]> sigrok.org Git - libsigrok.git/blame_incremental - src/hardware/gmc-mh-1x-2x/protocol.c
Fix a few "value never read" scan-build warnings.
[libsigrok.git] / src / hardware / gmc-mh-1x-2x / protocol.c
... / ...
CommitLineData
1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 2013, 2014 Matthias Heidbrink <m-sigrok@heidbrink.biz>
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/** @file
21 * Gossen Metrawatt Metrahit 1x/2x drivers
22 * @internal
23 */
24
25#include <config.h>
26#include <math.h>
27#include <string.h>
28#include "protocol.h"
29
30/* Internal Headers */
31static guchar calc_chksum_14(guchar *dta);
32static int chk_msg14(struct sr_dev_inst *sdi);
33
34/** Set or clear flags in devc->mqflags. */
35static void setmqf(struct dev_context *devc, uint64_t flags, gboolean set)
36{
37 if (set)
38 devc->mqflags |= flags;
39 else
40 devc->mqflags &= ~flags;
41}
42
43/** Decode current type and measured value, Metrahit 12-16. */
44static void decode_ctmv_16(uint8_t ctmv, struct dev_context *devc)
45{
46 devc->mq = 0;
47 devc->unit = 0;
48 devc->mqflags = 0;
49
50 switch (ctmv) {
51 case 0x00: /* 0000 - */
52 break;
53 case 0x01: /* 0001 mV DC */
54 devc->scale1000 = -1; /* Fall through */
55 case 0x02: /* 0010 V DC */
56 case 0x03: /* 0011 V AC+DC */
57 case 0x04: /* 0100 V AC */
58 devc->mq = SR_MQ_VOLTAGE;
59 devc->unit = SR_UNIT_VOLT;
60 if (ctmv <= 0x03)
61 devc->mqflags |= SR_MQFLAG_DC;
62 if (ctmv >= 0x03) {
63 devc->mqflags |= SR_MQFLAG_AC;
64 if (devc->model >= METRAHIT_16S)
65 devc->mqflags |= SR_MQFLAG_RMS;
66 }
67 break;
68 case 0x05: /* 0101 Hz (15S/16S only) */
69 case 0x06: /* 0110 kHz (15S/16S only) */
70 devc->mq = SR_MQ_FREQUENCY;
71 devc->unit = SR_UNIT_HERTZ;
72 if (ctmv == 0x06)
73 devc->scale1000 = 1;
74 break;
75 case 0x07: /* 0111 % (15S/16S only) */
76 devc->mq = SR_MQ_DUTY_CYCLE;
77 devc->unit = SR_UNIT_PERCENTAGE;
78 break;
79 case 0x08: /* 1000 Diode */
80 devc->mq = SR_MQ_VOLTAGE;
81 devc->unit = SR_UNIT_VOLT;
82 devc->mqflags |= SR_MQFLAG_DIODE;
83 break;
84 case 0x09: /* 1001 Ohm, °C */
85 case 0x0a: /* 1010 kOhm */
86 case 0x0b: /* 1011 MOhm */
87 devc->mq = SR_MQ_RESISTANCE; /* Changed to temp. later if req.*/
88 devc->unit = SR_UNIT_OHM;
89 devc->scale1000 = ctmv - 0x09;
90 break;
91 case 0x0c: /* 1100 nF (15S/16S only) */
92 case 0x0d: /* 1101 µF (15S/16S only) */
93 devc->mq = SR_MQ_CAPACITANCE;
94 devc->unit = SR_UNIT_FARAD;
95 if (ctmv == 0x0c)
96 devc->scale1000 = -3;
97 else
98 devc->scale1000 = -2;
99 break;
100 case 0x0e: /* mA, µA */
101 devc->scale1000 = -1; /* Fall through. */
102 case 0x0f: /* A */
103 devc->mq = SR_MQ_CURRENT;
104 devc->unit = SR_UNIT_AMPERE;
105 if (devc->model == METRAHIT_16S)
106 devc->mqflags |= SR_MQFLAG_RMS;
107 /* 16I A only with clamp, RMS questionable. */
108 break;
109 }
110}
111
112/**
113 * Decode range/sign/acdc byte special chars (Metrahit 12-16).
114 *
115 * @param[in] rs Range and sign byte.
116 */
117static void decode_rs_16(uint8_t rs, struct dev_context *devc)
118{
119 sr_spew("decode_rs_16(%d) scale = %f", rs, devc->scale);
120
121 if (rs & 0x04) /* Sign */
122 devc->scale *= -1.0;
123
124 if (devc->mq == SR_MQ_CURRENT) {
125 if (rs & 0x08) /* Current is AC */
126 devc->mqflags |= SR_MQFLAG_AC;
127 else
128 devc->mqflags |= SR_MQFLAG_DC;
129 }
130
131 switch (rs & 0x03) {
132 case 0:
133 if (devc->mq == SR_MQ_VOLTAGE) /* V */
134 devc->scale *= 0.1;
135 else if (devc->mq == SR_MQ_CURRENT) /* 000.0 µA */
136 devc->scale *= 0.00001;
137 else if (devc->mq == SR_MQ_RESISTANCE) {
138 if (devc->buflen >= 10) {
139 /* °C with 10 byte msg type, otherwise GOhm. */
140 devc->mq = SR_MQ_TEMPERATURE;
141 devc->unit = SR_UNIT_CELSIUS;
142 devc->scale *= 0.01;
143 } else if (devc->scale1000 == 2) {
144 /* 16I Iso 500/1000V 3 GOhm */
145 devc->scale *= 0.1;
146 }
147 }
148 break;
149 case 1:
150 devc->scale *= 0.0001;
151 break;
152 case 2:
153 devc->scale *= 0.001;
154 break;
155 case 3:
156 devc->scale *= 0.01;
157 break;
158 }
159}
160
161/**
162 * Decode special chars, Metrahit 12-16.
163 *
164 * @param[in] spc Special characters 1 and 2 (s1 | (s2 << 4)).
