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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
6ec6c43b 20#include <config.h>
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21#include <stdint.h>
22#include <string.h>
23#include <math.h>
24#include <glib.h>
c1aae900 25#include <libsigrok/libsigrok.h>
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26#include "libsigrok-internal.h"
27
28#define LOG_PREFIX "es51919"
29
30struct dev_buffer {
31 /** Total size of the buffer. */
32 size_t size;
33 /** Amount of data currently in the buffer. */
34 size_t len;
35 /** Offset where the data starts in the buffer. */
36 size_t offset;
37 /** Space for the data. */
38 uint8_t data[];
39};
40
41static struct dev_buffer *dev_buffer_new(size_t size)
42{
43 struct dev_buffer *dbuf;
44
91219afc 45 dbuf = g_malloc0(sizeof(struct dev_buffer) + size);
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46 dbuf->size = size;
47 dbuf->len = 0;
48 dbuf->offset = 0;
49
50 return dbuf;
51}
52
53static void dev_buffer_destroy(struct dev_buffer *dbuf)
54{
55 g_free(dbuf);
56}
57
58static int dev_buffer_fill_serial(struct dev_buffer *dbuf,
59 struct sr_dev_inst *sdi)
60{
61 struct sr_serial_dev_inst *serial;
62 int len;
63
64 serial = sdi->conn;
65
66 /* If we already have data, move it to the beginning of the buffer. */
67 if (dbuf->len > 0 && dbuf->offset > 0)
68 memmove(dbuf->data, dbuf->data + dbuf->offset, dbuf->len);
69
70 dbuf->offset = 0;
71
72 len = dbuf->size - dbuf->len;
73 len = serial_read_nonblocking(serial, dbuf->data + dbuf->len, len);
74 if (len < 0) {
75 sr_err("Serial port read error: %d.", len);
76 return len;
77 }
78
79 dbuf->len += len;
80
81 return SR_OK;
82}
83
84static uint8_t *dev_buffer_packet_find(struct dev_buffer *dbuf,
85 gboolean (*packet_valid)(const uint8_t *),
86 size_t packet_size)
87{
88 size_t offset;
89
90 while (dbuf->len >= packet_size) {
91 if (packet_valid(dbuf->data + dbuf->offset)) {
92 offset = dbuf->offset;
93 dbuf->offset += packet_size;
94 dbuf->len -= packet_size;
95 return dbuf->data + offset;
96 }
97 dbuf->offset++;
98 dbuf->len--;
99 }
100
101 return NULL;
102}
103
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104struct dev_limit_counter {
105 /** The current number of received samples/frames/etc. */
6bcb3ee8 106 uint64_t count;
787ec9db 107 /** The limit (in number of samples/frames/etc.). */
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108 uint64_t limit;
109};
110
787ec9db 111static void dev_limit_counter_start(struct dev_limit_counter *cnt)
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112{
113 cnt->count = 0;
114}
115
787ec9db 116static void dev_limit_counter_inc(struct dev_limit_counter *cnt)
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117{
118 cnt->count++;
119}
120
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121static void dev_limit_counter_limit_set(struct dev_limit_counter *cnt,
122 uint64_t limit)
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123{
124 cnt->limit = limit;
125}
126
787ec9db 127static gboolean dev_limit_counter_limit_reached(struct dev_limit_counter *cnt)
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128{
129 if (cnt->limit && cnt->count >= cnt->limit) {
787ec9db 130 sr_info("Requested counter limit reached.");
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131 return TRUE;
132 }
133
134 return FALSE;
135}
136
137struct dev_time_counter {
138 /** The starting time of current sampling run. */
139 int64_t starttime;
140 /** The time limit (in milliseconds). */
141 uint64_t limit;
142};
143
144static void dev_time_counter_start(struct dev_time_counter *cnt)
145{
146 cnt->starttime = g_get_monotonic_time();
147}
148
