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1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 2014 Janne Huttunen <jahuttun@gmail.com>
5 *
6 * This program is free software: you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation, either version 3 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program. If not, see <http://www.gnu.org/licenses/>.
18 */
19
20#include <stdint.h>
21#include <string.h>
22#include <math.h>
23#include <glib.h>
24#include "libsigrok.h"
25#include "libsigrok-internal.h"
26
27#define LOG_PREFIX "es51919"
28
29struct dev_buffer {
30 /** Total size of the buffer. */
31 size_t size;
32 /** Amount of data currently in the buffer. */
33 size_t len;
34 /** Offset where the data starts in the buffer. */
35 size_t offset;
36 /** Space for the data. */
37 uint8_t data[];
38};
39
40static struct dev_buffer *dev_buffer_new(size_t size)
41{
42 struct dev_buffer *dbuf;
43
44 if (!(dbuf = g_try_malloc(sizeof(struct dev_buffer) + size))) {
45 sr_err("Dev buffer malloc failed (size=%zu).", size);
46 return NULL;
47 }
48
49 dbuf->size = size;
50 dbuf->len = 0;
51 dbuf->offset = 0;
52
53 return dbuf;
54}
55
56static void dev_buffer_destroy(struct dev_buffer *dbuf)
57{
58 g_free(dbuf);
59}
60
61static int dev_buffer_fill_serial(struct dev_buffer *dbuf,
62 struct sr_dev_inst *sdi)
63{
64 struct sr_serial_dev_inst *serial;
65 int len;
66
67 serial = sdi->conn;
68
69 /* If we already have data, move it to the beginning of the buffer. */
70 if (dbuf->len > 0 && dbuf->offset > 0)
71 memmove(dbuf->data, dbuf->data + dbuf->offset, dbuf->len);
72
73 dbuf->offset = 0;
74
75 len = dbuf->size - dbuf->len;
76 len = serial_read_nonblocking(serial, dbuf->data + dbuf->len, len);
77 if (len < 0) {
78 sr_err("Serial port read error: %d.", len);
79 return len;
80 }
81
82 dbuf->len += len;
83
84 return SR_OK;
85}
86
87static uint8_t *dev_buffer_packet_find(struct dev_buffer *dbuf,
88 gboolean (*packet_valid)(const uint8_t *),
89 size_t packet_size)
90{
91 size_t offset;
92
93 while (dbuf->len >= packet_size) {
94 if (packet_valid(dbuf->data + dbuf->offset)) {
95 offset = dbuf->offset;
96 dbuf->offset += packet_size;
97 dbuf->len -= packet_size;
98 return dbuf->data + offset;
99 }
100 dbuf->offset++;
101 dbuf->len--;
102 }
103
104 return NULL;
105}
106
107struct dev_sample_counter {
108 /** The current number of already received samples. */
109 uint64_t count;
110 /** The current sampling limit (in number of samples). */
111 uint64_t limit;
112};
113
114static void dev_sample_counter_start(struct dev_sample_counter *cnt)
115{
116 cnt->count = 0;
117}
118
119static void dev_sample_counter_inc(struct dev_sample_counter *cnt)
120{
121 cnt->count++;
122}
123
124static void dev_sample_limit_set(struct dev_sample_counter *cnt, uint64_t limit)
125{
126 cnt->limit = limit;
127}
128
129static gboolean dev_sample_limit_reached(struct dev_sample_counter *cnt)
130{
131 if (cnt->limit && cnt->count >= cnt->limit) {
132 sr_info("Requested sample limit reached.");
133 return TRUE;
134 }
135
136 return FALSE;
137}
138
139struct dev_time_counter {
140 /** The starting time of current sampling run. */
141 int64_t starttime;
142 /** The time limit (in milliseconds). */
143 uint64_t limit;
144};
145
146static void dev_time_counter_start(struct dev_time_counter *cnt)
147{
148 cnt->starttime = g_get_monotonic_time();
149}
150
151static void dev_time_limit_set(struct dev_time_counter *cnt, uint64_t limit)
152{
153 cnt->limit = limit;
154}
155
156static gboolean dev_time_limit_reached(struct dev_time_counter *cnt)
157{