165 */
166static void decode_spc_16(uint8_t spc, struct dev_context *devc)
167{
168 /* xxxx1xxx ON */
169 /* TODO: What does that mean? Power on? The 16I sets this. */
170 /* xxxxx1xx BEEP */
171 /* xxxxxx1x Low battery */
172 /* xxxxxxx1 FUSE */
173 /* 1xxxxxxx MIN */
174 setmqf(devc, SR_MQFLAG_MIN, spc & 0x80);
175
176 /* x1xxxxxx MAN */
177 setmqf(devc, SR_MQFLAG_AUTORANGE, !(spc & 0x40));
178
179 /* xx1xxxxx DATA */
180 setmqf(devc, SR_MQFLAG_HOLD, spc & 0x20);
181
182 /* xxx1xxxx MAX */
183 setmqf(devc, SR_MQFLAG_MAX, spc & 0x10);
184}
185
186/** Decode current type and measured value, Metrahit 18. */
187static void decode_ctmv_18(uint8_t ctmv, struct dev_context *devc)
188{
189 devc->mq = 0;
190 devc->unit = 0;
191 devc->mqflags = 0;
192
193 switch (ctmv) {
194 case 0x00: /* 0000 - */
195 break;
196 case 0x01: /* 0001 V AC */
197 case 0x02: /* 0010 V AC+DC */
198 case 0x03: /* 0011 V DC */
199 devc->mq = SR_MQ_VOLTAGE;
200 devc->unit = SR_UNIT_VOLT;
201 if (ctmv <= 0x02)
202 devc->mqflags |= (SR_MQFLAG_AC | SR_MQFLAG_RMS);
203 if (ctmv >= 0x02)
204 devc->mqflags |= SR_MQFLAG_DC;
205 break;
206 case 0x04: /* 0100 Ohm/Ohm with buzzer */
207 devc->mq = SR_MQ_RESISTANCE;
208 devc->unit = SR_UNIT_OHM;
209 break;
210 case 0x05: /* 0101 Diode/Diode with buzzer */
211 devc->mq = SR_MQ_VOLTAGE;
212 devc->unit = SR_UNIT_VOLT;
213 devc->mqflags |= SR_MQFLAG_DIODE;
214 break;
215 case 0x06: /* 0110 °C */
216 devc->mq = SR_MQ_TEMPERATURE;
217 devc->unit = SR_UNIT_CELSIUS;
218 break;
219 case 0x07: /* 0111 F */
220 devc->mq = SR_MQ_CAPACITANCE;
221 devc->unit = SR_UNIT_FARAD;
222 break;
223 case 0x08: /* 1000 mA DC */
224 case 0x09: /* 1001 A DC */
225 case 0x0a: /* 1010 mA AC+DC */
226 case 0x0b: /* 1011 A AC+DC */
227 devc->mq = SR_MQ_CURRENT;
228 devc->unit = SR_UNIT_AMPERE;
229 devc->mqflags |= SR_MQFLAG_DC;
230 if (ctmv >= 0x0a)
231 devc->mqflags |= (SR_MQFLAG_AC | SR_MQFLAG_RMS);
232 if ((ctmv == 0x08) || (ctmv == 0x0a))
233 devc->scale1000 = -1;
234 break;
235 case 0x0c: /* 1100 Hz */
236 devc->mq = SR_MQ_FREQUENCY;
237 devc->unit = SR_UNIT_HERTZ;
238 break;
239 case 0x0d: /* 1101 dB */
240 devc->mq = SR_MQ_VOLTAGE;
241 devc->unit = SR_UNIT_DECIBEL_VOLT;
242 devc->mqflags |= SR_MQFLAG_AC; /* dB available for AC only */
243 break;
244 case 0x0e: /* 1110 Events AC, Events AC+DC. Actually delivers just
245 * current voltage via IR, nothing more. */
246 devc->mq = SR_MQ_VOLTAGE;
247 devc->unit = SR_UNIT_VOLT;
248 devc->mqflags |= SR_MQFLAG_AC | SR_MQFLAG_DC | SR_MQFLAG_RMS;
249 break;
250 case 0x0f: /* 1111 Clock */
251 devc->mq = SR_MQ_TIME;
252 devc->unit = SR_UNIT_SECOND;
253 devc->mqflags |= SR_MQFLAG_DURATION;
254 break;
255 }
256}
257
258/**
259 * Decode range/sign/acdc byte special chars, Metrahit 18.
260 *
261 * @param[in] rs Range/sign byte.
262 */
263static void decode_rs_18(uint8_t rs, struct dev_context *devc)
264{
265 int range;
266
267 /* Sign */
268 if (((devc->scale > 0) && (rs & 0x08)) ||
269 ((devc->scale < 0) && !(rs & 0x08)))
270 devc->scale *= -1.0;
271
272 /* Range */
273 range = rs & 0x07;
274 switch (devc->mq) {
275 case SR_MQ_VOLTAGE:
276 if (devc->unit == SR_UNIT_DECIBEL_VOLT) {
277 devc->scale *= pow(10.0, -2);
278 /*
279 * When entering relative mode, the device switches
280 * from 10 byte to 6 byte msg format. Unfortunately
281 * it switches back to 10 byte when the second value
282 * is measured, so that's not sufficient to
283 * identify relative mode.
284 */
285 }
286 else
287 devc->scale *= pow(10.0, range - 5);
288 break;
289 case SR_MQ_CURRENT:
290 if (devc->scale1000 == -1)
291 devc->scale *= pow(10.0, range - 5);
292 else
293 devc->scale *= pow(10.0, range - 4);
294 break;
295 case SR_MQ_RESISTANCE:
296 devc->scale *= pow(10.0, range - 2);
297 break;
298 case SR_MQ_FREQUENCY:
299 devc->scale *= pow(10.0, range - 2);
300 break;
301 case SR_MQ_TEMPERATURE:
302 devc->scale *= pow(10.0, range - 2);
303 break;
304 case SR_MQ_CAPACITANCE:
305 devc->scale *= pow(10.0, range - 13);
306 break;
307 /* TODO: 29S Mains measurements. */
308 }
309}
310
311/**
312 * Decode special chars, Metrahit 18.
313 *
314 * @param[in] spc Special characters 1 and 2 (s1 | (s2 << 4)).
315 */
316static void decode_spc_18(uint8_t spc, struct dev_context *devc)
317{
318 /* xxxx1xxx ZERO */
319 /* xxxxx1xx BEEP */
320 /* xxxxxx1x Low battery */
321 /* xxxxxxx1 Fuse */
322
323 if (devc->mq == SR_MQ_TIME) {
324 /* xxx1xxxx Clock running: 1; stop: 0 */
325 sr_spew("Clock running: %d", spc >> 4);
326 } else {
327 /* 1xxxxxxx MAN */
328 setmqf(devc, SR_MQFLAG_AUTORANGE, !(spc & 0x80));
329
330 /* x1xxxxxx MIN */
331 setmqf(devc, SR_MQFLAG_MIN, spc & 0x40);
332
333 /* xx1xxxxx MAX */
334 setmqf(devc, SR_MQFLAG_MAX, spc & 0x20);
335
336 /* xxx1xxxx DATA */
337 setmqf(devc, SR_MQFLAG_HOLD, spc & 0x10);
338 }
339}
340
341/**
342 * Decode current type and measured value, Metrahit 2x.
343 *
344 * @param[in] ctmv Current type and measured value (v1 | (v2 << 4)).