149static void dev_time_limit_set(struct dev_time_counter *cnt, uint64_t limit)
150{
151 cnt->limit = limit;
152}
153
154static gboolean dev_time_limit_reached(struct dev_time_counter *cnt)
155{
156 int64_t time;
157
158 if (cnt->limit) {
159 time = (g_get_monotonic_time() - cnt->starttime) / 1000;
160 if (time > (int64_t)cnt->limit) {
161 sr_info("Requested time limit reached.");
162 return TRUE;
163 }
164 }
165
166 return FALSE;
167}
168
169static void serial_conf_get(GSList *options, const char *def_serialcomm,
170 const char **conn, const char **serialcomm)
171{
172 struct sr_config *src;
173 GSList *l;
174
175 *conn = *serialcomm = NULL;
176 for (l = options; l; l = l->next) {
177 src = l->data;
178 switch (src->key) {
179 case SR_CONF_CONN:
180 *conn = g_variant_get_string(src->data, NULL);
181 break;
182 case SR_CONF_SERIALCOMM:
183 *serialcomm = g_variant_get_string(src->data, NULL);
184 break;
185 }
186 }
187
188 if (*serialcomm == NULL)
189 *serialcomm = def_serialcomm;
190}
191
192static struct sr_serial_dev_inst *serial_dev_new(GSList *options,
193 const char *def_serialcomm)
194
195{
196 const char *conn, *serialcomm;
197
198 serial_conf_get(options, def_serialcomm, &conn, &serialcomm);
199
200 if (!conn)
201 return NULL;
202
203 return sr_serial_dev_inst_new(conn, serialcomm);
204}
205
206static int serial_stream_check_buf(struct sr_serial_dev_inst *serial,
207 uint8_t *buf, size_t buflen,
208 size_t packet_size,
209 packet_valid_callback is_valid,
210 uint64_t timeout_ms, int baudrate)
211{
212 size_t len, dropped;
213 int ret;
214
215 if ((ret = serial_open(serial, SERIAL_RDWR)) != SR_OK)
216 return ret;
217
218 serial_flush(serial);
219
220 len = buflen;
221 ret = serial_stream_detect(serial, buf, &len, packet_size,
222 is_valid, timeout_ms, baudrate);
223
224 serial_close(serial);
225
226 if (ret != SR_OK)
227 return ret;
228
229 /*
230 * If we dropped more than two packets worth of data, something is
231 * wrong. We shouldn't quit however, since the dropped bytes might be
232 * just zeroes at the beginning of the stream. Those can occur as a
233 * combination of the nonstandard cable that ships with some devices
234 * and the serial port or USB to serial adapter.
235 */
236 dropped = len - packet_size;
237 if (dropped > 2 * packet_size)
238 sr_warn("Had to drop too much data.");
239
240 return SR_OK;
241}
242
243static int serial_stream_check(struct sr_serial_dev_inst *serial,
244 size_t packet_size,
245 packet_valid_callback is_valid,
246 uint64_t timeout_ms, int baudrate)
247{
248 uint8_t buf[128];
249
250 return serial_stream_check_buf(serial, buf, sizeof(buf), packet_size,
251 is_valid, timeout_ms, baudrate);
252}
253
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254static int send_config_update(struct sr_dev_inst *sdi, struct sr_config *cfg)
255{
256 struct sr_datafeed_packet packet;
257 struct sr_datafeed_meta meta;
258
259 memset(&meta, 0, sizeof(meta));
260
261 packet.type = SR_DF_META;
262 packet.payload = &meta;
263
264 meta.config = g_slist_append(meta.config, cfg);
265
266 return sr_session_send(sdi, &packet);
267}
268
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269static int send_config_update_key(struct sr_dev_inst *sdi, uint32_t key,
270 GVariant *var)
271{
272 struct sr_config *cfg;
273 int ret;
274
275 cfg = sr_config_new(key, var);
276 if (!cfg)
277 return SR_ERR;
278
279 ret = send_config_update(sdi, cfg);
280 sr_config_free(cfg);
281
282 return ret;
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283}
284
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285/*
286 * Cyrustek ES51919 LCR chipset host protocol.
287 *
288 * Public official documentation does not contain the protocol
289 * description, so this is all based on reverse engineering.
