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hantek-dso: dso2250: Fix capture runaway, only do the requested number of frames.
[libsigrok.git] / src / hardware / hantek-dso / api.c
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1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 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 <math.h>
22#include <stdio.h>
23#include <stdint.h>
24#include <stdlib.h>
25#include <sys/types.h>
26#include <sys/stat.h>
27#include <fcntl.h>
28#include <unistd.h>
29#include <string.h>
30#include <sys/time.h>
31#include <inttypes.h>
32#include <glib.h>
33#include <libusb.h>
34#include <libsigrok/libsigrok.h>
35#include "libsigrok-internal.h"
36#include "protocol.h"
37
38/* Max time in ms before we want to check on USB events */
39/* TODO tune this properly */
40#define TICK 1
41
42#define NUM_TIMEBASE 10
43#define NUM_VDIV 8
44
45#define NUM_BUFFER_SIZES 2
46
47static const uint32_t scanopts[] = {
48 SR_CONF_CONN,
49};
50
51static const uint32_t drvopts[] = {
52 SR_CONF_OSCILLOSCOPE,
53};
54
55static const uint32_t devopts[] = {
56 SR_CONF_CONTINUOUS,
57 SR_CONF_CONN | SR_CONF_GET,
58 SR_CONF_LIMIT_FRAMES | SR_CONF_SET,
59 SR_CONF_TIMEBASE | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
60 SR_CONF_NUM_HDIV | SR_CONF_GET,
61 SR_CONF_CAPTURE_RATIO | SR_CONF_GET | SR_CONF_SET,
62 SR_CONF_TRIGGER_SOURCE | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
63 SR_CONF_TRIGGER_SLOPE | SR_CONF_GET | SR_CONF_SET,
64 SR_CONF_BUFFERSIZE | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
65 SR_CONF_SAMPLERATE | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
66 SR_CONF_NUM_VDIV | SR_CONF_GET,
67 SR_CONF_TRIGGER_LEVEL | SR_CONF_GET | SR_CONF_SET,
68};
69
70static const uint32_t devopts_cg[] = {
71 SR_CONF_VDIV | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
72 SR_CONF_COUPLING | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
73 SR_CONF_FILTER | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
74};
75
76static const char *channel_names[] = {
77 "CH1", "CH2",
78};
79
80static const uint64_t buffersizes_32k[] = {
81 (10 * 1024), (32 * 1024),
82};
83static const uint64_t buffersizes_512k[] = {
84 (10 * 1024), (512 * 1024),
85};
86static const uint64_t buffersizes_14k[] = {
87 (10 * 1024), (14 * 1024),
88};
89
90static const struct dso_profile dev_profiles[] = {
91 { 0x04b4, 0x2090, 0x04b5, 0x2090,
92 "Hantek", "DSO-2090",
93 buffersizes_32k,
94 "hantek-dso-2090.fw" },
95 { 0x04b4, 0x2150, 0x04b5, 0x2150,
96 "Hantek", "DSO-2150",
97 buffersizes_32k,
98 "hantek-dso-2150.fw" },
99 { 0x04b4, 0x2250, 0x04b5, 0x2250,
100 "Hantek", "DSO-2250",
101 buffersizes_512k,
102 "hantek-dso-2250.fw" },
103 { 0x04b4, 0x5200, 0x04b5, 0x5200,
104 "Hantek", "DSO-5200",
105 buffersizes_14k,
106 "hantek-dso-5200.fw" },
107 { 0x04b4, 0x520a, 0x04b5, 0x520a,
108 "Hantek", "DSO-5200A",
109 buffersizes_512k,
110 "hantek-dso-5200A.fw" },