345 */
346static void decode_ctmv_2x(uint8_t ctmv, struct dev_context *devc)
347{
348 if ((ctmv > 0x20) || (!devc)) {
349 sr_err("decode_ctmv_2x(0x%x): invalid param(s)!", ctmv);
350 return;
351 }
352
353 devc->mq = 0;
354 devc->unit = 0;
355 devc->mqflags = 0;
356
357 switch (ctmv) {
358 /* 00000 unused */
359 case 0x01: /* 00001 V DC */
360 case 0x02: /* 00010 V AC+DC */
361 case 0x03: /* 00011 V AC */
362 devc->mq = SR_MQ_VOLTAGE;
363 devc->unit = SR_UNIT_VOLT;
364 if (ctmv <= 0x02)
365 devc->mqflags |= SR_MQFLAG_DC;
366 if (ctmv >= 0x02) {
367 devc->mqflags |= SR_MQFLAG_AC;
368 if (devc->model >= METRAHIT_24S)
369 devc->mqflags |= SR_MQFLAG_RMS;
370 }
371 break;
372 case 0x04: /* 00100 mA DC */
373 case 0x05: /* 00101 mA AC+DC */
374 devc->scale1000 = -1;
375 /* Fall through! */
376 case 0x06: /* 00110 A DC */
377 case 0x07: /* 00111 A AC+DC */
378 devc->mq = SR_MQ_CURRENT;
379 devc->unit = SR_UNIT_AMPERE;
380 devc->mqflags |= SR_MQFLAG_DC;
381 if ((ctmv == 0x05) || (ctmv == 0x07)) {
382 devc->mqflags |= SR_MQFLAG_AC;
383 if (devc->model >= METRAHIT_24S)
384 devc->mqflags |= SR_MQFLAG_RMS;
385 }
386 break;
387 case 0x08: /* 01000 Ohm */
388 devc->mq = SR_MQ_RESISTANCE;
389 devc->unit = SR_UNIT_OHM;
390 break;
391 case 0x09: /* 01001 F */
392 devc->mq = SR_MQ_CAPACITANCE;
393 devc->unit = SR_UNIT_FARAD;
394 devc->scale *= 0.1;
395 break;
396 case 0x0a: /* 01010 V dB */
397 devc->mq = SR_MQ_VOLTAGE;
398 devc->unit = SR_UNIT_DECIBEL_VOLT;
399 devc->mqflags |= SR_MQFLAG_AC;
400 if (devc->model >= METRAHIT_24S)
401 devc->mqflags |= SR_MQFLAG_RMS;
402 break;
403 case 0x0b: /* 01011 Hz U ACDC */
404 case 0x0c: /* 01100 Hz U AC */
405 devc->mq = SR_MQ_FREQUENCY;
406 devc->unit = SR_UNIT_HERTZ;
407 devc->mqflags |= SR_MQFLAG_AC;
408 if (ctmv <= 0x0b)
409 devc->mqflags |= SR_MQFLAG_DC;
410 break;
411 case 0x0d: /* 01101 W on power, mA range (29S only) */
412 devc->scale *= 0.1;
413 /* Fall through! */
414 case 0x0e: /* 01110 W on power, A range (29S only) */
415 devc->scale *= 0.1;
416 devc->scale1000 = -1;
417 devc->mq = SR_MQ_POWER;
418 devc->unit = SR_UNIT_WATT;
419 devc->mqflags |= (SR_MQFLAG_AC | SR_MQFLAG_DC | SR_MQFLAG_RMS);
420 break;
421 case 0x0f: /* 01111 Diode */
422 case 0x10: /* 10000 Diode with buzzer (actually cont. with voltage) */
423 devc->unit = SR_UNIT_VOLT;
424 if (ctmv == 0x0f) {
425 devc->mq = SR_MQ_VOLTAGE;
426 devc->mqflags |= SR_MQFLAG_DIODE;
427 } else {
428 devc->mq = SR_MQ_CONTINUITY;
429 devc->scale *= 0.00001;
430 }
431 devc->unit = SR_UNIT_VOLT;
432 break;
433 case 0x11: /* 10001 Ohm with buzzer */
434 devc->mq = SR_MQ_CONTINUITY;
435 devc->unit = SR_UNIT_OHM;
436 devc->scale1000 = -1;
437 break;
438 case 0x12: /* 10010 Temperature */
439 devc->mq = SR_MQ_TEMPERATURE;
440 devc->unit = SR_UNIT_CELSIUS;
441 /* This can be Fahrenheit. That is detected by range=4 later. */
442 break;
443 /* 0x13 10011 unused */
444 /* 0x14 10100 unused */
445 case 0x15: /* 10101 Press (29S only) */
446 /* TODO: What does that mean? Possibly phase shift?
447 Then we need a unit/flag for it. */
448 devc->mq = SR_MQ_GAIN;
449 devc->unit = SR_UNIT_PERCENTAGE;
450 break;
451 case 0x16: /* 10110 Pulse W (29S only) */
452 /* TODO: Own unit and flag for this! */
453 devc->mq = SR_MQ_POWER;
454 devc->unit = SR_UNIT_WATT;
455 break;
456 case 0x17: /* 10111 TRMS V on mains (29S only) */
457 devc->mq = SR_MQ_VOLTAGE;
458 devc->unit = SR_UNIT_VOLT;
459 devc->mqflags |= (SR_MQFLAG_AC | SR_MQFLAG_DC | SR_MQFLAG_RMS);
460 break;
461 case 0x18: /* 11000 Counter (zero crossings of a signal) */
462 devc->mq = SR_MQ_VOLTAGE;
463 devc->unit = SR_UNIT_UNITLESS;
464 break;
465 case 0x19: /* 11001 Events U ACDC */
466 case 0x1a: /* 11010 Events U AC */
467 /* TODO: No unit or flags for this yet! */
468 devc->mq = SR_MQ_VOLTAGE;
469 devc->unit = SR_UNIT_UNITLESS;
470 devc->mqflags |= SR_MQFLAG_AC;
471 if (ctmv <= 0x19)
472 devc->mqflags |= SR_MQFLAG_DC;
473 break;
474 case 0x1b: /* 11011 Milliamperes in power mode (29S only); error in docs, "pulse on mains" */
475 devc->mq = SR_MQ_CURRENT;
476 devc->unit = SR_UNIT_AMPERE;
477 devc->mqflags |= (SR_MQFLAG_AC | SR_MQFLAG_DC | SR_MQFLAG_RMS);
478 devc->scale1000 = -1;
479 break;
480 case 0x1c: /* 11100 dropout on mains (29S only) */
481 /* TODO: No unit or flags for this yet! */
482 devc->mq = SR_MQ_VOLTAGE;
483 devc->unit = SR_UNIT_UNITLESS;
484 devc->mqflags |= SR_MQFLAG_AC;
485 break;
486 case 0x1d: /* 11101 Voltage in power mode (29S); undocumented! */
487 devc->mq = SR_MQ_VOLTAGE;
488 devc->unit = SR_UNIT_VOLT;
489 devc->mqflags |= (SR_MQFLAG_AC | SR_MQFLAG_DC | SR_MQFLAG_RMS);
490 break;
491 /* 0x1e: 11110 Undocumented */
492 case 0x1f: /* 11111 25S in stopwatch mode; undocumented!
493 The value is voltage, not time, so treat it such. */
494 devc->mq = SR_MQ_VOLTAGE;
495 devc->unit = SR_UNIT_VOLT;
496 devc->mqflags |= SR_MQFLAG_DC;
497 break;
498 case 0x20: /* 100000 25S in event count mode; undocumented!
499 Value is 0 anyway. */
500 devc->mq = SR_MQ_VOLTAGE;
501 devc->unit = SR_UNIT_UNITLESS;
502 break;
503 default:
504 sr_err("decode_ctmv_2x(%d, ...): Unknown ctmv!", ctmv);
505 break;
506 }
507}
508
509/**
510 * Decode range/sign/acdc byte special chars, Metrahit 2x, table TR.
511 *
512 * @param[in] rs Range/sign byte.
513 */
514static void decode_rs_2x(uint8_t rs, struct dev_context *devc)
515{
516 int range;
517
518 /* Sign */
519 if (((devc->scale > 0) && (rs & 0x08)) ||
520 ((devc->scale < 0) && !(rs & 0x08)))
521 devc->scale *= -1.0;
522
523 /* Range */
524 range = rs & 0x07;
525 switch (devc->mq) {
526 case SR_MQ_VOLTAGE:
527 if (devc->unit == SR_UNIT_DECIBEL_VOLT)
528 devc->scale *= pow(10.0, -3);
529 else
530 devc->scale *= pow(10.0, range - 6);
531 break;
532 case SR_MQ_CURRENT:
533 if (devc->scale1000 != -1) /* uA, mA */
534 range += 1;/* mA and A ranges differ by 10^4, not 10^3!*/
535 devc->scale *= pow(10.0, range - 6);
536 break;
537 case SR_MQ_RESISTANCE:
538 devc->scale *= pow(10.0, range - 3);
539 break;
540 case SR_MQ_FREQUENCY:
541 devc->scale *= pow(10.0, range - 3);
542 break;
543 case SR_MQ_TEMPERATURE:
544 if (range == 4) /* Indicator for °F */
545 devc->unit = SR_UNIT_FAHRENHEIT;
546 devc->scale *= pow(10.0, - 2);
547 break;
548 case SR_MQ_CAPACITANCE:
549 if (range == 7)
550 range -= 1; /* Same value as range 6 */
551 devc->scale *= pow(10.0, range - 13);
552 break;
553 /* TODO: 29S Mains measurements. */
554 }
555}
556
557/**
558 * Decode range/sign/acdc byte special chars, Metrahit 2x, table TR 2.