290 *
291 * Packet structure (17 bytes):
292 *
293 * 0x00: header1 ?? (0x00)
294 * 0x01: header2 ?? (0x0d)
295 *
296 * 0x02: flags
297 * bit 0 = hold enabled
298 * bit 1 = reference shown (in delta mode)
299 * bit 2 = delta mode
300 * bit 3 = calibration mode
301 * bit 4 = sorting mode
302 * bit 5 = LCR mode
303 * bit 6 = auto mode
304 * bit 7 = parallel measurement (vs. serial)
305 *
306 * 0x03: config
307 * bit 0-4 = ??? (0x10)
308 * bit 5-7 = test frequency
309 * 0 = 100 Hz
310 * 1 = 120 Hz
311 * 2 = 1 kHz
312 * 3 = 10 kHz
313 * 4 = 100 kHz
314 * 5 = 0 Hz (DC)
315 *
316 * 0x04: tolerance (sorting mode)
317 * 0 = not set
318 * 3 = +-0.25%
319 * 4 = +-0.5%
320 * 5 = +-1%
321 * 6 = +-2%
322 * 7 = +-5%
323 * 8 = +-10%
324 * 9 = +-20%
325 * 10 = -20+80%
326 *
327 * 0x05-0x09: primary measurement
328 * 0x05: measured quantity
329 * 1 = inductance
330 * 2 = capacitance
331 * 3 = resistance
332 * 4 = DC resistance
333 * 0x06: measurement MSB (0x4e20 = 20000 = outside limits)
334 * 0x07: measurement LSB
335 * 0x08: measurement info
336 * bit 0-2 = decimal point multiplier (10^-val)
337 * bit 3-7 = unit
338 * 0 = no unit
339 * 1 = Ohm
340 * 2 = kOhm
341 * 3 = MOhm
342 * 5 = uH
343 * 6 = mH
344 * 7 = H
345 * 8 = kH
346 * 9 = pF
347 * 10 = nF
348 * 11 = uF
349 * 12 = mF
350 * 13 = %
351 * 14 = degree
352 * 0x09: measurement status
353 * bit 0-3 = status
354 * 0 = normal (measurement shown)
355 * 1 = blank (nothing shown)
356 * 2 = lines ("----")
99d090d8 357 * 3 = outside limits ("OL")
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358 * 7 = pass ("PASS")
359 * 8 = fail ("FAIL")
360 * 9 = open ("OPEn")
361 * 10 = shorted ("Srt")
362 * bit 4-6 = ??? (maybe part of same field with 0-3)
363 * bit 7 = ??? (some independent flag)
364 *
365 * 0x0a-0x0e: secondary measurement
366 * 0x0a: measured quantity
367 * 0 = none
368 * 1 = dissipation factor
369 * 2 = quality factor
370 * 3 = parallel AC resistance / ESR
371 * 4 = phase angle
372 * 0x0b-0x0e: like primary measurement
373 *
374 * 0x0f: footer1 (0x0d) ?
375 * 0x10: footer2 (0x0a) ?
376 */
377
378#define PACKET_SIZE 17
379
b94dd07b 380static const double frequencies[] = {
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381 100, 120, 1000, 10000, 100000, 0,
382};
383
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384enum { MODEL_NONE, MODEL_PAR, MODEL_SER, MODEL_AUTO, };
385
386static const char *const models[] = {
387 "NONE", "PARALLEL", "SERIES", "AUTO",
388};
389
6bcb3ee8 390struct dev_context {
787ec9db 391 struct dev_limit_counter frame_count;
6bcb3ee8 392
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393 struct dev_time_counter time_count;
394
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395 struct dev_buffer *buf;
396
397 /** The frequency of the test signal (index to frequencies[]). */
398 unsigned int freq;
a42a39ac 399
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400 /** Equivalent circuit model (index to models[]). */
401 unsigned int model;
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402};
403
a42a39ac 404static const uint8_t *pkt_to_buf(const uint8_t *pkt, int is_secondary)
6bcb3ee8 405{
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406 return is_secondary ? pkt + 10 : pkt + 5;
407}
408
409static int parse_mq(const uint8_t *pkt, int is_secondary, int is_parallel)
410{
411 const uint8_t *buf;
412
413 buf = pkt_to_buf(pkt, is_secondary);
414
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415 switch (is_secondary << 8 | buf[0]) {
416 case 0x001:
1beccaed 417 return is_parallel ?
c7c8994c 418 SR_MQ_PARALLEL_INDUCTANCE : SR_MQ_SERIES_INDUCTANCE;
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419 case 0x002:
420 return is_parallel ?
c7c8994c 421 SR_MQ_PARALLEL_CAPACITANCE : SR_MQ_SERIES_CAPACITANCE;
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422 case 0x003:
423 case 0x103:
424 return is_parallel ?