158 int64_t time;
159
160 if (cnt->limit) {
161 time = (g_get_monotonic_time() - cnt->starttime) / 1000;
162 if (time > (int64_t)cnt->limit) {
163 sr_info("Requested time limit reached.");
164 return TRUE;
165 }
166 }
167
168 return FALSE;
169}
170
171static void serial_conf_get(GSList *options, const char *def_serialcomm,
172 const char **conn, const char **serialcomm)
173{
174 struct sr_config *src;
175 GSList *l;
176
177 *conn = *serialcomm = NULL;
178 for (l = options; l; l = l->next) {
179 src = l->data;
180 switch (src->key) {
181 case SR_CONF_CONN:
182 *conn = g_variant_get_string(src->data, NULL);
183 break;
184 case SR_CONF_SERIALCOMM:
185 *serialcomm = g_variant_get_string(src->data, NULL);
186 break;
187 }
188 }
189
190 if (*serialcomm == NULL)
191 *serialcomm = def_serialcomm;
192}
193
194static struct sr_serial_dev_inst *serial_dev_new(GSList *options,
195 const char *def_serialcomm)
196
197{
198 const char *conn, *serialcomm;
199
200 serial_conf_get(options, def_serialcomm, &conn, &serialcomm);
201
202 if (!conn)
203 return NULL;
204
205 return sr_serial_dev_inst_new(conn, serialcomm);
206}
207
208static int serial_stream_check_buf(struct sr_serial_dev_inst *serial,
209 uint8_t *buf, size_t buflen,
210 size_t packet_size,
211 packet_valid_callback is_valid,
212 uint64_t timeout_ms, int baudrate)
213{
214 size_t len, dropped;
215 int ret;
216
217 if ((ret = serial_open(serial, SERIAL_RDWR)) != SR_OK)
218 return ret;
219
220 serial_flush(serial);
221
222 len = buflen;
223 ret = serial_stream_detect(serial, buf, &len, packet_size,
224 is_valid, timeout_ms, baudrate);
225
226 serial_close(serial);
227
228 if (ret != SR_OK)
229 return ret;
230
231 /*
232 * If we dropped more than two packets worth of data, something is
233 * wrong. We shouldn't quit however, since the dropped bytes might be
234 * just zeroes at the beginning of the stream. Those can occur as a
235 * combination of the nonstandard cable that ships with some devices
236 * and the serial port or USB to serial adapter.
237 */
238 dropped = len - packet_size;
239 if (dropped > 2 * packet_size)
240 sr_warn("Had to drop too much data.");
241
242 return SR_OK;
243}
244
245static int serial_stream_check(struct sr_serial_dev_inst *serial,
246 size_t packet_size,
247 packet_valid_callback is_valid,
248 uint64_t timeout_ms, int baudrate)
249{
250 uint8_t buf[128];
251
252 return serial_stream_check_buf(serial, buf, sizeof(buf), packet_size,
253 is_valid, timeout_ms, baudrate);
254}
255
256struct std_opt_desc {
257 const uint32_t *scanopts;
258 const int num_scanopts;
259 const uint32_t *devopts;
260 const int num_devopts;
261};
262
263static int std_config_list(uint32_t key, GVariant **data,
264 const struct std_opt_desc *d)
265{
266 switch (key) {
267 case SR_CONF_SCAN_OPTIONS:
268 *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT32,
269 d->scanopts, d->num_scanopts, sizeof(uint32_t));
270 break;
271 case SR_CONF_DEVICE_OPTIONS:
272 *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT32,
273 d->devopts, d->num_devopts, sizeof(uint32_t));
274 break;
275 default:
276 return SR_ERR_NA;
277 }
278
279 return SR_OK;
280}
281
282static int send_config_update(struct sr_dev_inst *sdi, struct sr_config *cfg)
283{
284 struct sr_datafeed_packet packet;
285 struct sr_datafeed_meta meta;
286
287 memset(&meta, 0, sizeof(meta));
288
289 packet.type = SR_DF_META;
290 packet.payload = &meta;
291
292 meta.config = g_slist_append(meta.config, cfg);
293
294 return sr_session_send(sdi, &packet);
295}
296
297/*
298 * Cyrustek ES51919 LCR chipset host protocol.