559 *
560 * @param[in] rs Range/sign byte.
561 */
562static void decode_rs_2x_TR2(uint8_t rs, struct dev_context *devc)
563{
564 int range;
565
566 /* Range */
567 range = rs & 0x07;
568 switch (devc->mq) {
569 case SR_MQ_CURRENT:
570 if (devc->scale1000 == -1) /* mA */
571 switch (range) {
572 case 0:
573 case 1: /* 100, 300 µA */
574 devc->scale *= pow(10.0, -6);
575 break;
576 case 2:
577 case 3: /* 1, 3 mA */
578 devc->scale *= pow(10.0, -5);
579 break;
580 case 4:
581 case 5: /* 10, 30 mA */
582 devc->scale *= pow(10.0, -4);
583 break;
584 case 6:
585 case 7: /* 100, 300 mA */
586 devc->scale *= pow(10.0, -3);
587 break;
588 }
589 else /* A */
590 switch (range) {
591 case 0:
592 case 1: /* 1, 3 A */
593 devc->scale *= pow(10.0, -5);
594 break;
595 case 2: /* 10 A */
596 devc->scale *= pow(10.0, -4);
597 break;
598 }
599 break;
600 default:
601 decode_rs_2x(rs, devc);
602 return;
603 }
604
605 /* Sign */
606 if (((devc->scale > 0) && (rs & 0x08)) ||
607 ((devc->scale < 0) && !(rs & 0x08)))
608 devc->scale *= -1.0;
609}
610
611/**
612 * Decode special chars (Metrahit 2x).
613 *
614 * @param[in] spc Special characters 1 and 2 (s1 | (s2 << 4)).
615 */
616static void decode_spc_2x(uint8_t spc, struct dev_context *devc)
617{
618 /* xxxxxxx1 Fuse */
619
620 /* xxxxxx1x Low battery */
621
622 /* xxxxx1xx BEEP */
623
624 /* xxxx1xxx ZERO */
625
626 /* xxx1xxxx DATA */
627 setmqf(devc, SR_MQFLAG_HOLD, spc & 0x10);
628
629 /* x11xxxxx unused */
630 /* 1xxxxxxx MAN */
631 setmqf(devc, SR_MQFLAG_AUTORANGE, !(spc & 0x80));
632}
633
634/** Clean range and sign. */
635static void clean_rs_v(struct dev_context *devc)
636{
637 devc->value = 0.0;
638 devc->scale = 1.0;
639}
640
641/** Clean current type, measured variable, range and sign. */
642static void clean_ctmv_rs_v(struct dev_context *devc)
643{
644 devc->mq = 0;
645 devc->unit = 0;
646 devc->mqflags = 0;
647 devc->scale1000 = 0;
648 clean_rs_v(devc);
649}
650
651/** Send prepared value. */
652static void send_value(struct sr_dev_inst *sdi)
653{
654 struct dev_context *devc;
655 struct sr_datafeed_analog analog;
656 struct sr_datafeed_packet packet;
657
658 devc = sdi->priv;
659
660 memset(&analog, 0, sizeof(struct sr_datafeed_analog));
661 analog.channels = sdi->channels;
662 analog.num_samples = 1;
663 analog.mq = devc->mq;
664 analog.unit = devc->unit;
665 analog.mqflags = devc->mqflags;
666 analog.data = &devc->value;
667
668 memset(&packet, 0, sizeof(struct sr_datafeed_packet));
669 packet.type = SR_DF_ANALOG;
670 packet.payload = &analog;
671 sr_session_send(devc->cb_data, &packet);
672
673 devc->num_samples++;
674}
675
676/** Process 6-byte data message, Metrahit 1x/2x send mode. */
677static void process_msg_dta_6(struct sr_dev_inst *sdi)
678{
679 struct dev_context *devc;
680 int cnt;
681 uint8_t dgt;
682
683 devc = sdi->priv;
684 clean_rs_v(devc);
685
686 /* Byte 0, range and sign */
687 if (devc->model <= METRAHIT_16X)
688 decode_rs_16(bc(devc->buf[0]), devc);
689 else if (devc->model < METRAHIT_2X)
690 decode_rs_18(bc(devc->buf[0]), devc);
691 else {
692 decode_rs_2x(bc(devc->buf[0]), devc);
693 devc->scale *= 10; /* Compensate for format having only 5 digits, decode_rs_2x() assumes 6. */
694 }
695
696 /* Bytes 1-5, digits (ls first). */
697 for (cnt = 0; cnt < 5; cnt++) {
698 dgt = bc(devc->buf[1 + cnt]);
699 if (dgt >= 10) {
700 /* 10 Overload; on model <= 16X also 11 possible. */
701 devc->value = NAN;
702 devc->scale = 1.0;
703 break;
704 }
705 devc->value += pow(10.0, cnt) * dgt;
706 }
707
708 sr_spew("process_msg_dta_6() value=%f scale=%f scale1000=%d",
709 devc->value, devc->scale, devc->scale1000);
710 if (devc->value != NAN)
711 devc->value *= devc->scale * pow(1000.0, devc->scale1000);
712
713 /* Create and send packet. */
714 send_value(sdi);
715}
716
717/** Process 5-byte info message, Metrahit 1x/2x. */
718static void process_msg_inf_5(struct sr_dev_inst *sdi)
719{
720 struct dev_context *devc;
721 enum model model;
722
723 devc = sdi->priv;
724
725 clean_ctmv_rs_v(devc);
726
727 /* Process byte 0 */
728 model = gmc_decode_model_sm(bc(devc->buf[0]));
729 if (model != devc->model) {
730 sr_warn("Model mismatch in data: Detected %s, now %s",
731 gmc_model_str(devc->model), gmc_model_str(model));
732 }
733
734 /* Process bytes 1-4 */
735 if (devc->model <= METRAHIT_16X) {
736 decode_ctmv_16(bc(devc->buf[1]), devc);
737 decode_spc_16(bc(devc->buf[2]) | (bc(devc->buf[3]) << 4), devc);
738 decode_rs_16(bc(devc->buf[4]), devc);
739 } else if (devc->model <= METRAHIT_18S) {
740 decode_ctmv_18(bc(devc->buf[1]), devc);
741 decode_spc_18(bc(devc->buf[2]) | (bc(devc->buf[3]) << 4), devc);
742 decode_rs_18(bc(devc->buf[4]), devc);
743 } else { /* Must be Metrahit 2x */
744 decode_ctmv_2x(bc(devc->buf[1]), devc);
745 decode_spc_2x(bc(devc->buf[2]) | (bc(devc->buf[3]) << 4), devc);
746 decode_rs_2x(bc(devc->buf[4]), devc);
747 }
748}
749
750/** Process 10-byte info/data message, Metrahit 15+. */
751static void process_msg_inf_10(struct sr_dev_inst *sdi)
752{
753 struct dev_context *devc;
754 int cnt;
755 uint8_t dgt;
756
757 devc = sdi->priv;
758
759 process_msg_inf_5(sdi);
760
761 /* Now decode numbers */
762 for (cnt = 0; cnt < 5; cnt++) {
763 dgt = bc(devc->buf[5 + cnt]);
764 if (dgt == 11) { /* Empty digit */
765 dgt = 0;
766 }
767 else if (dgt >= 12) { /* Overload */
768 devc->value = NAN;
769 devc->scale = 1.0;
770 break;
771 }
772 devc->value += pow(10.0, cnt) * dgt;
773 }
774 sr_spew("process_msg_inf_10() value=%f scale=%f scalet=%d",
775 devc->value, devc->scale, devc->scale1000);