c7c8994c 425 SR_MQ_PARALLEL_RESISTANCE : SR_MQ_SERIES_RESISTANCE;
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426 case 0x004:
427 return SR_MQ_RESISTANCE;
428 case 0x100:
429 return SR_MQ_DIFFERENCE;
430 case 0x101:
431 return SR_MQ_DISSIPATION_FACTOR;
432 case 0x102:
433 return SR_MQ_QUALITY_FACTOR;
434 case 0x104:
435 return SR_MQ_PHASE_ANGLE;
436 }
437
438 sr_err("Unknown quantity 0x%03x.", is_secondary << 8 | buf[0]);
439
7ffcf587 440 return 0;
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441}
442
24b6882f 443static float parse_value(const uint8_t *buf, int *digits)
6bcb3ee8 444{
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445 static const int exponents[] = {0, -1, -2, -3, -4, -5, -6, -7};
446 int exponent;
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447 int16_t val;
448
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449 exponent = exponents[buf[3] & 7];
450 *digits = -exponent;
6bcb3ee8 451 val = (buf[1] << 8) | buf[2];
24b6882f 452 return (float)val * powf(10, exponent);
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453}
454
455static void parse_measurement(const uint8_t *pkt, float *floatval,
7ffcf587 456 struct sr_datafeed_analog *analog,
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457 int is_secondary)
458{
459 static const struct {
460 int unit;
24b6882f 461 int exponent;
6bcb3ee8 462 } units[] = {
d9251a2c
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463 { SR_UNIT_UNITLESS, 0 }, /* no unit */
464 { SR_UNIT_OHM, 0 }, /* Ohm */
465 { SR_UNIT_OHM, 3 }, /* kOhm */
466 { SR_UNIT_OHM, 6 }, /* MOhm */
467 { -1, 0 }, /* ??? */
468 { SR_UNIT_HENRY, -6 }, /* uH */
469 { SR_UNIT_HENRY, -3 }, /* mH */
470 { SR_UNIT_HENRY, 0 }, /* H */
471 { SR_UNIT_HENRY, 3 }, /* kH */
472 { SR_UNIT_FARAD, -12 }, /* pF */
473 { SR_UNIT_FARAD, -9 }, /* nF */
474 { SR_UNIT_FARAD, -6 }, /* uF */
475 { SR_UNIT_FARAD, -3 }, /* mF */
476 { SR_UNIT_PERCENTAGE, 0 }, /* % */
477 { SR_UNIT_DEGREE, 0 }, /* degree */
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478 };
479 const uint8_t *buf;
24b6882f 480 int digits, exponent;
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481 int state;
482
a42a39ac 483 buf = pkt_to_buf(pkt, is_secondary);
6bcb3ee8 484
7ffcf587
UH
485 analog->meaning->mq = 0;
486 analog->meaning->mqflags = 0;
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487
488 state = buf[4] & 0xf;
489
490 if (state != 0 && state != 3)
491 return;
492
493 if (pkt[2] & 0x18) {
494 /* Calibration and Sorting modes not supported. */
495 return;
496 }
497
498 if (!is_secondary) {
499 if (pkt[2] & 0x01)
7ffcf587 500 analog->meaning->mqflags |= SR_MQFLAG_HOLD;
6bcb3ee8 501 if (pkt[2] & 0x02)
7ffcf587 502 analog->meaning->mqflags |= SR_MQFLAG_REFERENCE;
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503 } else {
504 if (pkt[2] & 0x04)
7ffcf587 505 analog->meaning->mqflags |= SR_MQFLAG_RELATIVE;
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506 }
507
693c5248 508 if ((analog->meaning->mq = parse_mq(pkt, is_secondary, pkt[2] & 0x80)) == 0)
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509 return;
510
511 if ((buf[3] >> 3) >= ARRAY_SIZE(units)) {
512 sr_err("Unknown unit %u.", buf[3] >> 3);
7ffcf587 513 analog->meaning->mq = 0;
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514 return;
515 }
516
7ffcf587 517 analog->meaning->unit = units[buf[3] >> 3].unit;
6bcb3ee8 518
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519 exponent = units[buf[3] >> 3].exponent;
520 *floatval = parse_value(buf, &digits);
521 *floatval *= (state == 0) ? powf(10, exponent) : INFINITY;
522 analog->encoding->digits = digits - exponent;
523 analog->spec->spec_digits = digits - exponent;
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524}
525
a42a39ac 526static unsigned int parse_freq(const uint8_t *pkt)
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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
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540static unsigned int parse_model(const uint8_t *pkt)
541{
542 if (pkt[2] & 0x40)
543 return MODEL_AUTO;
544 else if (parse_mq(pkt, 0, 0) == SR_MQ_RESISTANCE)
545 return MODEL_NONE;
546 else if (pkt[2] & 0x80)
547 return MODEL_PAR;
548 else
549 return MODEL_SER;
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550}
551
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552static gboolean packet_valid(const uint8_t *pkt)
553{
554 /*
555 * If the first two bytes of the packet are indeed a constant
556 * header, they should be checked too. Since we don't know it
557 * for sure, we'll just check the last two for now since they
558 * seem to be constant just like in the other Cyrustek chipset
559 * protocols.