299 *
300 * Public official documentation does not contain the protocol
301 * description, so this is all based on reverse engineering.
302 *
303 * Packet structure (17 bytes):
304 *
305 * 0x00: header1 ?? (0x00)
306 * 0x01: header2 ?? (0x0d)
307 *
308 * 0x02: flags
309 * bit 0 = hold enabled
310 * bit 1 = reference shown (in delta mode)
311 * bit 2 = delta mode
312 * bit 3 = calibration mode
313 * bit 4 = sorting mode
314 * bit 5 = LCR mode
315 * bit 6 = auto mode
316 * bit 7 = parallel measurement (vs. serial)
317 *
318 * 0x03: config
319 * bit 0-4 = ??? (0x10)
320 * bit 5-7 = test frequency
321 * 0 = 100 Hz
322 * 1 = 120 Hz
323 * 2 = 1 kHz
324 * 3 = 10 kHz
325 * 4 = 100 kHz
326 * 5 = 0 Hz (DC)
327 *
328 * 0x04: tolerance (sorting mode)
329 * 0 = not set
330 * 3 = +-0.25%
331 * 4 = +-0.5%
332 * 5 = +-1%
333 * 6 = +-2%
334 * 7 = +-5%
335 * 8 = +-10%
336 * 9 = +-20%
337 * 10 = -20+80%
338 *
339 * 0x05-0x09: primary measurement
340 * 0x05: measured quantity
341 * 1 = inductance
342 * 2 = capacitance
343 * 3 = resistance
344 * 4 = DC resistance
345 * 0x06: measurement MSB (0x4e20 = 20000 = outside limits)
346 * 0x07: measurement LSB
347 * 0x08: measurement info
348 * bit 0-2 = decimal point multiplier (10^-val)
349 * bit 3-7 = unit
350 * 0 = no unit
351 * 1 = Ohm
352 * 2 = kOhm
353 * 3 = MOhm
354 * 5 = uH
355 * 6 = mH
356 * 7 = H
357 * 8 = kH
358 * 9 = pF
359 * 10 = nF
360 * 11 = uF
361 * 12 = mF
362 * 13 = %
363 * 14 = degree
364 * 0x09: measurement status
365 * bit 0-3 = status
366 * 0 = normal (measurement shown)
367 * 1 = blank (nothing shown)
368 * 2 = lines ("----")
99d090d8 369 * 3 = outside limits ("OL")
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370 * 7 = pass ("PASS")
371 * 8 = fail ("FAIL")
372 * 9 = open ("OPEn")
373 * 10 = shorted ("Srt")
374 * bit 4-6 = ??? (maybe part of same field with 0-3)
375 * bit 7 = ??? (some independent flag)
376 *
377 * 0x0a-0x0e: secondary measurement
378 * 0x0a: measured quantity
379 * 0 = none
380 * 1 = dissipation factor
381 * 2 = quality factor
382 * 3 = parallel AC resistance / ESR
383 * 4 = phase angle
384 * 0x0b-0x0e: like primary measurement
385 *
386 * 0x0f: footer1 (0x0d) ?
387 * 0x10: footer2 (0x0a) ?
388 */
389
390#define PACKET_SIZE 17
391
392static const uint64_t frequencies[] = {
393 100, 120, 1000, 10000, 100000, 0,
394};
395
396/** Private, per-device-instance driver context. */
397struct dev_context {
398 /** Opaque pointer passed in by the frontend. */
399 void *cb_data;
400
401 /** The number of samples. */
402 struct dev_sample_counter sample_count;
403
404 /** The time limit counter. */
405 struct dev_time_counter time_count;
406
407 /** Data buffer. */
408 struct dev_buffer *buf;
409
410 /** The frequency of the test signal (index to frequencies[]). */
411 unsigned int freq;
412};
413
414static int parse_mq(const uint8_t *buf, int is_secondary, int is_parallel)
415{
416 switch (is_secondary << 8 | buf[0]) {
417 case 0x001:
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418 return is_parallel ?