776
777 if (devc->value != NAN)
778 devc->value *= devc->scale * pow(1000.0, devc->scale1000);
779
780 /* Create and send packet. */
781 send_value(sdi);
782}
783
784/** Decode send interval (Metrahit 2x only). */
785static const char *decode_send_interval(uint8_t si)
786{
787 switch (si) {
788 case 0x00:
789 return "0.05";
790 case 0x01:
791 return "0.1";
792 case 0x02:
793 return "0.2";
794 case 0x03:
795 return "0.5";
796 case 0x04:
797 return "00:01";
798 case 0x05:
799 return "00:02";
800 case 0x06:
801 return "00:05";
802 case 0x07:
803 return "00:10";
804 case 0x08:
805 return "00:20";
806 case 0x09:
807 return "00:30";
808 case 0x0a:
809 return "01:00";
810 case 0x0b:
811 return "02:00";
812 case 0x0c:
813 return "05:00";
814 case 0x0d:
815 return "10:00";
816 case 0x0e:
817 return "----";
818 case 0x0f:
819 return "data";
820 default:
821 return "Unknown value";
822 }
823}
824
825/** Process 13-byte info/data message, Metrahit 2x. */
826static void process_msg_inf_13(struct sr_dev_inst *sdi)
827{
828 struct dev_context *devc;
829 enum model model;
830 int cnt;
831 uint8_t dgt;
832
833 devc = sdi->priv;
834
835 clean_ctmv_rs_v(devc);
836
837 /* Byte 0, model. */
838 model = gmc_decode_model_sm(bc(devc->buf[0]));
839 if (model != devc->model) {
840 sr_warn("Model mismatch in data: Detected %s, now %s",
841 gmc_model_str(devc->model), gmc_model_str(model));
842 }
843
844 /* Bytes 1-4, 11. */
845 decode_ctmv_2x(bc(devc->buf[1]) | (bc(devc->buf[11]) << 4), devc);
846 decode_spc_2x(bc(devc->buf[2]) | (bc(devc->buf[3]) << 4), devc);
847 decode_rs_2x(bc(devc->buf[4]), devc);
848
849 /* Bytes 5-10, digits (ls first). */
850 for (cnt = 0; cnt < 6; cnt++) {
851 dgt = bc(devc->buf[5 + cnt]);
852 if (dgt == 10) { /* Overload */
853 devc->value = NAN;
854 devc->scale = 1.0;
855 break;
856 }
857 devc->value += pow(10.0, cnt) * dgt;
858 }
859 sr_spew("process_msg_inf_13() value=%f scale=%f scale1000=%d mq=%d "
860 "unit=%d mqflags=0x%02" PRIx64, devc->value, devc->scale,
861 devc->scale1000, devc->mq, devc->unit, devc->mqflags);
862 if (devc->value != NAN)
863 devc->value *= devc->scale * pow(1000.0, devc->scale1000);
864
865 /* Byte 12, Send Interval */
866 sr_spew("Send interval: %s", decode_send_interval(bc(devc->buf[12])));
867
868 /* Create and send packet. */
869 send_value(sdi);
870}
871
872/** Dump contents of 14-byte message.
873 * @param buf Pointer to array of 14 data bytes.
874 * @param[in] raw Write only data bytes, no interpretation.
875 */
876void dump_msg14(guchar *buf, gboolean raw)
877{
878 if (!buf)
879 return;
880
881 if (raw)
882 sr_spew("msg14: 0x %02x %02x %02x %02x %02x %02x %02x %02x "
883 "%02x %02x %02x %02x %02x %02x",
884 buf[0], buf[1], buf[2], buf[3], buf[4], buf[5], buf[6],
885 buf[7], buf[8], buf[9], buf[10], buf[11], buf[12],
886 buf[13]);
887 else
888 sr_spew("msg14: 0x a=%d c1=%02x c2=%02x cmd=%02x dta=%02x "
889 "%02x %02x %02x %02x %02x %02x %02x %02x chs=%02x",
890 buf[1] == 0x2b?buf[0] >> 2:buf[0] % 0x0f, buf[1], buf[2], buf[3], buf[4], buf[5],
891 buf[6], buf[7], buf[8], buf[9], buf[10], buf[11],
892 buf[12], buf[13]);
893}
894
895/** Calc checksum for 14 byte message type.
896 *
897 * @param[in] dta Pointer to array of 13 data bytes.
898 * @return Checksum.
899 */
900static guchar calc_chksum_14(guchar *dta)
901{
902 guchar cnt, chs;
903
904 for (chs = 0, cnt = 0; cnt < (GMC_REPLY_SIZE - 1); cnt++)
905 chs += dta[cnt];
906
907 return (64 - chs) & MASK_6BITS;
908}
909
910/** Check 14-byte message, Metrahit 2x. */
911static int chk_msg14(struct sr_dev_inst *sdi)
912{
913 struct dev_context *devc;
914 int retc;
915 gboolean isreq; /* Message is request to multimeter (otherwise response) */
916 uint8_t addr; /* Adaptor address */
917
918 retc = SR_OK;
919
920 /* Check parameters and message */
921 if (!sdi || !(devc = sdi->priv))
922 return SR_ERR_ARG;
923
924 if (devc->buflen != 14) {
925 sr_err("process_msg_14(): Msg len 14 expected!");
926 return SR_ERR_ARG;
927 }
928
929 isreq = devc->buf[1] == 0x2b;
930 if (isreq)
931 addr = devc->buf[0] >> 2;
932 else
933 addr = devc->buf[0] & 0x0f;
934
935 if ((devc->addr != addr) && !(isreq && (addr == 0))) {
936 sr_err("process_msg_14(): Address mismatch, msg for other device!");
937 retc = SR_ERR_ARG;
938 }
939
940 if (devc->buf[1] == 0) { /* Error msg from device! */
941 switch (devc->buf[2]) {
942 case 1: /* Not used */
943 sr_err("Device: Illegal error code!");
944 break;
945 case 2: /* Incorrect check sum of received block */
946 sr_err("Device: Incorrect checksum in cmd!");
947 break;
948 case 3: /* Incorrect length of received block */
949 sr_err("Device: Incorrect block length in cmd!");
950 break;
951 case 4: /* Incorrect 2nd or 3rd byte */
952 sr_err("Device: Incorrect byte 2 or 3 in cmd!");
953 break;
954 case 5: /* Parameter out of range */
955 sr_err("Device: Parameter out of range!");
956 break;
957 default:
958 sr_err("Device: Unknown error code!");
959 }
960 retc = SR_ERR_ARG;
961 }
962 else if (!isreq && ((devc->buf[1] != 0x27) || (devc->buf[2] != 0x3f))) {
963 sr_err("process_msg_14(): byte 1/2 unexpected!");
964 retc = SR_ERR_ARG;
965 }
966
967 if (calc_chksum_14(devc->buf) != devc->buf[13]) {
968 sr_err("process_msg_14(): Invalid checksum!");
969 retc = SR_ERR_ARG;
970 }
971
972 if (retc != SR_OK)
973 dump_msg14(devc->buf, TRUE);
974
975 return retc;
976}
977
978/** Check 14-byte message, Metrahit 2x. */
979SR_PRIV int process_msg14(struct sr_dev_inst *sdi)
980{
981 struct dev_context *devc;
982 int retc;
983 uint8_t addr;