560 */
561 if (pkt[15] == 0xd && pkt[16] == 0xa)
562 return TRUE;
563
564 return FALSE;
565}
566
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567static int do_config_update(struct sr_dev_inst *sdi, uint32_t key,
568 GVariant *var)
6bcb3ee8 569{
695dc859 570 return send_config_update_key(sdi, key, var);
a42a39ac 571}
6bcb3ee8 572
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573static int send_freq_update(struct sr_dev_inst *sdi, unsigned int freq)
574{
575 return do_config_update(sdi, SR_CONF_OUTPUT_FREQUENCY,
b94dd07b 576 g_variant_new_double(frequencies[freq]));
a42a39ac 577}
6bcb3ee8 578
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579static int send_model_update(struct sr_dev_inst *sdi, unsigned int model)
580{
581 return do_config_update(sdi, SR_CONF_EQUIV_CIRCUIT_MODEL,
582 g_variant_new_string(models[model]));
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583}
584
585static void handle_packet(struct sr_dev_inst *sdi, const uint8_t *pkt)
586{
587 struct sr_datafeed_packet packet;
7ffcf587
UH
588 struct sr_datafeed_analog analog;
589 struct sr_analog_encoding encoding;
590 struct sr_analog_meaning meaning;
591 struct sr_analog_spec spec;
6bcb3ee8 592 struct dev_context *devc;
a42a39ac 593 unsigned int val;
6bcb3ee8 594 float floatval;
a6413fa5 595 gboolean frame;
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596
597 devc = sdi->priv;
598
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599 val = parse_freq(pkt);
600 if (val != devc->freq) {
601 if (send_freq_update(sdi, val) == SR_OK)
602 devc->freq = val;
603 else
604 return;
605 }
606
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607 val = parse_model(pkt);
608 if (val != devc->model) {
609 if (send_model_update(sdi, val) == SR_OK)
610 devc->model = val;
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611 else
612 return;
613 }
614
a6413fa5 615 frame = FALSE;
6bcb3ee8 616
869c8375 617 /* Note: digits/spec_digits will be overridden later. */
7ffcf587 618 sr_analog_init(&analog, &encoding, &meaning, &spec, 0);
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619
620 analog.num_samples = 1;
621 analog.data = &floatval;
622
7ffcf587 623 analog.meaning->channels = g_slist_append(NULL, sdi->channels->data);
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624
625 parse_measurement(pkt, &floatval, &analog, 0);
7ffcf587 626 if (analog.meaning->mq != 0) {
a6413fa5
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627 if (!frame) {
628 packet.type = SR_DF_FRAME_BEGIN;
695dc859 629 sr_session_send(sdi, &packet);
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630 frame = TRUE;
631 }
632
7ffcf587 633 packet.type = SR_DF_ANALOG;
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634 packet.payload = &analog;
635
695dc859 636 sr_session_send(sdi, &packet);
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637 }
638
7ffcf587
UH
639 g_slist_free(analog.meaning->channels);
640 analog.meaning->channels = g_slist_append(NULL, sdi->channels->next->data);
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641
642 parse_measurement(pkt, &floatval, &analog, 1);
7ffcf587 643 if (analog.meaning->mq != 0) {
a6413fa5
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644 if (!frame) {
645 packet.type = SR_DF_FRAME_BEGIN;
695dc859 646 sr_session_send(sdi, &packet);
a6413fa5