419 SR_MQ_PARALLEL_INDUCTANCE : SR_MQ_SERIES_INDUCTANCE;
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420 case 0x002:
421 return is_parallel ?
c7c8994c 422 SR_MQ_PARALLEL_CAPACITANCE : SR_MQ_SERIES_CAPACITANCE;
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423 case 0x003:
424 case 0x103:
425 return is_parallel ?
c7c8994c 426 SR_MQ_PARALLEL_RESISTANCE : SR_MQ_SERIES_RESISTANCE;
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427 case 0x004:
428 return SR_MQ_RESISTANCE;
429 case 0x100:
430 return SR_MQ_DIFFERENCE;
431 case 0x101:
432 return SR_MQ_DISSIPATION_FACTOR;
433 case 0x102:
434 return SR_MQ_QUALITY_FACTOR;
435 case 0x104:
436 return SR_MQ_PHASE_ANGLE;
437 }
438
439 sr_err("Unknown quantity 0x%03x.", is_secondary << 8 | buf[0]);
440
441 return -1;
442}
443
444static float parse_value(const uint8_t *buf)
445{
446 static const float decimals[] = {
447 1, 1e-1, 1e-2, 1e-3, 1e-4, 1e-5, 1e-6, 1e-7
448 };
449 int16_t val;
450
451 val = (buf[1] << 8) | buf[2];
452 return (float)val * decimals[buf[3] & 7];
453}
454
455static void parse_measurement(const uint8_t *pkt, float *floatval,
456 struct sr_datafeed_analog *analog,
457 int is_secondary)
458{
459 static const struct {
460 int unit;
461 float mult;
462 } units[] = {
463 { SR_UNIT_UNITLESS, 1 }, /* no unit */
464 { SR_UNIT_OHM, 1 }, /* Ohm */
465 { SR_UNIT_OHM, 1e3 }, /* kOhm */
466 { SR_UNIT_OHM, 1e6 }, /* MOhm */
467 { -1, 0 }, /* ??? */
468 { SR_UNIT_HENRY, 1e-6 }, /* uH */
469 { SR_UNIT_HENRY, 1e-3 }, /* mH */
470 { SR_UNIT_HENRY, 1 }, /* H */
471 { SR_UNIT_HENRY, 1e3 }, /* kH */
472 { SR_UNIT_FARAD, 1e-12 }, /* pF */
473 { SR_UNIT_FARAD, 1e-9 }, /* nF */
474 { SR_UNIT_FARAD, 1e-6 }, /* uF */
475 { SR_UNIT_FARAD, 1e-3 }, /* mF */
476 { SR_UNIT_PERCENTAGE, 1 }, /* % */
477 { SR_UNIT_DEGREE, 1 } /* degree */
478 };
479 const uint8_t *buf;
480 int state;
481
482 buf = pkt + (is_secondary ? 10 : 5);
483
484 analog->mq = -1;
485 analog->mqflags = 0;
486
487 state = buf[4] & 0xf;
488
489 if (state != 0 && state != 3)
490 return;
491
492 if (pkt[2] & 0x18) {
493 /* Calibration and Sorting modes not supported. */
494 return;
495 }
496
497 if (!is_secondary) {
498 if (pkt[2] & 0x01)
499 analog->mqflags |= SR_MQFLAG_HOLD;
500 if (pkt[2] & 0x02)
501 analog->mqflags |= SR_MQFLAG_REFERENCE;
502 if (pkt[2] & 0x20)
503 analog->mqflags |= SR_MQFLAG_AUTOMQ;
504 if (pkt[2] & 0x40)
505 analog->mqflags |= SR_MQFLAG_AUTOMODEL;
506 } else {
507 if (pkt[2] & 0x04)
508 analog->mqflags |= SR_MQFLAG_RELATIVE;
509 }
510
511 if ((analog->mq = parse_mq(buf, is_secondary, pkt[2] & 0x80)) < 0)
512 return;
513
514 if ((buf[3] >> 3) >= ARRAY_SIZE(units)) {
515 sr_err("Unknown unit %u.", buf[3] >> 3);
516 analog->mq = -1;
517 return;
518 }
519
520 analog->unit = units[buf[3] >> 3].unit;
521
522 *floatval = parse_value(buf);
523 *floatval *= (state == 0) ? units[buf[3] >> 3].mult : INFINITY;
