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std_gvar_tuple_array(): Change to allow for more ARRAY_AND_SIZE usage.
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1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 2010-2012 Bert Vermeulen <bert@biot.com>
5 *
6 * This program is free software: you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation, either version 3 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program. If not, see <http://www.gnu.org/licenses/>.
18 */
19
20#include <config.h>
21#include "protocol.h"
22
23#define USB_INTERFACE 0
24#define USB_CONFIGURATION 1
25#define NUM_TRIGGER_STAGES 4
26#define PACKET_SIZE 2048 /* ?? */
27
28//#define ZP_EXPERIMENTAL
29
30struct zp_model {
31 uint16_t vid;
32 uint16_t pid;
33 const char *model_name;
34 unsigned int channels;
35 unsigned int sample_depth; /* In Ksamples/channel */
36 unsigned int max_sampling_freq;
37};
38
39/*
40 * Note -- 16032, 16064 and 16128 *usually* -- but not always -- have the
41 * same 128K sample depth.
42 */
43static const struct zp_model zeroplus_models[] = {
44 {0x0c12, 0x7002, "LAP-16128U", 16, 128, 200},
45 {0x0c12, 0x7009, "LAP-C(16064)", 16, 64, 100},
46 {0x0c12, 0x700a, "LAP-C(16128)", 16, 128, 200},
47 {0x0c12, 0x700b, "LAP-C(32128)", 32, 128, 200},
48 {0x0c12, 0x700c, "LAP-C(321000)", 32, 1024, 200},
49 {0x0c12, 0x700d, "LAP-C(322000)", 32, 2048, 200},
50 {0x0c12, 0x700e, "LAP-C(16032)", 16, 32, 100},
51 {0x0c12, 0x7016, "LAP-C(162000)", 16, 2048, 200},
52 {0x0c12, 0x7100, "AKIP-9101", 16, 256, 200},
53 ALL_ZERO
54};
55
56static const uint32_t drvopts[] = {
57 SR_CONF_LOGIC_ANALYZER,
58};
59
60static const uint32_t devopts[] = {
61 SR_CONF_LIMIT_SAMPLES | SR_CONF_SET | SR_CONF_LIST,
62 SR_CONF_SAMPLERATE | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
63 SR_CONF_TRIGGER_MATCH | SR_CONF_LIST,
64 SR_CONF_CAPTURE_RATIO | SR_CONF_GET | SR_CONF_SET,
65 SR_CONF_VOLTAGE_THRESHOLD | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
66};
67
68static const int32_t trigger_matches[] = {
69 SR_TRIGGER_ZERO,
70 SR_TRIGGER_ONE,
71};
72
73/*
74 * ZEROPLUS LAP-C (16032) numbers the 16 channels A0-A7 and B0-B7.
75 * We currently ignore other untested/unsupported devices here.
76 */
77static const char *channel_names[] = {
78 "A0", "A1", "A2", "A3", "A4", "A5", "A6", "A7",
79 "B0", "B1", "B2", "B3", "B4", "B5", "B6", "B7",
80 "C0", "C1", "C2", "C3", "C4", "C5", "C6", "C7",
81 "D0", "D1", "D2", "D3", "D4", "D5", "D6", "D7",
82};
83
84/*
85 * The hardware supports more samplerates than these, but these are the
86 * options hardcoded into the vendor's Windows GUI.