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647 frame = TRUE;
648 }
649
7ffcf587 650 packet.type = SR_DF_ANALOG;
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651 packet.payload = &analog;
652
695dc859 653 sr_session_send(sdi, &packet);
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654 }
655
7ffcf587 656 g_slist_free(analog.meaning->channels);
80e20c10 657
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658 if (frame) {
659 packet.type = SR_DF_FRAME_END;
695dc859 660 sr_session_send(sdi, &packet);
787ec9db 661 dev_limit_counter_inc(&devc->frame_count);
a6413fa5 662 }
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663}
664
665static int handle_new_data(struct sr_dev_inst *sdi)
666{
667 struct dev_context *devc;
668 uint8_t *pkt;
669 int ret;
670
671 devc = sdi->priv;
672
673 ret = dev_buffer_fill_serial(devc->buf, sdi);
674 if (ret < 0)
675 return ret;
676
677 while ((pkt = dev_buffer_packet_find(devc->buf, packet_valid,
678 PACKET_SIZE)))
679 handle_packet(sdi, pkt);
680
681 return SR_OK;
682}
683
684static int receive_data(int fd, int revents, void *cb_data)
685{
686 struct sr_dev_inst *sdi;
687 struct dev_context *devc;
688
689 (void)fd;
690
691 if (!(sdi = cb_data))
692 return TRUE;
693
694 if (!(devc = sdi->priv))
695 return TRUE;
696
697 if (revents == G_IO_IN) {
698 /* Serial data arrived. */
699 handle_new_data(sdi);
700 }
701
787ec9db 702 if (dev_limit_counter_limit_reached(&devc->frame_count) ||
6bcb3ee8 703 dev_time_limit_reached(&devc->time_count))
d2f7c417 704 sr_dev_acquisition_stop(sdi);
6bcb3ee8
JH
705
706 return TRUE;
707}
708
6bcb3ee8
JH
709static const char *const channel_names[] = { "P1", "P2" };
710
711static int setup_channels(struct sr_dev_inst *sdi)
712{
713 unsigned int i;
6bcb3ee8 714
5e23fcab
ML
715 for (i = 0; i < ARRAY_SIZE(channel_names); i++)
716 sr_channel_new(sdi, i, SR_CHANNEL_ANALOG, TRUE, channel_names[i]);
6bcb3ee8 717
6b7e644e 718 return SR_OK;
6bcb3ee8
JH
719}
720
721SR_PRIV void es51919_serial_clean(void *priv)
722{
723 struct dev_context *devc;
724
725 if (!(devc = priv))
726 return;
727
728 dev_buffer_destroy(devc->buf);
729 g_free(devc);
730}
731
732SR_PRIV struct sr_dev_inst *es51919_serial_scan(GSList *options,
733 const char *vendor,
734 const char *model)
735{
736 struct sr_serial_dev_inst *serial;
737 struct sr_dev_inst *sdi;
738 struct dev_context *devc;
739 int ret;
740
741 serial = NULL;
742 sdi = NULL;
743 devc = NULL;
744
745 if (!(serial = serial_dev_new(options, "9600/8n1/rts=1/dtr=1")))
746 goto scan_cleanup;
747
748 ret = serial_stream_check(serial, PACKET_SIZE, packet_valid,
749 3000, 9600);
750 if (ret != SR_OK)
751 goto scan_cleanup;
752
753 sr_info("Found device on port %s.", serial->port);
754
aac29cc1 755 sdi = g_malloc0(sizeof(struct sr_dev_inst));
0af636be
UH
756 sdi->status = SR_ST_INACTIVE;
757 sdi->vendor = g_strdup(vendor);
758 sdi->model = g_strdup(model);
f57d8ffe 759 devc = g_malloc0(sizeof(struct dev_context));
91219afc 760 devc->buf = dev_buffer_new(PACKET_SIZE * 8);
6bcb3ee8
JH
761 sdi->inst_type = SR_INST_SERIAL;
762 sdi->conn = serial;
6bcb3ee8
JH
763 sdi->priv = devc;
764
765 if (setup_channels(sdi) != SR_OK)
766 goto scan_cleanup;
767
768 return sdi;
769
770scan_cleanup:
771 es51919_serial_clean(devc);
4bf93988 772 sr_dev_inst_free(sdi);
04891a99 773 sr_serial_dev_inst_free(serial);
