]> sigrok.org Git - libsigrok.git/blame - src/hardware/lecroy-xstream/protocol.c
lecroy-xstream: Implement config_channel_set API callback
[libsigrok.git] / src / hardware / lecroy-xstream / protocol.c
CommitLineData
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1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 2017 Sven Schnelle <svens@stackframe.org>
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 <config.h>
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21#include <math.h>
22#include <stdlib.h>
23#include "scpi.h"
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24#include "protocol.h"
25
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26struct lecroy_wavedesc_2_x {
27 uint16_t comm_type;
28 uint16_t comm_order; /* 1 - little endian */
29 uint32_t wave_descriptor_length;
30 uint32_t user_text_len;
31 uint32_t res_desc1;
32 uint32_t trigtime_array_length;
33 uint32_t ris_time1_array_length;
34 uint32_t res_array1;
35 uint32_t wave_array1_length;
36 uint32_t wave_array2_length;
37 uint32_t wave_array3_length;
38 uint32_t wave_array4_length;
39 char instrument_name[16];
40 uint32_t instrument_number;
41 char trace_label[16];
42 uint32_t reserved;
43 uint32_t wave_array_count;
44 uint32_t points_per_screen;
45 uint32_t first_valid_point;
46 uint32_t last_valid_point;
47 uint32_t first_point;
48 uint32_t sparsing_factor;
49 uint32_t segment_index;
50 uint32_t subarray_count;
51 uint32_t sweeps_per_acq;
52 uint16_t points_per_pair;
53 uint16_t pair_offset;
54 float vertical_gain;
55 float vertical_offset;
56 float max_value;
57 float min_value;
58 uint16_t nominal_bits;
59 uint16_t nom_subarray_count;
60 float horiz_interval;
61 double horiz_offset;
62 double pixel_offset;
63 char vertunit[48];
64 char horunit[48];
65 uint32_t reserved1;
66 double trigger_time;
67} __attribute__((packed));
68
69struct lecroy_wavedesc {
70 char descriptor_name[16];
71 char template_name[16];
72 union {
73 struct lecroy_wavedesc_2_x version_2_x;
74 };
75} __attribute__((packed));
76
6d13a46c 77static const char *coupling_options[] = {
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78 "A1M", ///< AC with 1 MOhm termination
79 "D50", ///< DC with 50 Ohm termination
80 "D1M", ///< DC with 1 MOhm termination
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81 "GND",
82 "OVL",
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83};
84
85static const char *scope_trigger_slopes[] = {
692716f5 86 "POS", "NEG",
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87};
88
6d13a46c 89static const char *trigger_sources[] = {
692716f5 90 "C1", "C2", "C3", "C4", "LINE", "EXT",
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91};
92
76f0fa5d 93static const uint64_t timebases[][2] = {
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94 /* picoseconds */
95 { 20, 1000000000000 },
96 { 50, 1000000000000 },
97 { 100, 1000000000000 },
98 { 200, 1000000000000 },
99 { 500, 1000000000000 },
100 /* nanoseconds */
101 { 1, 1000000000 },
102 { 2, 1000000000 },
103 { 5, 1000000000 },
104 { 10, 1000000000 },
105 { 20, 1000000000 },
106 { 50, 1000000000 },
107 { 100, 1000000000 },
108 { 200, 1000000000 },
109 { 500, 1000000000 },
110 /* microseconds */
111 { 1, 1000000 },
112 { 2, 1000000 },
113 { 5, 1000000 },
114 { 10, 1000000 },
115 { 20, 1000000 },
116 { 50, 1000000 },
117 { 100, 1000000 },
118 { 200, 1000000 },
119 { 500, 1000000 },
120 /* milliseconds */
121 { 1, 1000 },
122 { 2, 1000 },
123 { 5, 1000 },
124 { 10, 1000 },
125 { 20, 1000 },
126 { 50, 1000 },
127 { 100, 1000 },
128 { 200, 1000 },
129 { 500, 1000 },
130 /* seconds */
131 { 1, 1 },
132 { 2, 1 },
133 { 5, 1 },
134 { 10, 1 },
135 { 20, 1 },
136 { 50, 1 },
137 { 100, 1 },
138 { 200, 1 },
139 { 500, 1 },
140 { 1000, 1 },
141};
142
76f0fa5d 143static const uint64_t vdivs[][2] = {
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144 /* millivolts */