984 uint8_t cnt, dgt;
985
986 if ((retc = chk_msg14(sdi)) != SR_OK)
987 return retc;
988
989 devc = sdi->priv;
990
991 clean_ctmv_rs_v(devc);
992 addr = devc->buf[0] & MASK_6BITS;
993 if (addr != devc->addr)
994 sr_info("Device address mismatch %d/%d!", addr, devc->addr);
995
996 switch (devc->buf[3]) { /* That's the command this reply is for */
997 /* 0 cannot occur, the respective message is not a 14-byte message */
998 case 1: /* Read first free and occupied address */
999 sr_spew("Cmd %d unimplemented!", devc->buf[3]);
1000 break;
1001 case 2: /* Clear all RAM in multimeter */
1002 sr_spew("Cmd %d unimplemented!", devc->buf[3]);
1003 break;
1004 case 3: /* Read firmware version and status */
1005 sr_spew("Cmd 3, Read firmware and status");
1006 switch (devc->cmd_idx) {
1007 case 0:
1008 devc->fw_ver_maj = devc->buf[5];
1009 devc->fw_ver_min = devc->buf[4];
1010 sr_spew("Firmware version %d.%d", (int)devc->fw_ver_maj, (int)devc->fw_ver_min);
1011 sr_spew("Rotary Switch Position (1..10): %d", (int)devc->buf[6]);
1012 /** Docs say values 0..9, but that's not true */
1013 sr_spew("Measurement Function: %d ", (int)devc->buf[7]);
1014 decode_ctmv_2x(devc->buf[7], devc);
1015 sr_spew("Range: 0x%x", devc->buf[8]);
1016 decode_rs_2x_TR2(devc->buf[8] & 0x0f, devc); /* Docs wrong, uses conversion table TR_2! */
1017 devc->autorng = (devc->buf[8] & 0x20) == 0;
1018 // TODO 9, 10: 29S special functions
1019 devc->ubatt = 0.1 * (float)devc->buf[11];
1020 devc->model = gmc_decode_model_bd(devc->buf[12]);
1021 sr_spew("Model=%s, battery voltage=%2.1f V", gmc_model_str(devc->model), (double)devc->ubatt);
1022 break;
1023 case 1:
1024 sr_spew("Internal version %d.%d", (int)devc->buf[5], (int)devc->buf[4]);
1025 sr_spew("Comm mode: 0x%x", (int)devc->buf[6]);
1026 sr_spew("Block cnt%%64: %d", (int)devc->buf[7]);
1027 sr_spew("drpCi: %d drpCh: %d", (int)devc->buf[8], (int)devc->buf[9]);
1028 // Semantics undocumented. Possibly Metrahit 29S dropouts stuff?
1029 break;
1030 default:
1031 sr_spew("Cmd 3: Unknown cmd_idx=%d", devc->cmd_idx);
1032 break;
1033 }
1034 break;
1035 case 4: /* Set real time, date, sample rate, trigger, ... */
1036 sr_spew("Cmd %d unimplemented!", devc->buf[3]);
1037 break;
1038 case 5: /* Read real time, date, sample rate, trigger... */
1039 sr_spew("Cmd %d unimplemented!", devc->buf[3]);
1040 break;
1041 case 6: /* Set modes or power off */
1042 sr_spew("Cmd %d unimplemented!", devc->buf[3]);
1043 break;
1044 case 7: /* Set measurement function, range, autom/man. */
1045 sr_spew("Cmd %d unimplemented!", devc->buf[3]);
1046 break;
1047 case 8: /* Get one measurement value */
1048 sr_spew("Cmd 8, get one measurement value");
1049 sr_spew("Measurement Function: %d ", (int)devc->buf[5]);
1050 decode_ctmv_2x(devc->buf[5], devc);
1051 if (!(devc->buf[6] & 0x10)) /* If bit4=0, old data. */
1052 return SR_OK;
1053
1054 decode_rs_2x_TR2(devc->buf[6] & 0x0f, devc); // The docs say conversion table TR_3, but that does not work
1055 setmqf(devc, SR_MQFLAG_AUTORANGE, devc->autorng);
1056 /* 6 digits */
1057 for (cnt = 0; cnt < 6; cnt++) {
1058 dgt = bc(devc->buf[7 + cnt]);
1059 if (dgt == 10) { /* Overload */
1060 devc->value = NAN;
1061 devc->scale = 1.0;
1062 break;
1063 }
1064 else if (dgt == 13) { /* FUSE */
1065 sr_err("FUSE!");
1066 }
1067 else if (dgt == 14) { /* Function recognition mode, OPEN */
1068 sr_info("Function recognition mode, OPEN!");
1069 devc->value = NAN;
1070 devc->scale = 1.0;
1071 break;
1072 }
1073 devc->value += pow(10.0, cnt) * dgt;
1074 }
1075 sr_spew("process_msg14() value=%f scale=%f scale1000=%d mq=%d "
1076 "unit=%d mqflags=0x%02" PRIx64, devc->value, devc->scale,
1077 devc->scale1000, devc->mq, devc->unit, devc->mqflags);
1078 if (devc->value != NAN)
1079 devc->value *= devc->scale * pow(1000.0, devc->scale1000);
1080
1081 send_value(sdi);
1082
1083 break;
1084 default:
1085 sr_spew("Unknown cmd %d!", devc->buf[3]);
1086 break;
1087 }
1088
1089 return SR_OK;
1090}
1091
1092/** Data reception callback function. */
1093SR_PRIV int gmc_mh_1x_2x_receive_data(int fd, int revents, void *cb_data)
1094{
1095 struct sr_dev_inst *sdi;
1096 struct dev_context *devc;
1097 struct sr_serial_dev_inst *serial;
1098 uint8_t buf, msgt;
1099 int len;
1100 gdouble elapsed_s;
1101
1102 (void)fd;
1103
1104 if (!(sdi = cb_data))
1105 return TRUE;
1106
1107 if (!(devc = sdi->priv))
1108 return TRUE;
1109
1110 serial = sdi->conn;
1111
1112 if (revents == G_IO_IN) { /* Serial data arrived. */
1113 while (GMC_BUFSIZE - devc->buflen - 1 > 0) {
1114 len = serial_read_nonblocking(serial, devc->buf + devc->buflen, 1);
1115 if (len < 1)
1116 break;
1117 buf = *(devc->buf + devc->buflen);
1118 sr_spew("read 0x%02x/%d/%d", buf, buf, buf & MSGC_MASK);
1119 devc->buflen += len;
1120 if (!devc->settings_ok) {
1121 /*
1122 * If no device type/settings record processed
1123 * yet, wait for one.
1124 */
1125 if ((devc->buf[0] & MSGID_MASK) != MSGID_INF) {
1126 devc->buflen = 0;
1127 continue;
1128 }
1129 devc->settings_ok = TRUE;
1130 }
1131
1132 msgt = devc->buf[0] & MSGID_MASK;
1133 switch (msgt) {
1134 case MSGID_INF:
1135 if (devc->buflen == 13) {
1136 process_msg_inf_13(sdi);
1137 devc->buflen = 0;
1138 continue;
1139 } else if ((devc->buflen == 10) &&
1140 (devc->model <= METRAHIT_18S)) {
1141 process_msg_inf_10(sdi);
1142 devc->buflen = 0;
1143 continue;
1144 }
1145 else if ((devc->buflen >= 5) &&
1146 (devc->buf[devc->buflen - 1] &
1147 MSGID_MASK) != MSGID_DATA) {
1148 /*
1149 * Char just received is beginning
1150 * of next message.