111 ALL_ZERO
112};
113
114static const uint64_t timebases[][2] = {
115 /* microseconds */
116 { 10, 1000000 },
117 { 20, 1000000 },
118 { 40, 1000000 },
119 { 100, 1000000 },
120 { 200, 1000000 },
121 { 400, 1000000 },
122 /* milliseconds */
123 { 1, 1000 },
124 { 2, 1000 },
125 { 4, 1000 },
126 { 10, 1000 },
127 { 20, 1000 },
128 { 40, 1000 },
129 { 100, 1000 },
130 { 200, 1000 },
131 { 400, 1000 },
132};
133
134static const uint64_t samplerates[] = {
135 SR_KHZ(20),
136 SR_KHZ(25),
137 SR_KHZ(50),
138 SR_KHZ(100),
139 SR_KHZ(200),
140 SR_KHZ(250),
141 SR_KHZ(500),
142 SR_MHZ(1),
143 SR_MHZ(2),
144 SR_MHZ(5),
145 SR_MHZ(10),
146 SR_MHZ(20),
147 SR_MHZ(25),
148 SR_MHZ(50),
149 SR_MHZ(100),
150 SR_MHZ(125),
151 /* fast mode not supported yet
152 SR_MHZ(200),
153 SR_MHZ(250), */
154};
155
156static const uint64_t vdivs[][2] = {
157 /* millivolts */
158 { 10, 1000 },
159 { 20, 1000 },
160 { 50, 1000 },
161 { 100, 1000 },
162 { 200, 1000 },
163 { 500, 1000 },
164 /* volts */
165 { 1, 1 },
166 { 2, 1 },
167 { 5, 1 },
168};
169
170static const char *trigger_sources[] = {
171 "CH1", "CH2", "EXT",
172 /* TODO: forced */
173};
174
175static const char *trigger_slopes[] = {
176 "r", "f",
177};
178
179static const char *coupling[] = {
180 "AC", "DC", "GND",
181};
182
183static struct sr_dev_inst *dso_dev_new(const struct dso_profile *prof)
184{
185 struct sr_dev_inst *sdi;
186 struct sr_channel *ch;
187 struct sr_channel_group *cg;
188 struct dev_context *devc;
189 unsigned int i;
190
191 sdi = g_malloc0(sizeof(struct sr_dev_inst));
192 sdi->status = SR_ST_INITIALIZING;
193 sdi->vendor = g_strdup(prof->vendor);
194 sdi->model = g_strdup(prof->model);
195
196 /*
197 * Add only the real channels -- EXT isn't a source of data, only
198 * a trigger source internal to the device.
199 */
200 for (i = 0; i < ARRAY_SIZE(channel_names); i++) {
201 ch = sr_channel_new(sdi, i, SR_CHANNEL_ANALOG, TRUE, channel_names[i]);
202 cg = g_malloc0(sizeof(struct sr_channel_group));
203 cg->name = g_strdup(channel_names[i]);
204 cg->channels = g_slist_append(cg->channels, ch);
205 sdi->channel_groups = g_slist_append(sdi->channel_groups, cg);
206 }
207
208 devc = g_malloc0(sizeof(struct dev_context));
209 devc->profile = prof;
210 devc->dev_state = IDLE;
211 devc->timebase = DEFAULT_TIMEBASE;
212 devc->samplerate = DEFAULT_SAMPLERATE;
213 devc->ch_enabled[0] = TRUE;
214 devc->ch_enabled[1] = TRUE;
215 devc->voltage[0] = DEFAULT_VOLTAGE;
216 devc->voltage[1] = DEFAULT_VOLTAGE;
217 devc->coupling[0] = DEFAULT_COUPLING;
218 devc->coupling[1] = DEFAULT_COUPLING;
219 devc->voffset_ch1 = DEFAULT_VERT_OFFSET;
220 devc->voffset_ch2 = DEFAULT_VERT_OFFSET;
221 devc->voffset_trigger = DEFAULT_VERT_TRIGGERPOS;
222 devc->framesize = DEFAULT_FRAMESIZE;
223 devc->triggerslope = SLOPE_POSITIVE;
224 devc->triggersource = g_strdup(DEFAULT_TRIGGER_SOURCE);
225 devc->capture_ratio = DEFAULT_CAPTURE_RATIO;
226 sdi->priv = devc;
227