145 { 1, 1000 },
146 { 2, 1000 },
147 { 5, 1000 },
148 { 10, 1000 },
149 { 20, 1000 },
150 { 50, 1000 },
151 { 100, 1000 },
152 { 200, 1000 },
153 { 500, 1000 },
154 /* volts */
155 { 1, 1 },
156 { 2, 1 },
157 { 5, 1 },
158 { 10, 1 },
159 { 20, 1 },
160 { 50, 1 },
161};
162
163static const char *scope_analog_channel_names[] = {
f8195cb2 164 "CH1", "CH2", "CH3", "CH4",
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165};
166
167static const struct scope_config scope_models[] = {
168 {
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169 /* Default config */
170 .name = {NULL},
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171
172 .analog_channels = 4,
173 .analog_names = &scope_analog_channel_names,
174
6d13a46c 175 .coupling_options = &coupling_options,
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176 .num_coupling_options = ARRAY_SIZE(coupling_options),
177
6d13a46c 178 .trigger_sources = &trigger_sources,
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179 .num_trigger_sources = ARRAY_SIZE(trigger_sources),
180
3f2c7c94 181 .trigger_slopes = &scope_trigger_slopes,
692716f5 182 .num_trigger_slopes = ARRAY_SIZE(scope_trigger_slopes),
3f2c7c94 183
76f0fa5d 184 .timebases = &timebases,
6d13a46c 185 .num_timebases = ARRAY_SIZE(timebases),
3f2c7c94 186
76f0fa5d 187 .vdivs = &vdivs,
6d13a46c 188 .num_vdivs = ARRAY_SIZE(vdivs),
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189
190 .num_xdivs = 10,
191 .num_ydivs = 8,
192 },
193};
194
195static void scope_state_dump(const struct scope_config *config,
952c7376 196 struct scope_state *state)
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197{
198 unsigned int i;
199 char *tmp;
200
201 for (i = 0; i < config->analog_channels; i++) {
76f0fa5d 202 tmp = sr_voltage_string((*config->vdivs)[state->analog_channels[i].vdiv][0],
952c7376 203 (*config->vdivs)[state->analog_channels[i].vdiv][1]);
3f2c7c94 204 sr_info("State of analog channel %d -> %s : %s (coupling) %s (vdiv) %2.2e (offset)",
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205 i + 1, state->analog_channels[i].state ? "On" : "Off",
206 (*config->coupling_options)[state->analog_channels[i].coupling],
207 tmp, state->analog_channels[i].vertical_offset);
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208 }
209
76f0fa5d 210 tmp = sr_period_string((*config->timebases)[state->timebase][0],
952c7376 211 (*config->timebases)[state->timebase][1]);
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212 sr_info("Current timebase: %s", tmp);
213 g_free(tmp);
214
215 tmp = sr_samplerate_string(state->sample_rate);
216 sr_info("Current samplerate: %s", tmp);
217 g_free(tmp);
218
219 sr_info("Current trigger: %s (source), %s (slope) %.2f (offset)",
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220 (*config->trigger_sources)[state->trigger_source],
221 (*config->trigger_slopes)[state->trigger_slope],
222 state->horiz_triggerpos);
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223}
224
225static int scope_state_get_array_option(const char *resp,
952c7376 226 const char *(*array)[], unsigned int n, int *result)
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227{
228 unsigned int i;
229
692716f5 230 for (i = 0; i < n; i++) {
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231 if (!g_strcmp0(resp, (*array)[i])) {
232 *result = i;
233 return SR_OK;
234 }
235 }
236
237 return SR_ERR;
238}
239
240/**
241 * This function takes a value of the form "2.000E-03" and returns the index
242 * of an array where a matching pair was found.
243 *
244 * @param value The string to be parsed.
245 * @param array The array of s/f pairs.
246 * @param array_len The number of pairs in the array.
247 * @param result The index at which a matching pair was found.
248 *
249 * @return SR_ERR on any parsing error, SR_OK otherwise.