524}
525
526static unsigned int parse_frequency(const uint8_t *pkt)
527{
528 unsigned int freq;
529
530 freq = pkt[3] >> 5;
531
532 if (freq >= ARRAY_SIZE(frequencies)) {
533 sr_err("Unknown frequency %u.", freq);
534 freq = ARRAY_SIZE(frequencies) - 1;
535 }
536
537 return freq;
538}
539
540static gboolean packet_valid(const uint8_t *pkt)
541{
542 /*
543 * If the first two bytes of the packet are indeed a constant
544 * header, they should be checked too. Since we don't know it
545 * for sure, we'll just check the last two for now since they
546 * seem to be constant just like in the other Cyrustek chipset
547 * protocols.
548 */
549 if (pkt[15] == 0xd && pkt[16] == 0xa)
550 return TRUE;
551
552 return FALSE;
553}
554
555static int send_frequency_update(struct sr_dev_inst *sdi, unsigned int freq)
556{
557 struct sr_config *cfg;
558 struct dev_context *devc;
559 int ret;
560
561 devc = sdi->priv;
562
563 cfg = sr_config_new(SR_CONF_OUTPUT_FREQUENCY,
564 g_variant_new_uint64(frequencies[freq]));
565
566 if (!cfg)
567 return SR_ERR;
568
569 ret = send_config_update(devc->cb_data, cfg);
570 sr_config_free(cfg);
571
572 return ret;
573}
574
575static void handle_packet(struct sr_dev_inst *sdi, const uint8_t *pkt)
576{
577 struct sr_datafeed_packet packet;
578 struct sr_datafeed_analog analog;
579 struct dev_context *devc;
580 unsigned int freq;
581 float floatval;
582 int count;
583
584 devc = sdi->priv;
585
586 freq = parse_frequency(pkt);
587 if (freq != devc->freq) {
588 if (send_frequency_update(sdi, freq) == SR_OK)
589 devc->freq = freq;
590 else
591 return;
592 }
593
594 count = 0;
595
596 memset(&analog, 0, sizeof(analog));
597
598 analog.num_samples = 1;
599 analog.data = &floatval;
600
601 packet.type = SR_DF_ANALOG;
602 packet.payload = &analog;
603
604 analog.channels = g_slist_append(NULL, sdi->channels->data);
605
606 parse_measurement(pkt, &floatval, &analog, 0);
607 if (analog.mq >= 0) {
608 if (sr_session_send(devc->cb_data, &packet) == SR_OK)
609 count++;
610 }
611
612 analog.channels = g_slist_append(NULL, sdi->channels->next->data);
613
614 parse_measurement(pkt, &floatval, &analog, 1);
615 if (analog.mq >= 0) {
616 if (sr_session_send(devc->cb_data, &packet) == SR_OK)
617 count++;
618 }
619
620 if (count > 0)
621 dev_sample_counter_inc(&devc->sample_count);
622}
623
624static int handle_new_data(struct sr_dev_inst *sdi)
625{
626 struct dev_context *devc;
627 uint8_t *pkt;
628 int ret;
629
630 devc = sdi->priv;
631
632 ret = dev_buffer_fill_serial(devc->buf, sdi);
633 if (ret < 0)
634 return ret;
635
636 while ((pkt = dev_buffer_packet_find(devc->buf, packet_valid,
637 PACKET_SIZE)))
638 handle_packet(sdi, pkt);
639
640 return SR_OK;
641}
642
643static int receive_data(int fd, int revents, void *cb_data)
644{
645 struct sr_dev_inst *sdi;
646 struct dev_context *devc;
647
648 (void)fd;
649
650 if (!(sdi = cb_data))