1151 */
1152 process_msg_inf_5(sdi);
1153 devc->buf[0] =
1154 devc->buf[devc->buflen - 1];
1155 devc->buflen = 1;
1156 continue;
1157 }
1158 break;
1159 case MSGID_DTA:
1160 case MSGID_D10:
1161 if (devc->buflen == 6) {
1162 process_msg_dta_6(sdi);
1163 devc->buflen = 0;
1164 }
1165 break;
1166 case MSGID_DATA:
1167 sr_err("Comm error, unexpected data byte!");
1168 devc->buflen = 0;
1169 break;
1170 }
1171 }
1172 }
1173
1174 /* If number of samples or time limit reached, stop acquisition. */
1175 if (devc->limit_samples && (devc->num_samples >= devc->limit_samples))
1176 sdi->driver->dev_acquisition_stop(sdi, cb_data);
1177
1178 if (devc->limit_msec) {
1179 elapsed_s = g_timer_elapsed(devc->elapsed_msec, NULL);
1180 if ((elapsed_s * 1000) >= devc->limit_msec)
1181 sdi->driver->dev_acquisition_stop(sdi, cb_data);
1182 }
1183
1184 return TRUE;
1185}
1186
1187SR_PRIV int gmc_mh_2x_receive_data(int fd, int revents, void *cb_data)
1188{
1189 struct sr_dev_inst *sdi;
1190 struct dev_context *devc;
1191 struct sr_serial_dev_inst *serial;
1192 uint8_t buf;
1193 int len;
1194 gdouble elapsed_s;
1195
1196 (void)fd;
1197
1198 if (!(sdi = cb_data))
1199 return TRUE;
1200
1201 if (!(devc = sdi->priv))
1202 return TRUE;
1203
1204 serial = sdi->conn;
1205
1206 if (revents == G_IO_IN) { /* Serial data arrived. */
1207 while (GMC_BUFSIZE - devc->buflen - 1 > 0) {
1208 len = serial_read_nonblocking(serial, devc->buf + devc->buflen, 1);
1209 if (len < 1)
1210 break;
1211 buf = *(devc->buf + devc->buflen);
1212 sr_spew("read 0x%02x/%d/%d", buf, buf, buf & MASK_6BITS);
1213 devc->buf[devc->buflen] &= MASK_6BITS;
1214 devc->buflen += len;
1215
1216 if (devc->buflen == 14) {
1217 devc->response_pending = FALSE;
1218 sr_spew("gmc_mh_2x_receive_data processing msg");
1219 process_msg14(sdi);
1220 devc->buflen = 0;
1221 }
1222 }
1223 }
1224
1225 /* If number of samples or time limit reached, stop acquisition. */
1226 if (devc->limit_samples && (devc->num_samples >= devc->limit_samples))
1227 sdi->driver->dev_acquisition_stop(sdi, cb_data);
1228
1229 if (devc->limit_msec) {
1230 elapsed_s = g_timer_elapsed(devc->elapsed_msec, NULL);
1231 if ((elapsed_s * 1000) >= devc->limit_msec)
1232 sdi->driver->dev_acquisition_stop(sdi, cb_data);
1233 }
1234
1235 /* Request next data set, if required */
1236 if (sdi->status == SR_ST_ACTIVE) {
1237 if (devc->response_pending) {
1238 gint64 elapsed_us = g_get_monotonic_time() - devc->req_sent_at;
1239 if (elapsed_us > (1 * 1000 * 1000)) /* Timeout! */
1240 devc->response_pending = FALSE;
1241 }
1242 if (!devc->response_pending) {
1243 devc->cmd_seq++;
1244 if (devc->cmd_seq % 10 == 0) {
1245 if (req_stat14(sdi, FALSE) != SR_OK)
1246 return FALSE;
1247 }
1248 else if (req_meas14(sdi) != SR_OK)
1249 return FALSE;
1250 }
1251 }
1252
1253 return TRUE;
1254}
1255
1256/** Create 14 (42) byte command for Metrahit 2x multimeter in bidir mode.
1257 *
1258 * Actually creates 42 bytes due to the encoding method used.
1259 * @param[in] addr Device address (0=adapter, 1..15 multimeter; for byte 0).
1260 * @param[in] func Function code (byte 3).
1261 * @param[in] params Further parameters (9 bytes)
1262 * @param[out] buf Buffer to create msg in (42 bytes).
1263 */
1264void create_cmd_14(guchar addr, guchar func, guchar *params, guchar *buf)
1265{
1266 uint8_t dta[GMC_REPLY_SIZE]; /* Unencoded message */
1267 int cnt;
1268
1269 if (!params || !buf)
1270 return;
1271
1272 /* 0: Address */
1273 dta[0] = ((addr << 2) | 0x03) & MASK_6BITS;
1274
1275 /* 1-3: Set command header */
1276 dta[1] = 0x2b;
1277 dta[2] = 0x3f;
1278 dta[3] = func;
1279
1280 /* 4-12: Copy further parameters */
1281 for (cnt = 0; cnt < 9; cnt++)
1282 dta[cnt + 4] = (params[cnt] & MASK_6BITS);
1283
1284 /* 13: Checksum (b complement) */
1285 dta[13] = calc_chksum_14(dta);
1286
1287 /* The whole message is packed into 3 bytes per byte now (lower 6 bits only) the most
1288 * peculiar way I have ever seen. Possibly to improve IR communication? */
1289 for (cnt = 0; cnt < GMC_REPLY_SIZE; cnt++) {
1290 buf[(3 * cnt) + 0] = (dta[cnt] & 0x01 ? 0x0f : 0) | (dta[cnt] & 0x02 ? 0xf0 : 0);
1291 buf[(3 * cnt) + 1] = (dta[cnt] & 0x04 ? 0x0f : 0) | (dta[cnt] & 0x08 ? 0xf0 : 0);
1292 buf[(3 * cnt) + 2] = (dta[cnt] & 0x10 ? 0x0f : 0) | (dta[cnt] & 0x20 ? 0xf0 : 0);
1293 }
1294}
1295
1296/** Request one measurement from 2x multimeter (msg 8).
1297 *
1298 */
1299int req_meas14(const struct sr_dev_inst *sdi)
1300{
1301 struct dev_context *devc;
1302 struct sr_serial_dev_inst *serial;
1303 uint8_t params[9];
1304 uint8_t msg[42];
1305
1306 if (!sdi || !(devc = sdi->priv) || !(serial = sdi->conn))
1307 return SR_ERR;
1308
1309 memset(params, 0, sizeof(params));
1310 params[0] = 0;
1311 devc->cmd_idx = 0;
1312 create_cmd_14(devc->addr, 8, params, msg);
1313 devc->req_sent_at = g_get_monotonic_time();
1314 if (serial_write_blocking(serial, msg, sizeof(msg),
1315 serial_timeout(serial, sizeof(msg))) < (int)sizeof(msg)) {
1316 return SR_ERR;
1317 }
1318
1319 devc->response_pending = TRUE;
1320
1321 return SR_OK;
1322}
1323
1324/** Request status from 2x multimeter (msg 3).
1325 * @param[in] power_on Try to power on powered off multimeter by sending additional messages.