250 */
76f0fa5d 251static int array_float_get(gchar *value, const uint64_t array[][2],
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252 int array_len, unsigned int *result)
253{
254 struct sr_rational rval;
76f0fa5d 255 struct sr_rational aval;
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256
257 if (sr_parse_rational(value, &rval) != SR_OK)
258 return SR_ERR;
259
260 for (int i = 0; i < array_len; i++) {
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261 sr_rational_set(&aval, array[i][0], array[i][1]);
262 if (sr_rational_eq(&rval, &aval)) {
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263 *result = i;
264 return SR_OK;
265 }
266 }
267
268 return SR_ERR;
269}
270
271static int analog_channel_state_get(struct sr_scpi_dev_inst *scpi,
952c7376 272 const struct scope_config *config, struct scope_state *state)
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273{
274 unsigned int i, j;
275 char command[MAX_COMMAND_SIZE];
276 char *tmp_str;
277
278 for (i = 0; i < config->analog_channels; i++) {
ea257cdc 279 g_snprintf(command, sizeof(command), "C%d:TRACE?", i + 1);
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280
281 if (sr_scpi_get_bool(scpi, command,
ea257cdc 282 &state->analog_channels[i].state) != SR_OK)
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283 return SR_ERR;
284
ea257cdc 285 g_snprintf(command, sizeof(command), "C%d:VDIV?", i + 1);
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286
287 if (sr_scpi_get_string(scpi, command, &tmp_str) != SR_OK)
288 return SR_ERR;
289
952c7376 290 if (array_float_get(tmp_str, ARRAY_AND_SIZE(vdivs), &j) != SR_OK) {
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291 g_free(tmp_str);
292 sr_err("Could not determine array index for vertical div scale.");
293 return SR_ERR;
294 }
295
296 g_free(tmp_str);
297 state->analog_channels[i].vdiv = j;
298
ea257cdc 299 g_snprintf(command, sizeof(command), "C%d:OFFSET?", i + 1);
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300
301 if (sr_scpi_get_float(scpi, command, &state->analog_channels[i].vertical_offset) != SR_OK)
302 return SR_ERR;
303
ea257cdc 304 g_snprintf(command, sizeof(command), "C%d:COUPLING?", i + 1);
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305
306 if (sr_scpi_get_string(scpi, command, &tmp_str) != SR_OK)
307 return SR_ERR;
308
309
310 if (scope_state_get_array_option(tmp_str, config->coupling_options,
692716f5 311 config->num_coupling_options,
ea257cdc 312 &state->analog_channels[i].coupling) != SR_OK)
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313 return SR_ERR;
314
315 g_free(tmp_str);
316 }
317
318 return SR_OK;
319}
320
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321SR_PRIV int lecroy_xstream_channel_state_set(const struct sr_dev_inst *sdi,
322 const int ch_index, gboolean ch_state)
323{
324 GSList *l;
325 struct sr_channel *ch;
326 struct dev_context *devc = NULL;
327 struct scope_state *state;
328 char command[MAX_COMMAND_SIZE];
329 gboolean chan_found;
330 int result;
331
332 result = SR_OK;
333
334 devc = sdi->priv;
335 state = devc->model_state;
336 chan_found = FALSE;
337
338 for (l = sdi->channels; l; l = l->next) {
339 ch = l->data;
340
341 switch (ch->type) {
342 case SR_CHANNEL_ANALOG:
343 if (ch->index == ch_index) {
344 g_snprintf(command, sizeof(command), "C%d:TRACE %s", ch_index + 1,
345 (ch_state ? "ON" : "OFF"));
346 if ((sr_scpi_send(sdi->conn, command) != SR_OK ||
347 sr_scpi_get_opc(sdi->conn) != SR_OK)) {
348 result = SR_ERR;
349 break;
350 }
351
352 ch->enabled = ch_state;
353 state->analog_channels[ch->index].state = ch_state;
354 chan_found = TRUE;
355 break;
356 }
357 break;
358 default:
359 result = SR_ERR_NA;
360 }
361 }
362
363 if ((result == SR_OK) && !chan_found)
364 result = SR_ERR_BUG;
365
366 return result;
367}
368
3f2c7c94 369SR_PRIV int lecroy_xstream_update_sample_rate(const struct sr_dev_inst *sdi)
e3b83c5e 370{
e3b83c5e 371 struct dev_context *devc;