228 return sdi;
229}
230
231static int configure_channels(const struct sr_dev_inst *sdi)
232{
233 struct dev_context *devc;
234 struct sr_channel *ch;
235 const GSList *l;
236 int p;
237
238 devc = sdi->priv;
239
240 g_slist_free(devc->enabled_channels);
241 devc->enabled_channels = NULL;
242 devc->ch_enabled[0] = devc->ch_enabled[1] = FALSE;
243 for (l = sdi->channels, p = 0; l; l = l->next, p++) {
244 ch = l->data;
245 if (p == 0)
246 devc->ch_enabled[0] = ch->enabled;
247 else
248 devc->ch_enabled[1] = ch->enabled;
249 if (ch->enabled)
250 devc->enabled_channels = g_slist_append(devc->enabled_channels, ch);
251 }
252
253 return SR_OK;
254}
255
256static void clear_helper(struct dev_context *devc)
257{
258 g_free(devc->triggersource);
259 g_slist_free(devc->enabled_channels);
260}
261
262static int dev_clear(const struct sr_dev_driver *di)
263{
264 return std_dev_clear_with_callback(di, (std_dev_clear_callback)clear_helper);
265}
266
267static GSList *scan(struct sr_dev_driver *di, GSList *options)
268{
269 struct drv_context *drvc;
270 struct dev_context *devc;
271 struct sr_dev_inst *sdi;
272 struct sr_usb_dev_inst *usb;
273 struct sr_config *src;
274 const struct dso_profile *prof;
275 GSList *l, *devices, *conn_devices;
276 struct libusb_device_descriptor des;
277 libusb_device **devlist;
278 int i, j;
279 const char *conn;
280 char connection_id[64];
281
282 drvc = di->context;
283
284 devices = 0;
285
286 conn = NULL;
287 for (l = options; l; l = l->next) {
288 src = l->data;
289 if (src->key == SR_CONF_CONN) {
290 conn = g_variant_get_string(src->data, NULL);
291 break;
292 }
293 }
294 if (conn)
295 conn_devices = sr_usb_find(drvc->sr_ctx->libusb_ctx, conn);
296 else
297 conn_devices = NULL;
298
299 /* Find all Hantek DSO devices and upload firmware to all of them. */
300 libusb_get_device_list(drvc->sr_ctx->libusb_ctx, &devlist);
301 for (i = 0; devlist[i]; i++) {
302 if (conn) {
303 usb = NULL;
304 for (l = conn_devices; l; l = l->next) {
305 usb = l->data;
306 if (usb->bus == libusb_get_bus_number(devlist[i])
307 && usb->address == libusb_get_device_address(devlist[i]))
308 break;
309 }
310 if (!l)
311 /* This device matched none of the ones that
312 * matched the conn specification. */
313 continue;
314 }
315
316 libusb_get_device_descriptor(devlist[i], &des);
317
318 usb_get_port_path(devlist[i], connection_id, sizeof(connection_id));
319
320 prof = NULL;
321 for (j = 0; dev_profiles[j].orig_vid; j++) {
322 if (des.idVendor == dev_profiles[j].orig_vid
323 && des.idProduct == dev_profiles[j].orig_pid) {
324 /* Device matches the pre-firmware profile. */
325 prof = &dev_profiles[j];
326 sr_dbg("Found a %s %s.", prof->vendor, prof->model);
327 sdi = dso_dev_new(prof);
328 sdi->connection_id = g_strdup(connection_id);
329 devices = g_slist_append(devices, sdi);
330 devc = sdi->priv;
331 if (ezusb_upload_firmware(drvc->sr_ctx, devlist[i],
332 USB_CONFIGURATION, prof->firmware) == SR_OK)