651 return TRUE;
652
653 if (!(devc = sdi->priv))
654 return TRUE;
655
656 if (revents == G_IO_IN) {
657 /* Serial data arrived. */
658 handle_new_data(sdi);
659 }
660
661 if (dev_sample_limit_reached(&devc->sample_count) ||
662 dev_time_limit_reached(&devc->time_count))
663 sdi->driver->dev_acquisition_stop(sdi, cb_data);
664
665 return TRUE;
666}
667
668static int add_channel(struct sr_dev_inst *sdi, const char *name)
669{
670 struct sr_channel *ch;
671
672 if (!(ch = sr_channel_new(0, SR_CHANNEL_ANALOG, TRUE, name)))
673 return SR_ERR;
674
675 sdi->channels = g_slist_append(sdi->channels, ch);
676
677 return SR_OK;
678}
679
680static const char *const channel_names[] = { "P1", "P2" };
681
682static int setup_channels(struct sr_dev_inst *sdi)
683{
684 unsigned int i;
685 int ret;
686
687 ret = SR_ERR_BUG;
688
689 for (i = 0; i < ARRAY_SIZE(channel_names); i++) {
690 ret = add_channel(sdi, channel_names[i]);
691 if (ret != SR_OK)
692 break;
693 }
694
695 return ret;
696}
697
698SR_PRIV void es51919_serial_clean(void *priv)
699{
700 struct dev_context *devc;
701
702 if (!(devc = priv))
703 return;
704
705 dev_buffer_destroy(devc->buf);
706 g_free(devc);
707}
708
709SR_PRIV struct sr_dev_inst *es51919_serial_scan(GSList *options,
710 const char *vendor,
711 const char *model)
712{
713 struct sr_serial_dev_inst *serial;
714 struct sr_dev_inst *sdi;
715 struct dev_context *devc;
716 int ret;
717
718 serial = NULL;
719 sdi = NULL;
720 devc = NULL;
721
722 if (!(serial = serial_dev_new(options, "9600/8n1/rts=1/dtr=1")))
723 goto scan_cleanup;
724
725 ret = serial_stream_check(serial, PACKET_SIZE, packet_valid,
726 3000, 9600);
727 if (ret != SR_OK)
728 goto scan_cleanup;
729
730 sr_info("Found device on port %s.", serial->port);
731
732 if (!(sdi = sr_dev_inst_new(SR_ST_INACTIVE, vendor, model, NULL)))
733 goto scan_cleanup;
734
735 if (!(devc = g_try_malloc0(sizeof(struct dev_context)))) {
736 sr_err("Device context malloc failed.");
737 goto scan_cleanup;
738 }
739
740 if (!(devc->buf = dev_buffer_new(PACKET_SIZE * 8)))
741 goto scan_cleanup;
742
743 devc->freq = -1;
744
745 sdi->inst_type = SR_INST_SERIAL;
746 sdi->conn = serial;
747
748 sdi->priv = devc;
749
750 if (setup_channels(sdi) != SR_OK)
751 goto scan_cleanup;
752
753 return sdi;
754
755scan_cleanup:
756 es51919_serial_clean(devc);
757 if (sdi)
758 sr_dev_inst_free(sdi);
759 if (serial)
760 sr_serial_dev_inst_free(serial);
761
762 return NULL;
763}
764
765SR_PRIV int es51919_serial_config_get(uint32_t key, GVariant **data,
766 const struct sr_dev_inst *sdi,
767 const struct sr_channel_group *cg)
768{
769 struct dev_context *devc;
770
771 (void)cg;
772
773 if (!(devc = sdi->priv))
774 return SR_ERR_BUG;
775
776 switch (key) {
777 case SR_CONF_OUTPUT_FREQUENCY:
778 *data = g_variant_new_uint64(frequencies[devc->freq]);
779 break;
780 default:
781 sr_spew("%s: Unsupported key %u", __func__, key);
782 return SR_ERR_NA;
783 }
784
785 return SR_OK;
786}
787
788SR_PRIV int es51919_serial_config_set(uint32_t key, GVariant *data,
789 const struct sr_dev_inst *sdi,
790 const struct sr_channel_group *cg)
791{
792 struct dev_context *devc;
793 uint64_t val;
794
795 (void)cg;
796
797 if (!(devc = sdi->priv))
798 return SR_ERR_BUG;
799
800 switch (key) {
801 case SR_CONF_LIMIT_MSEC:
802 val = g_variant_get_uint64(data);
803 dev_time_limit_set(&devc->time_count, val);
804 sr_dbg("Setting time limit to %" PRIu64 ".", val);
805 break;
806 case SR_CONF_LIMIT_SAMPLES:
807 val = g_variant_get_uint64(data);
808 dev_sample_limit_set(&devc->sample_count, val);
809 sr_dbg("Setting sample limit to %" PRIu64 ".", val);
810 break;
811 default:
812 sr_spew("%s: Unsupported key %u", __func__, key);
813 return SR_ERR_NA;
814 }
815
816 return SR_OK;
817}
818
819static const uint32_t scanopts[] = {
820 SR_CONF_CONN,
821 SR_CONF_SERIALCOMM,
822};
823
824static const uint32_t devopts[] = {
b9a348f5 825 SR_CONF_LCRMETER,
6bcb3ee8
JH
826 SR_CONF_CONTINUOUS,
827 SR_CONF_LIMIT_SAMPLES | SR_CONF_SET,
828 SR_CONF_LIMIT_MSEC | SR_CONF_SET,
829 SR_CONF_OUTPUT_FREQUENCY | SR_CONF_GET | SR_CONF_LIST,
830};
831
832static const struct std_opt_desc opts = {
833 scanopts, ARRAY_SIZE(scanopts),
834 devopts, ARRAY_SIZE(devopts),
835};
836
837SR_PRIV int es51919_serial_config_list(uint32_t key, GVariant **data,
838 const struct sr_dev_inst *sdi,
839 const struct sr_channel_group *cg)
840{
841 (void)sdi;
842 (void)cg;
843
844 if (std_config_list(key, data, &opts) == SR_OK)
845 return SR_OK;
846
847 switch (key) {
848 case SR_CONF_OUTPUT_FREQUENCY:
849 *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT64,
850 frequencies, ARRAY_SIZE(frequencies), sizeof(uint64_t));
851 break;
852 default:
853 sr_spew("%s: Unsupported key %u", __func__, key);
854 return SR_ERR_NA;
855 }
856
857 return SR_OK;
858}
859
860SR_PRIV int es51919_serial_acquisition_start(const struct sr_dev_inst *sdi,
861 void *cb_data)
862{
863 struct dev_context *devc;
864 struct sr_serial_dev_inst *serial;
865
866 if (sdi->status != SR_ST_ACTIVE)
867 return SR_ERR_DEV_CLOSED;
868
869 if (!(devc = sdi->priv))
870 return SR_ERR_BUG;
871
872 devc->cb_data = cb_data;
873
874 dev_sample_counter_start(&devc->sample_count);
875 dev_time_counter_start(&devc->time_count);
876
877 /* Send header packet to the session bus. */
878 std_session_send_df_header(cb_data, LOG_PREFIX);
879
880 /* Poll every 50ms, or whenever some data comes in. */
881 serial = sdi->conn;
882 serial_source_add(sdi->session, serial, G_IO_IN, 50,
883 receive_data, (void *)sdi);
884
885 return SR_OK;
886}
887
888SR_PRIV int es51919_serial_acquisition_stop(struct sr_dev_inst *sdi,
889 void *cb_data)
890{
891 return std_serial_dev_acquisition_stop(sdi, cb_data,
892 std_serial_dev_close, sdi->conn, LOG_PREFIX);
893}