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372 struct scope_state *state;
373 const struct scope_config *config;
374 float memsize, timediv;
375
376 devc = sdi->priv;
377 state = devc->model_state;
378 config = devc->model_config;
379
380 if (sr_scpi_get_float(sdi->conn, "MEMORY_SIZE?", &memsize) != SR_OK)
ea257cdc 381 return SR_ERR;
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382
383 if (sr_scpi_get_float(sdi->conn, "TIME_DIV?", &timediv) != SR_OK)
384 return SR_ERR;
385
ea257cdc 386 state->sample_rate = 1 / ((timediv * config->num_xdivs) / memsize);
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387
388 return SR_OK;
389}
390
391SR_PRIV int lecroy_xstream_state_get(struct sr_dev_inst *sdi)
392{
393 struct dev_context *devc;
ea257cdc
UH
394 struct scope_state *state;
395 const struct scope_config *config;
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396 unsigned int i;
397 char *tmp_str, *tmp_str2, *tmpp, *p, *key;
398 char command[MAX_COMMAND_SIZE];
399 char *trig_source = NULL;
400
401 devc = sdi->priv;
402 config = devc->model_config;
403 state = devc->model_state;
404
405 sr_info("Fetching scope state");
406
407 if (analog_channel_state_get(sdi->conn, config, state) != SR_OK)
408 return SR_ERR;
409
410 if (sr_scpi_get_string(sdi->conn, "TIME_DIV?", &tmp_str) != SR_OK)
411 return SR_ERR;
412
53012da6 413 if (array_float_get(tmp_str, ARRAY_AND_SIZE(timebases), &i) != SR_OK) {
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414 g_free(tmp_str);
415 sr_err("Could not determine array index for timbase scale.");
416 return SR_ERR;
417 }
418 g_free(tmp_str);
419 state->timebase = i;
420
421 if (sr_scpi_get_string(sdi->conn, "TRIG_SELECT?", &tmp_str) != SR_OK)
422 return SR_ERR;
423
7002e64a 424 key = tmpp = NULL;
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425 tmp_str2 = tmp_str;
426 i = 0;
ea257cdc 427 while ((p = strtok_r(tmp_str2, ",", &tmpp))) {
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428 tmp_str2 = NULL;
429 if (i == 0) {
430 /* trigger type */
431 } else if (i & 1) {
432 key = p;
433 /* key */
434 } else if (!(i & 1)) {
435 if (!strcmp(key, "SR"))
436 trig_source = p;
437 }
438 i++;
439 }
440
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441 if (!trig_source || scope_state_get_array_option(trig_source,
442 config->trigger_sources, config->num_trigger_sources,
443 &state->trigger_source) != SR_OK)
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444 return SR_ERR;
445
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446 g_snprintf(command, sizeof(command), "%s:TRIG_SLOPE?", trig_source);
447 if (sr_scpi_get_string(sdi->conn, command, &tmp_str) != SR_OK)
448 return SR_ERR;
449
952c7376
SA
450 if (scope_state_get_array_option(tmp_str, config->trigger_slopes,
451 config->num_trigger_slopes, &state->trigger_slope) != SR_OK)
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452 return SR_ERR;
453
952c7376 454 if (sr_scpi_get_float(sdi->conn, "TRIG_DELAY?", &state->horiz_triggerpos) != SR_OK)
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SS
455 return SR_ERR;
456
457 if (lecroy_xstream_update_sample_rate(sdi) != SR_OK)
458 return SR_ERR;
459
460 sr_info("Fetching finished.");
461
462 scope_state_dump(config, state);
463
464 return SR_OK;
465}
466
467static struct scope_state *scope_state_new(const struct scope_config *config)
468{
469 struct scope_state *state;
470
471 state = g_malloc0(sizeof(struct scope_state));
472 state->analog_channels = g_malloc0_n(config->analog_channels,
473 sizeof(struct analog_channel_state));
474 return state;
475}
476
477SR_PRIV void lecroy_xstream_state_free(struct scope_state *state)
478{
479 g_free(state->analog_channels);
480 g_free(state);
481}
482
483SR_PRIV int lecroy_xstream_init_device(struct sr_dev_inst *sdi)
484{
485 char command[MAX_COMMAND_SIZE];
486 int model_index;
487 unsigned int i, j;
488 struct sr_channel *ch;