333 /* Remember when the firmware on this device was updated */
334 devc->fw_updated = g_get_monotonic_time();
335 else
336 sr_err("Firmware upload failed");
337 /* Dummy USB address of 0xff will get overwritten later. */
338 sdi->conn = sr_usb_dev_inst_new(
339 libusb_get_bus_number(devlist[i]), 0xff, NULL);
340 break;
341 } else if (des.idVendor == dev_profiles[j].fw_vid
342 && des.idProduct == dev_profiles[j].fw_pid) {
343 /* Device matches the post-firmware profile. */
344 prof = &dev_profiles[j];
345 sr_dbg("Found a %s %s.", prof->vendor, prof->model);
346 sdi = dso_dev_new(prof);
347 sdi->connection_id = g_strdup(connection_id);
348 sdi->status = SR_ST_INACTIVE;
349 devices = g_slist_append(devices, sdi);
350 sdi->inst_type = SR_INST_USB;
351 sdi->conn = sr_usb_dev_inst_new(
352 libusb_get_bus_number(devlist[i]),
353 libusb_get_device_address(devlist[i]), NULL);
354 break;
355 }
356 }
357 if (!prof)
358 /* not a supported VID/PID */
359 continue;
360 }
361 libusb_free_device_list(devlist, 1);
362
363 return std_scan_complete(di, devices);
364}
365
366static int dev_open(struct sr_dev_inst *sdi)
367{
368 struct dev_context *devc;
369 struct sr_usb_dev_inst *usb;
370 int64_t timediff_us, timediff_ms;
371 int err;
372
373 devc = sdi->priv;
374 usb = sdi->conn;
375
376 /*
377 * If the firmware was recently uploaded, wait up to MAX_RENUM_DELAY_MS
378 * for the FX2 to renumerate.
379 */
380 err = SR_ERR;
381 if (devc->fw_updated > 0) {
382 sr_info("Waiting for device to reset.");
383 /* Takes >= 300ms for the FX2 to be gone from the USB bus. */
384 g_usleep(300 * 1000);
385 timediff_ms = 0;
386 while (timediff_ms < MAX_RENUM_DELAY_MS) {
387 if ((err = dso_open(sdi)) == SR_OK)
388 break;
389 g_usleep(100 * 1000);
390 timediff_us = g_get_monotonic_time() - devc->fw_updated;
391 timediff_ms = timediff_us / 1000;
392 sr_spew("Waited %" PRIi64 " ms.", timediff_ms);
393 }
394 sr_info("Device came back after %" PRIi64 " ms.", timediff_ms);
395 } else {
396 err = dso_open(sdi);
397 }
398
399 if (err != SR_OK) {
400 sr_err("Unable to open device.");
401 return SR_ERR;
402 }
403
404 err = libusb_claim_interface(usb->devhdl, USB_INTERFACE);
405 if (err != 0) {
406 sr_err("Unable to claim interface: %s.",
407 libusb_error_name(err));
408 return SR_ERR;
409 }
410
411 return SR_OK;
412}
413
414static int dev_close(struct sr_dev_inst *sdi)
415{
416 dso_close(sdi);
417
418 return SR_OK;
419}
420
421static int config_get(uint32_t key, GVariant **data,
422 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg)
423{
424 struct dev_context *devc;
425 struct sr_usb_dev_inst *usb;
426 const char *s;
427 const uint64_t *vdiv;
428 int ch_idx;
429
430 switch (key) {
431 case SR_CONF_NUM_HDIV:
432 *data = g_variant_new_int32(NUM_TIMEBASE);
433 break;
434 case SR_CONF_NUM_VDIV:
435 *data = g_variant_new_int32(NUM_VDIV);
436 break;
437 }
438
439 if (!sdi)
440 return SR_ERR_ARG;
441
442 devc = sdi->priv;