1326 */
1327int req_stat14(const struct sr_dev_inst *sdi, gboolean power_on)
1328{
1329 struct dev_context *devc;
1330 struct sr_serial_dev_inst *serial;
1331 uint8_t params[9];
1332 uint8_t msg[42];
1333
1334 if (!sdi || !(devc = sdi->priv) || !(serial = sdi->conn))
1335 return SR_ERR;
1336
1337 memset(params, 0, sizeof(params));
1338 params[0] = 0;
1339 devc->cmd_idx = 0;
1340 create_cmd_14(devc->addr, 3, params, msg);
1341
1342 if (power_on) {
1343 sr_info("Write some data and wait 3s to turn on powered off device...");
1344 if (serial_write_blocking(serial, msg, sizeof(msg),
1345 serial_timeout(serial, sizeof(msg))) < 0)
1346 return SR_ERR;
1347 g_usleep(1 * 1000 * 1000);
1348 if (serial_write_blocking(serial, msg, sizeof(msg),
1349 serial_timeout(serial, sizeof(msg))) < 0)
1350 return SR_ERR;
1351 g_usleep(1 * 1000 * 1000);
1352 if (serial_write_blocking(serial, msg, sizeof(msg),
1353 serial_timeout(serial, sizeof(msg))) < 0)
1354 return SR_ERR;
1355 g_usleep(1 * 1000 * 1000);
1356 serial_flush(serial);
1357 }
1358
1359 /* Write message and wait for reply */
1360 devc->req_sent_at = g_get_monotonic_time();
1361 if (serial_write_blocking(serial, msg, sizeof(msg),
1362 serial_timeout(serial, sizeof(msg))) < (int)sizeof(msg)) {
1363 return SR_ERR;
1364 }
1365
1366 devc->response_pending = TRUE;
1367
1368 return SR_OK;
1369}
1370
1371/** Decode model in "send mode".
1372 *
1373 * @param[in] mcode Model code.
1374 * @return Model code.
1375 */
1376SR_PRIV int gmc_decode_model_sm(uint8_t mcode)
1377{
1378 if (mcode > 0xf) {
1379 sr_err("decode_model(%d): Model code 0..15 expected!", mcode);
1380 return METRAHIT_NONE;
1381 }
1382
1383 switch (mcode) {
1384 case 0x04: /* 0100b */
1385 return METRAHIT_12S;
1386 case 0x08: /* 1000b */
1387 return METRAHIT_13S14A;
1388 case 0x09: /* 1001b */
1389 return METRAHIT_14S;
1390 case 0x0A: /* 1010b */
1391 return METRAHIT_15S;
1392 case 0x0B: /* 1011b */
1393 return METRAHIT_16S;
1394 case 0x06: /* 0110b (undocumented by GMC!) */
1395 return METRAHIT_16I;
1396 case 0x07: /* 0111b (undocumented by GMC!) */
1397 return METRAHIT_16T;
1398 case 0x0D: /* 1101b */
1399 return METRAHIT_18S;
1400 case 0x02: /* 0010b */
1401 return METRAHIT_22SM;
1402 case 0x03: /* 0011b */
1403 return METRAHIT_23S;
1404 case 0x0F: /* 1111b */
1405 return METRAHIT_24S;
1406 case 0x05: /* 0101b */
1407 return METRAHIT_25S;
1408 case 0x01: /* 0001b */
1409 return METRAHIT_26SM;
1410 case 0x0C: /* 1100b */
1411 return METRAHIT_28S;
1412 case 0x0E: /* 1110b */
1413 return METRAHIT_29S;
1414 default:
1415 sr_err("Unknown model code %d!", mcode);
1416 return METRAHIT_NONE;
1417 }
1418}
1419
1420/** Convert GMC model code in bidirectional mode to sigrok-internal one.
1421 *
1422 * @param[in] mcode Model code.
1423 *
1424 * @return Model code.
1425 */
1426SR_PRIV int gmc_decode_model_bd(uint8_t mcode)
1427{
1428 switch (mcode & 0x1f) {
1429 case 2:
1430 if (mcode & 0x20)
1431 return METRAHIT_22M;
1432 else
1433 return METRAHIT_22S;
1434 case 3:
1435 return METRAHIT_23S;
1436 case 4:
1437 return METRAHIT_24S;
1438 case 5:
1439 return METRAHIT_25S;
1440 case 1:
1441 if (mcode & 0x20)
1442 return METRAHIT_26M;
1443 else
1444 return METRAHIT_26S;
1445 case 12:
1446 return METRAHIT_28S;
1447 case 14:
1448 return METRAHIT_29S;
1449 default:
1450 sr_err("Unknown model code %d!", mcode);
1451 return METRAHIT_NONE;
1452 }
1453}
1454
1455/** Convert sigrok-internal model code to string.
1456 *
1457 * @param[in] mcode Model code.
1458 *
1459 * @return Model code string.
1460 */
1461SR_PRIV const char *gmc_model_str(enum model mcode)
1462{
1463 switch (mcode) {
1464 case METRAHIT_NONE:
1465 return "-uninitialized model variable-";
1466 case METRAHIT_12S:
1467 return "METRAHit 12S";
1468 case METRAHIT_13S14A:
1469 return "METRAHit 13S/14A";
1470 case METRAHIT_14S:
1471 return "METRAHit 14S";
1472 case METRAHIT_15S:
1473 return "METRAHit 15S";
1474 case METRAHIT_16S:
1475 return "METRAHit 16S";
1476 case METRAHIT_16I:
1477 return "METRAHit 16I/16L";
1478 case METRAHIT_16T:
1479 return "METRAHit 16T/16U/KMM2002";
1480 case METRAHIT_18S:
1481 return "METRAHit 18S";
1482 case METRAHIT_22SM:
1483 return "METRAHit 22S/M";
1484 case METRAHIT_22S:
1485 return "METRAHit 22S";
1486 case METRAHIT_22M:
1487 return "METRAHit 22M";
1488 case METRAHIT_23S:
1489 return "METRAHit 23S";
1490 case METRAHIT_24S:
1491 return "METRAHit 24S";
1492 case METRAHIT_25S:
1493 return "METRAHit 25S";
1494 case METRAHIT_26SM:
1495 return "METRAHit 26S/M";
1496 case METRAHIT_26S:
1497 return "METRAHit 26S";
1498 case METRAHIT_26M:
1499 return "METRAHit 26M";
1500 case METRAHIT_28S:
1501 return "METRAHit 28S";
1502 case METRAHIT_29S:
1503 return "METRAHit 29S";
1504 default:
1505 return "Unknown model code";
1506 }
1507}
1508
1509/** @copydoc sr_dev_driver.config_set */
1510SR_PRIV int config_set(uint32_t key, GVariant *data, const struct sr_dev_inst *sdi,
1511 const struct sr_channel_group *cg)
1512{
1513 struct dev_context *devc;
1514 uint8_t params[9];
1515 uint8_t msg[42];
1516
1517 (void)cg;
1518
1519 if (sdi->status != SR_ST_ACTIVE)
1520 return SR_ERR_DEV_CLOSED;
1521
1522 if (!(devc = sdi->priv)) {
1523 sr_err("sdi->priv was NULL.");
1524 return SR_ERR_BUG;
1525 }
1526
1527 switch (key) {
1528 case SR_CONF_POWER_OFF:
1529 if (devc->model < METRAHIT_2X)
1530 return SR_ERR_NA;
1531 if (!g_variant_get_boolean(data))
1532 return SR_ERR;
1533 sr_info("Powering device off.");
1534
1535 memset(params, 0, sizeof(params));
1536 params[0] = 5;
1537 params[1] = 5;
1538 create_cmd_14(devc->addr, 6, params, msg);
1539 if (serial_write_blocking(sdi->conn, msg, sizeof(msg),
1540 serial_timeout(sdi->conn, sizeof(msg))) < 0)
1541 return SR_ERR;
1542 else
1543 g_usleep(2 * 1000 * 1000); /* Wait to ensure transfer before interface switched off. */
1544 break;
1545 case SR_CONF_LIMIT_MSEC:
1546 devc->limit_msec = g_variant_get_uint64(data);
1547 break;
1548 case SR_CONF_LIMIT_SAMPLES:
1549 devc->limit_samples = g_variant_get_uint64(data);
1550 break;
1551 default:
1552 return SR_ERR_NA;
1553 }
1554
1555 return SR_OK;
1556}