489 struct dev_context *devc;
490 gboolean channel_enabled;
491
492 devc = sdi->priv;
493 model_index = -1;
494
495 /* Find the exact model. */
496 for (i = 0; i < ARRAY_SIZE(scope_models); i++) {
497 for (j = 0; scope_models[i].name[j]; j++) {
498 if (!strcmp(sdi->model, scope_models[i].name[j])) {
499 model_index = i;
500 break;
501 }
502 }
503 if (model_index != -1)
504 break;
505 }
506
507 if (model_index == -1) {
e7d2cd1e
SA
508 sr_dbg("Unknown LeCroy device, using default config.");
509 for (i = 0; i < ARRAY_SIZE(scope_models); i++)
510 if (scope_models[i].name[0] == NULL)
511 model_index = i;
3f2c7c94
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512 }
513
6158728c
SP
514 /* Set the desired response and format modes. */
515 sr_scpi_send(sdi->conn, "COMM_HEADER OFF");
952c7376 516 sr_scpi_send(sdi->conn, "COMM_FORMAT DEF9,WORD,BIN");
6158728c 517
3f2c7c94 518 devc->analog_groups = g_malloc0(sizeof(struct sr_channel_group*) *
ea257cdc 519 scope_models[model_index].analog_channels);
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520
521 /* Add analog channels. */
522 for (i = 0; i < scope_models[model_index].analog_channels; i++) {
ea257cdc 523 g_snprintf(command, sizeof(command), "C%d:TRACE?", i + 1);
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524
525 if (sr_scpi_get_bool(sdi->conn, command, &channel_enabled) != SR_OK)
526 return SR_ERR;
527
ea257cdc 528 g_snprintf(command, sizeof(command), "C%d:VDIV?", i + 1);
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529
530 ch = sr_channel_new(sdi, i, SR_CHANNEL_ANALOG, channel_enabled,
952c7376 531 (*scope_models[model_index].analog_names)[i]);
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532
533 devc->analog_groups[i] = g_malloc0(sizeof(struct sr_channel_group));
534
535 devc->analog_groups[i]->name = g_strdup(
536 (char *)(*scope_models[model_index].analog_names)[i]);
537 devc->analog_groups[i]->channels = g_slist_append(NULL, ch);
538
539 sdi->channel_groups = g_slist_append(sdi->channel_groups,
952c7376 540 devc->analog_groups[i]);
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541 }
542
543 devc->model_config = &scope_models[model_index];
544 devc->frame_limit = 0;
952c7376 545 devc->model_state = scope_state_new(devc->model_config);
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SS
546
547 return SR_OK;
548}
549
550static int lecroy_waveform_2_x_to_analog(GByteArray *data,
952c7376 551 struct lecroy_wavedesc *desc, struct sr_datafeed_analog *analog)
3f2c7c94
SS
552{
553 struct sr_analog_encoding *encoding = analog->encoding;
554 struct sr_analog_meaning *meaning = analog->meaning;
555 struct sr_analog_spec *spec = analog->spec;
556 float *data_float;
557 int16_t *waveform_data;
558 unsigned int i, num_samples;
559
ea257cdc 560 data_float = g_malloc(desc->version_2_x.wave_array_count * sizeof(float));
3f2c7c94
SS
561 num_samples = desc->version_2_x.wave_array_count;
562
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SA
563 waveform_data = (int16_t*)(data->data +
564 + desc->version_2_x.wave_descriptor_length
565 + desc->version_2_x.user_text_len);
3f2c7c94 566
ea257cdc 567 for (i = 0; i < num_samples; i++)
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SS
568 data_float[i] = (float)waveform_data[i]
569 * desc->version_2_x.vertical_gain
570 + desc->version_2_x.vertical_offset;
571
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SS
572 analog->data = data_float;
573 analog->num_samples = num_samples;
574
575 encoding->unitsize = sizeof(float);
576 encoding->is_signed = TRUE;
577 encoding->is_float = TRUE;
578 encoding->is_bigendian = FALSE;
579 encoding->scale.p = 1;
580 encoding->scale.q = 1;
581 encoding->offset.p = 0;
582 encoding->offset.q = 1;
583
584 encoding->digits = 6;
585 encoding->is_digits_decimal = FALSE;
586
587 if (strcmp(desc->version_2_x.vertunit, "A")) {
588 meaning->mq = SR_MQ_CURRENT;
589 meaning->unit = SR_UNIT_AMPERE;
590 } else {
