = SR_ERR_NA;
1371 }
1372
1373 g_free(s);
1374
1375 return ret;
1376}