87 */
88
89static const uint64_t samplerates_100[] = {
90 SR_HZ(100),
91 SR_HZ(500),
92 SR_KHZ(1),
93 SR_KHZ(5),
94 SR_KHZ(25),
95 SR_KHZ(50),
96 SR_KHZ(100),
97 SR_KHZ(200),
98 SR_KHZ(400),
99 SR_KHZ(800),
100 SR_MHZ(1),
101 SR_MHZ(10),
102 SR_MHZ(25),
103 SR_MHZ(50),
104 SR_MHZ(80),
105 SR_MHZ(100),
106};
107
108const uint64_t samplerates_200[] = {
109 SR_HZ(100),
110 SR_HZ(500),
111 SR_KHZ(1),
112 SR_KHZ(5),
113 SR_KHZ(25),
114 SR_KHZ(50),
115 SR_KHZ(100),
116 SR_KHZ(200),
117 SR_KHZ(400),
118 SR_KHZ(800),
119 SR_MHZ(1),
120 SR_MHZ(10),
121 SR_MHZ(25),
122 SR_MHZ(50),
123 SR_MHZ(80),
124 SR_MHZ(100),
125 SR_MHZ(150),
126 SR_MHZ(200),
127};
128
129SR_PRIV int zp_set_samplerate(struct dev_context *devc, uint64_t samplerate)
130{
131 int i;
132
133 for (i = 0; ARRAY_SIZE(samplerates_200); i++)
134 if (samplerate == samplerates_200[i])
135 break;
136
137 if (i == ARRAY_SIZE(samplerates_200) || samplerate > devc->max_samplerate) {
138 sr_err("Unsupported samplerate: %" PRIu64 "Hz.", samplerate);
139 return SR_ERR_ARG;
140 }
141
142 sr_info("Setting samplerate to %" PRIu64 "Hz.", samplerate);
143
144 if (samplerate >= SR_MHZ(1))
145 analyzer_set_freq(samplerate / SR_MHZ(1), FREQ_SCALE_MHZ);
146 else if (samplerate >= SR_KHZ(1))
147 analyzer_set_freq(samplerate / SR_KHZ(1), FREQ_SCALE_KHZ);
148 else
149 analyzer_set_freq(samplerate, FREQ_SCALE_HZ);
150
151 devc->cur_samplerate = samplerate;
152
153 return SR_OK;
154}
155
156static GSList *scan(struct sr_dev_driver *di, GSList *options)
157{
158 struct sr_dev_inst *sdi;
159 struct drv_context *drvc;
160 struct dev_context *devc;
161 const struct zp_model *prof;
162 struct libusb_device_descriptor des;
163 struct libusb_device_handle *hdl;
164 libusb_device **devlist;
165 GSList *devices;
166 int ret, i, j;
167 char serial_num[64], connection_id[64];
168
169 (void)options;
170
171 drvc = di->context;
172
173 devices = NULL;
174
175 /* Find all ZEROPLUS analyzers and add them to device list. */
176 libusb_get_device_list(drvc->sr_ctx->libusb_ctx, &devlist); /* TODO: Errors. */
177
178 for (i = 0; devlist[i]; i++) {
179 libusb_get_device_descriptor(devlist[i], &des);
180
181 if ((ret = libusb_open(devlist[i], &hdl)) < 0)
182 continue;
183
184 if (des.iSerialNumber == 0) {
185 serial_num[0] = '\0';
186 } else if ((ret = libusb_get_string_descriptor_ascii(hdl,
187 des.iSerialNumber, (unsigned char *) serial_num,
188 sizeof(serial_num))) < 0) {
189 sr_warn("Failed to get serial number string descriptor: %s.",
190 libusb_error_name(ret));
191 continue;
192 }
193
194 libusb_close(hdl);
195
196 usb_get_port_path(devlist[i], connection_id, sizeof(connection_id));
197
198 prof = NULL;
199 for (j = 0; j < zeroplus_models[j].vid; j++) {
200 if (des.idVendor == zeroplus_models[j].vid &&
201 des.idProduct == zeroplus_models[j].pid) {
202 prof = &zeroplus_models[j];
203 }
204 }
205
206 if (!prof)
207 continue;
208 sr_info("Found ZEROPLUS %s.", prof->model_name);
209
210 sdi = g_malloc0(sizeof(struct sr_dev_inst));