ea257cdc 591 /* Default to voltage. */
3f2c7c94
SS
592 meaning->mq = SR_MQ_VOLTAGE;
593 meaning->unit = SR_UNIT_VOLT;
594 }
595
596 meaning->mqflags = 0;
597 spec->spec_digits = 3;
ea257cdc 598
3f2c7c94
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599 return SR_OK;
600}
601
602static int lecroy_waveform_to_analog(GByteArray *data,
952c7376 603 struct sr_datafeed_analog *analog)
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SS
604{
605 struct lecroy_wavedesc *desc;
606
607 if (data->len < sizeof(struct lecroy_wavedesc))
608 return SR_ERR;
609
952c7376 610 desc = (struct lecroy_wavedesc*)data->data;
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SS
611
612 if (!strncmp(desc->template_name, "LECROY_2_2", 16) ||
613 !strncmp(desc->template_name, "LECROY_2_3", 16)) {
614 return lecroy_waveform_2_x_to_analog(data, desc, analog);
615 }
616
952c7376 617 sr_err("Waveformat template '%.16s' not supported.", desc->template_name);
3f2c7c94
SS
618 return SR_ERR;
619}
620
621SR_PRIV int lecroy_xstream_receive_data(int fd, int revents, void *cb_data)
622{
623 struct sr_channel *ch;
624 struct sr_dev_inst *sdi;
625 struct dev_context *devc;
626 struct sr_datafeed_packet packet;
627 GByteArray *data;
628 struct sr_datafeed_analog analog;
629 struct sr_analog_encoding encoding;
630 struct sr_analog_meaning meaning;
631 struct sr_analog_spec spec;
632 char buf[8];
ea257cdc 633
e3b83c5e 634 (void)fd;
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635 (void)revents;
636
637 data = NULL;
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638
639 if (!(sdi = cb_data))
640 return TRUE;
641
642 if (!(devc = sdi->priv))
643 return TRUE;
644
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645 ch = devc->current_channel->data;
646
647 /*
648 * Send "frame begin" packet upon reception of data for the
649 * first enabled channel.
650 */
651 if (devc->current_channel == devc->enabled_channels) {
652 packet.type = SR_DF_FRAME_BEGIN;
653 sr_session_send(sdi, &packet);
654 }
655
656 if (ch->type != SR_CHANNEL_ANALOG)
657 return SR_ERR;
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658
659 /* Pass on the received data of the channel(s). */
3f2c7c94 660 if (sr_scpi_read_data(sdi->conn, buf, 4) != 4) {
ea257cdc 661 sr_err("Reading header failed.");
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662 return TRUE;
663 }
664
665 if (sr_scpi_get_block(sdi->conn, NULL, &data) != SR_OK) {
666 if (data)
667 g_byte_array_free(data, TRUE);
668 return TRUE;
669 }
670
671 analog.encoding = &encoding;
672 analog.meaning = &meaning;
673 analog.spec = &spec;
674
675 if (lecroy_waveform_to_analog(data, &analog) != SR_OK)
676 return SR_ERR;
677
678 meaning.channels = g_slist_append(NULL, ch);
679 packet.payload = &analog;
680 packet.type = SR_DF_ANALOG;
681 sr_session_send(sdi, &packet);
682
683 g_byte_array_free(data, TRUE);
684 data = NULL;
685
686 g_slist_free(meaning.channels);
687 g_free(analog.data);
688
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689 /*
690 * Advance to the next enabled channel. When data for all enabled
691 * channels was received, then flush potentially queued logic data,
692 * and send the "frame end" packet.
693 */
694 if (devc->current_channel->next) {
695 devc->current_channel = devc->current_channel->next;
696 lecroy_xstream_request_data(sdi);
697 return TRUE;
698 }
699
700 packet.type = SR_DF_FRAME_END;
701 sr_session_send(sdi, &packet);
702
703 /*
704 * End of frame was reached. Stop acquisition after the specified
705 * number of frames, or continue reception by starting over at
706 * the first enabled channel.
707 */
708 if (++devc->num_frames == devc->frame_limit) {
d2f7c417 709 sr_dev_acquisition_stop(sdi);
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710 } else {
711 devc->current_channel = devc->enabled_channels;
712 lecroy_xstream_request_data(sdi);
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713 }
714
715 return TRUE;
716}