6bcb3ee8
JH
774
775 return NULL;
776}
777
778SR_PRIV int es51919_serial_config_get(uint32_t key, GVariant **data,
779 const struct sr_dev_inst *sdi,
780 const struct sr_channel_group *cg)
781{
782 struct dev_context *devc;
783
784 (void)cg;
785
709468ba 786 devc = sdi->priv;
6bcb3ee8
JH
787
788 switch (key) {
789 case SR_CONF_OUTPUT_FREQUENCY:
b94dd07b 790 *data = g_variant_new_double(frequencies[devc->freq]);
6bcb3ee8 791 break;
a42a39ac
JH
792 case SR_CONF_EQUIV_CIRCUIT_MODEL:
793 *data = g_variant_new_string(models[devc->model]);
794 break;
6bcb3ee8 795 default:
6bcb3ee8
JH
796 return SR_ERR_NA;
797 }
798
799 return SR_OK;
800}
801
802SR_PRIV int es51919_serial_config_set(uint32_t key, GVariant *data,
803 const struct sr_dev_inst *sdi,
804 const struct sr_channel_group *cg)
805{
806 struct dev_context *devc;
807 uint64_t val;
808
809 (void)cg;
810
811 if (!(devc = sdi->priv))
812 return SR_ERR_BUG;
813
814 switch (key) {
815 case SR_CONF_LIMIT_MSEC:
816 val = g_variant_get_uint64(data);
817 dev_time_limit_set(&devc->time_count, val);
818 sr_dbg("Setting time limit to %" PRIu64 ".", val);
819 break;
787ec9db 820 case SR_CONF_LIMIT_FRAMES:
6bcb3ee8 821 val = g_variant_get_uint64(data);
787ec9db
JH
822 dev_limit_counter_limit_set(&devc->frame_count, val);
823 sr_dbg("Setting frame limit to %" PRIu64 ".", val);
6bcb3ee8
JH
824 break;
825 default:
826 sr_spew("%s: Unsupported key %u", __func__, key);
827 return SR_ERR_NA;
828 }
829
830 return SR_OK;
831}
832
833static const uint32_t scanopts[] = {
834 SR_CONF_CONN,
835 SR_CONF_SERIALCOMM,
836};
837
05199c0a 838static const uint32_t drvopts[] = {
b9a348f5 839 SR_CONF_LCRMETER,
05199c0a
UH
840};
841
842static const uint32_t devopts[] = {
6bcb3ee8 843 SR_CONF_CONTINUOUS,
787ec9db 844 SR_CONF_LIMIT_FRAMES | SR_CONF_SET,
6bcb3ee8
JH
845 SR_CONF_LIMIT_MSEC | SR_CONF_SET,
846 SR_CONF_OUTPUT_FREQUENCY | SR_CONF_GET | SR_CONF_LIST,
a42a39ac 847 SR_CONF_EQUIV_CIRCUIT_MODEL | SR_CONF_GET | SR_CONF_LIST,
6bcb3ee8
JH
848};
849
6bcb3ee8
JH
850SR_PRIV int es51919_serial_config_list(uint32_t key, GVariant **data,
851 const struct sr_dev_inst *sdi,
852 const struct sr_channel_group *cg)
853{
6bcb3ee8 854 switch (key) {
e66d1892
UH
855 case SR_CONF_SCAN_OPTIONS:
856 case SR_CONF_DEVICE_OPTIONS:
05199c0a 857 return STD_CONFIG_LIST(key, data, sdi, cg, scanopts, drvopts, devopts);
6bcb3ee8 858 case SR_CONF_OUTPUT_FREQUENCY:
b94dd07b 859 *data = g_variant_new_fixed_array(G_VARIANT_TYPE_DOUBLE,
53012da6 860 ARRAY_AND_SIZE(frequencies), sizeof(double));
6bcb3ee8 861 break;
a42a39ac 862 case SR_CONF_EQUIV_CIRCUIT_MODEL:
53012da6 863 *data = g_variant_new_strv(ARRAY_AND_SIZE(models));
a42a39ac 864 break;
6bcb3ee8 865 default:
6bcb3ee8
JH
866 return SR_ERR_NA;
867 }
868
869 return SR_OK;
870}
871
695dc859 872SR_PRIV int es51919_serial_acquisition_start(const struct sr_dev_inst *sdi)
6bcb3ee8
JH
873{
874 struct dev_context *devc;
875 struct sr_serial_dev_inst *serial;
876
6bcb3ee8
JH
877 if (!(devc = sdi->priv))
878 return SR_ERR_BUG;
879
787ec9db 880 dev_limit_counter_start(&devc->frame_count);
6bcb3ee8
JH
881 dev_time_counter_start(&devc->time_count);
882
bee2b016 883 std_session_send_df_header(sdi);
6bcb3ee8 884
6bcb3ee8
JH
885 serial = sdi->conn;
886 serial_source_add(sdi->session, serial, G_IO_IN, 50,
887 receive_data, (void *)sdi);
888
889 return SR_OK;
890}