211 sdi->status = SR_ST_INACTIVE;
212 sdi->vendor = g_strdup("ZEROPLUS");
213 sdi->model = g_strdup(prof->model_name);
214 sdi->serial_num = g_strdup(serial_num);
215 sdi->connection_id = g_strdup(connection_id);
216
217 devc = g_malloc0(sizeof(struct dev_context));
218 sdi->priv = devc;
219 devc->prof = prof;
220 devc->num_channels = prof->channels;
221#ifdef ZP_EXPERIMENTAL
222 devc->max_sample_depth = 128 * 1024;
223 devc->max_samplerate = 200;
224#else
225 devc->max_sample_depth = prof->sample_depth * 1024;
226 devc->max_samplerate = prof->max_sampling_freq;
227#endif
228 devc->max_samplerate *= SR_MHZ(1);
229 devc->memory_size = MEMORY_SIZE_8K;
230 // memset(devc->trigger_buffer, 0, NUM_TRIGGER_STAGES);
231
232 for (j = 0; j < devc->num_channels; j++)
233 sr_channel_new(sdi, j, SR_CHANNEL_LOGIC, TRUE,
234 channel_names[j]);
235
236 devices = g_slist_append(devices, sdi);
237 sdi->inst_type = SR_INST_USB;
238 sdi->conn = sr_usb_dev_inst_new(
239 libusb_get_bus_number(devlist[i]),
240 libusb_get_device_address(devlist[i]), NULL);
241 }
242 libusb_free_device_list(devlist, 1);
243
244 return std_scan_complete(di, devices);
245}
246
247static int dev_open(struct sr_dev_inst *sdi)
248{
249 struct sr_dev_driver *di = sdi->driver;
250 struct dev_context *devc;
251 struct drv_context *drvc;
252 struct sr_usb_dev_inst *usb;
253 int ret;
254
255 drvc = di->context;
256 usb = sdi->conn;
257 devc = sdi->priv;
258
259 ret = sr_usb_open(drvc->sr_ctx->libusb_ctx, usb);
260 if (ret != SR_OK)
261 return ret;
262
263 ret = libusb_set_configuration(usb->devhdl, USB_CONFIGURATION);
264 if (ret < 0) {
265 sr_err("Unable to set USB configuration %d: %s.",
266 USB_CONFIGURATION, libusb_error_name(ret));
267 return SR_ERR;
268 }
269
270 ret = libusb_claim_interface(usb->devhdl, USB_INTERFACE);
271 if (ret != 0) {
272 sr_err("Unable to claim interface: %s.",
273 libusb_error_name(ret));
274 return SR_ERR;
275 }
276
277 /* Set default configuration after power on. */
278 if (analyzer_read_status(usb->devhdl) == 0)
279 analyzer_configure(usb->devhdl);
280
281 analyzer_reset(usb->devhdl);
282 analyzer_initialize(usb->devhdl);
283
284 //analyzer_set_memory_size(MEMORY_SIZE_512K);
285 // analyzer_set_freq(g_freq, g_freq_scale);
286 analyzer_set_trigger_count(1);
287 // analyzer_set_ramsize_trigger_address((((100 - g_pre_trigger)
288 // * get_memory_size(g_memory_size)) / 100) >> 2);
289
290#if 0
291 if (g_double_mode == 1)
292 analyzer_set_compression(COMPRESSION_DOUBLE);
293 else if (g_compression == 1)
294 analyzer_set_compression(COMPRESSION_ENABLE);
295 else
296#endif
297 analyzer_set_compression(COMPRESSION_NONE);
298
299 if (devc->cur_samplerate == 0) {
300 /* Samplerate hasn't been set. Default to 1MHz. */
301 analyzer_set_freq(1, FREQ_SCALE_MHZ);
302 devc->cur_samplerate = SR_MHZ(1);
303 }
304
305 if (devc->cur_threshold == 0)
306 set_voltage_threshold(devc, 1.5);
307
308 return SR_OK;
309}
310
311static int dev_close(struct sr_dev_inst *sdi)
312{
313 struct sr_usb_dev_inst *usb;
314
315 usb = sdi->conn;
316
317 if (!usb->devhdl)
318 return SR_ERR_BUG;
319
320 sr_info("Closing device on %d.%d (logical) / %s (physical) interface %d.",
321 usb->bus, usb->address, sdi->connection_id, USB_INTERFACE);
322 libusb_release_interface(usb->devhdl, USB_INTERFACE);
323 libusb_reset_device(usb->devhdl);
324 libusb_close(usb->devhdl);
325 usb->devhdl = NULL;
326
327 return SR_OK;
328}
329
330static int config_get(uint32_t key, GVariant **data, const struct sr_dev_inst *sdi,
331 const struct sr_channel_group *cg)
332{
333 struct dev_context *devc;
334 GVariant *range[2];
335
336 (void)cg;
337
338 if (!sdi)
339 return SR_ERR_ARG;
340
341 devc = sdi->priv;
342
343 switch (key) {
344 case SR_CONF_SAMPLERATE:
345 *data = g_variant_new_uint64(devc->cur_samplerate);
346 break;
347 case SR_CONF_CAPTURE_RATIO:
348 *data = g_variant_new_uint64(devc->capture_ratio);
349 break;
350 case SR_CONF_VOLTAGE_THRESHOLD:
351 range[0] = g_variant_new_double(devc->cur_threshold);
352 range[1] = g_variant_new_double(devc->cur_threshold);
353 *data = g_variant_new_tuple(range, 2);
354 break;
355 default:
356 return SR_ERR_NA;
357 }
358
359 return SR_OK;
360}
361
362static int config_set(uint32_t key, GVariant *data, const struct sr_dev_inst *sdi,
363 const struct sr_channel_group *cg)
364{
365 struct dev_context *devc;
366 gdouble low, high;
367
368 (void)cg;
369
370 devc = sdi->priv;
371
372 switch (key) {
373 case SR_CONF_SAMPLERATE:
374 return zp_set_samplerate(devc, g_variant_get_uint64(data));
375 case SR_CONF_LIMIT_SAMPLES:
376 return set_limit_samples(devc, g_variant_get_uint64(data));
377 case SR_CONF_CAPTURE_RATIO:
378 return set_capture_ratio(devc, g_variant_get_uint64(data));
379 case SR_CONF_VOLTAGE_THRESHOLD:
380 g_variant_get(data, "(dd)", &low, &high);
381 return set_voltage_threshold(devc, (low + high) / 2.0);
382 default:
383 return SR_ERR_NA;
384 }
385
386 return SR_OK;
387}
388
389static int config_list(uint32_t key, GVariant **data, const struct sr_dev_inst *sdi,
390 const struct sr_channel_group *cg)
391{
392 struct dev_context *devc;
393 GVariant *grange[2];
394
395 switch (key) {
396 case SR_CONF_DEVICE_OPTIONS:
397 return STD_CONFIG_LIST(key, data, sdi, cg, NULL, drvopts, devopts);
398 case SR_CONF_SAMPLERATE:
399 devc = sdi->priv;
400 if (devc->prof->max_sampling_freq == 100)
401 *data = std_gvar_samplerates(ARRAY_AND_SIZE(samplerates_100));
402 else if (devc->prof->max_sampling_freq == 200)
403 *data = std_gvar_samplerates(ARRAY_AND_SIZE(samplerates_200));
404 else {
405 sr_err("Internal error: Unknown max. samplerate: %d.",
406 devc->prof->max_sampling_freq);
407 return SR_ERR_ARG;
408 }
409 break;
410 case SR_CONF_TRIGGER_MATCH:
411 *data = std_gvar_array_i32(ARRAY_AND_SIZE(trigger_matches));
412 break;
413 case SR_CONF_VOLTAGE_THRESHOLD:
414 *data = std_gvar_min_max_step_thresholds(-6.0, 6.0, 0.1);
415 break;
416 case SR_CONF_LIMIT_SAMPLES:
417 if (!sdi)
418 return SR_ERR_ARG;
419 devc = sdi->priv;
420 grange[0] = g_variant_new_uint64(0);
421 grange[1] = g_variant_new_uint64(devc->max_sample_depth);
422 *data = g_variant_new_tuple(grange, 2);
423 break;
424 default:
425 return SR_ERR_NA;
426 }
427
428 return SR_OK;
429}
430
431static int dev_acquisition_start(const struct sr_dev_inst *sdi)
432{
433 struct dev_context *devc;
434 struct sr_usb_dev_inst *usb;
435 struct sr_datafeed_packet packet;
436 struct sr_datafeed_logic logic;
437 unsigned int samples_read;
438 int res;
439 unsigned int packet_num, n;
440 unsigned char *buf;
441 unsigned int status;
442 unsigned int stop_address;
443 unsigned int now_address;
444 unsigned int trigger_address;
445 unsigned int trigger_offset;
446 unsigned int triggerbar;
447 unsigned int ramsize_trigger;
448 unsigned int memory_size;
449 unsigned int valid_samples;
450 unsigned int discard;
451 int trigger_now;
452
453 devc = sdi->priv;
454
455 if (analyzer_add_triggers(sdi) != SR_OK) {
456 sr_err("Failed to configure triggers.");
457 return SR_ERR;
458 }
459
460 usb = sdi->conn;
461
462 set_triggerbar(devc);
463
464 /* Push configured settings to device. */
465 analyzer_configure(usb->devhdl);
466
467 analyzer_start(usb->devhdl);
468 sr_info("Waiting for data.");
469 analyzer_wait_data(usb->devhdl);
470
471 status = analyzer_read_status(usb->devhdl);
472 stop_address = analyzer_get_stop_address(usb->devhdl);
473 now_address = analyzer_get_now_address(usb->devhdl);
474 trigger_address = analyzer_get_trigger_address(usb->devhdl);
475
476 triggerbar = analyzer_get_triggerbar_address();
477 ramsize_trigger = analyzer_get_ramsize_trigger_address();
478
479 n = get_memory_size(devc->memory_size);
480 memory_size = n / 4;
481
482 sr_info("Status = 0x%x.", status);
483 sr_info("Stop address = 0x%x.", stop_address);
484 sr_info("Now address = 0x%x.", now_address);
485 sr_info("Trigger address = 0x%x.", trigger_address);
486 sr_info("Triggerbar address = 0x%x.", triggerbar);
487 sr_info("Ramsize trigger = 0x%x.", ramsize_trigger);
488 sr_info("Memory size = 0x%x.", memory_size);
489
490 std_session_send_df_header(sdi);
491
492 /* Check for empty capture */
493 if ((status & STATUS_READY) && !stop_address) {
494 std_session_send_df_end(sdi);
495 return SR_OK;
496 }
497
498 buf = g_malloc(PACKET_SIZE);
499
500 /* Check if the trigger is in the samples we are throwing away */
501 trigger_now = now_address == trigger_address ||
502 ((now_address + 1) % memory_size) == trigger_address;
503
504 /*
505 * STATUS_READY doesn't clear until now_address advances past
506 * addr 0, but for our logic, clear it in that case
507 */
508 if (!now_address)
509 status &= ~STATUS_READY;
510
511 analyzer_read_start(usb->devhdl);
512
513 /* Calculate how much data to discard */
514 discard = 0;
515 if (status & STATUS_READY) {
516 /*
517 * We haven't wrapped around, we need to throw away data from
518 * our current position to the end of the buffer.
519 * Additionally, the first two samples captured are always
520 * bogus.
521 */
522 discard += memory_size - now_address + 2;
523 now_address = 2;
524 }
525
526 /* If we have more samples than we need, discard them */
527 valid_samples = (stop_address - now_address) % memory_size;
528 if (valid_samples > ramsize_trigger + triggerbar) {
529 discard += valid_samples - (ramsize_trigger + triggerbar);
530 now_address += valid_samples - (ramsize_trigger + triggerbar);
531 }
532
533 sr_info("Need to discard %d samples.", discard);
534
535 /* Calculate how far in the trigger is */
536 if (trigger_now)
537 trigger_offset = 0;
538 else
539 trigger_offset = (trigger_address - now_address) % memory_size;
540
541 /* Recalculate the number of samples available */
542 valid_samples = (stop_address - now_address) % memory_size;
543
544 /* Send the incoming transfer to the session bus. */
545 samples_read = 0;
546 for (packet_num = 0; packet_num < n / PACKET_SIZE; packet_num++) {
547 unsigned int len;
548 unsigned int buf_offset;
549
550 res = analyzer_read_data(usb->devhdl, buf, PACKET_SIZE);
551 sr_info("Tried to read %d bytes, actually read %d bytes.",
552 PACKET_SIZE, res);
553
554 if (discard >= PACKET_SIZE / 4) {
555 discard -= PACKET_SIZE / 4;
556 continue;
557 }
558
559 len = PACKET_SIZE - discard * 4;
560 buf_offset = discard * 4;
561 discard = 0;
562
563 /* Check if we've read all the samples */
564 if (samples_read + len / 4 >= valid_samples)
565 len = (valid_samples - samples_read) * 4;
566 if (!len)
567 break;
568
569 if (samples_read < trigger_offset &&
570 samples_read + len / 4 > trigger_offset) {
571 /* Send out samples remaining before trigger */
572 packet.type = SR_DF_LOGIC;
573 packet.payload = &logic;
574 logic.length = (trigger_offset - samples_read) * 4;
575 logic.unitsize = 4;
576 logic.data = buf + buf_offset;
577 sr_session_send(sdi, &packet);
578 len -= logic.length;
579 samples_read += logic.length / 4;
580 buf_offset += logic.length;
581 }
582
583 if (samples_read == trigger_offset) {
584 /* Send out trigger */
585 packet.type = SR_DF_TRIGGER;
586 packet.payload = NULL;
587 sr_session_send(sdi, &packet);
588 }
589
590 /* Send out data (or data after trigger) */
591 packet.type = SR_DF_LOGIC;
592 packet.payload = &logic;
593 logic.length = len;
594 logic.unitsize = 4;
595 logic.data = buf + buf_offset;
596 sr_session_send(sdi, &packet);
597 samples_read += len / 4;
598 }
599 analyzer_read_stop(usb->devhdl);
600 g_free(buf);
601
602 std_session_send_df_end(sdi);
603
604 return SR_OK;
605}
606
607static int dev_acquisition_stop(struct sr_dev_inst *sdi)
608{
609 struct sr_usb_dev_inst *usb;
610
611 std_session_send_df_end(sdi);
612
613 usb = sdi->conn;
614 analyzer_reset(usb->devhdl);
615 /* TODO: Need to cancel and free any queued up transfers. */
616
617 return SR_OK;
618}
619
620static struct sr_dev_driver zeroplus_logic_cube_driver_info = {
621 .name = "zeroplus-logic-cube",
622 .longname = "ZEROPLUS Logic Cube LAP-C series",
623 .api_version = 1,
624 .init = std_init,
625 .cleanup = std_cleanup,
626 .scan = scan,
627 .dev_list = std_dev_list,
628 .dev_clear = std_dev_clear,
629 .config_get = config_get,
630 .config_set = config_set,
631 .config_list = config_list,
632 .dev_open = dev_open,
633 .dev_close = dev_close,
634 .dev_acquisition_start = dev_acquisition_start,
635 .dev_acquisition_stop = dev_acquisition_stop,
636 .context = NULL,
637};
638SR_REGISTER_DEV_DRIVER(zeroplus_logic_cube_driver_info);