443 if (!cg) {
444 switch (key) {
445 case SR_CONF_TRIGGER_LEVEL:
446 *data = g_variant_new_double(devc->voffset_trigger);
447 break;
448 case SR_CONF_CONN:
449 if (!sdi->conn)
450 return SR_ERR_ARG;
451 usb = sdi->conn;
452 if (usb->address == 255)
453 /* Device still needs to re-enumerate after firmware
454 * upload, so we don't know its (future) address. */
455 return SR_ERR;
456 *data = g_variant_new_printf("%d.%d", usb->bus, usb->address);
457 break;
458 case SR_CONF_TIMEBASE:
459 *data = g_variant_new("(tt)", timebases[devc->timebase][0],
460 timebases[devc->timebase][1]);
461 break;
462 case SR_CONF_SAMPLERATE:
463 *data = g_variant_new_uint64(devc->samplerate);
464 break;
465 case SR_CONF_BUFFERSIZE:
466 *data = g_variant_new_uint64(devc->framesize);
467 break;
468 case SR_CONF_TRIGGER_SOURCE:
469 *data = g_variant_new_string(devc->triggersource);
470 break;
471 case SR_CONF_TRIGGER_SLOPE:
472 s = (devc->triggerslope == SLOPE_POSITIVE) ? "r" : "f";
473 *data = g_variant_new_string(s);
474 break;
475 case SR_CONF_CAPTURE_RATIO:
476 *data = g_variant_new_uint64(devc->capture_ratio);
477 break;
478 default:
479 return SR_ERR_NA;
480 }
481 } else {
482 if (sdi->channel_groups->data == cg)
483 ch_idx = 0;
484 else if (sdi->channel_groups->next->data == cg)
485 ch_idx = 1;
486 else
487 return SR_ERR_ARG;
488 switch (key) {
489 case SR_CONF_FILTER:
490 *data = g_variant_new_boolean(devc->filter[ch_idx]);
491 break;
492 case SR_CONF_VDIV:
493 vdiv = vdivs[devc->voltage[ch_idx]];
494 *data = g_variant_new("(tt)", vdiv[0], vdiv[1]);
495 break;
496 case SR_CONF_COUPLING:
497 *data = g_variant_new_string(coupling[devc->coupling[ch_idx]]);
498 break;
499 }
500 }
501
502 return SR_OK;
503}
504
505static int config_set(uint32_t key, GVariant *data,
506 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg)
507{
508 struct dev_context *devc;
509 int rat;
510 int ch_idx, idx;
511 float flt;
512
513 devc = sdi->priv;
514 if (!cg) {
515 switch (key) {
516 case SR_CONF_LIMIT_FRAMES:
517 devc->limit_frames = g_variant_get_uint64(data);
518 break;
519 case SR_CONF_TRIGGER_LEVEL:
520 flt = g_variant_get_double(data);
521 if (flt < 0.0 || flt > 1.0) {
522 sr_err("Trigger level must be in [0.0,1.0].");
523 return SR_ERR_ARG;
524 }
525
526 devc->voffset_trigger = flt;
527 if (dso_set_voffsets(sdi) != SR_OK) {
528 return SR_ERR;
529 }
530 break;
531 case SR_CONF_TRIGGER_SLOPE:
532 if ((idx = std_str_idx(data, ARRAY_AND_SIZE(trigger_slopes))) < 0)
533 return SR_ERR_ARG;
534 devc->triggerslope = idx;
535 break;
536 case SR_CONF_CAPTURE_RATIO:
537 rat = g_variant_get_uint64(data);
538 if (rat < 0 || rat > 100) {
539 sr_err("Capture ratio must be in [0,100].");
540 return SR_ERR_ARG;
541 } else
542 devc->capture_ratio = rat;
543 break;
544 case SR_CONF_BUFFERSIZE:
545 if ((idx = std_u64_idx(data, devc->profile->buffersizes, NUM_BUFFER_SIZES)) < 0)
546 return SR_ERR_ARG;
547 devc->framesize = devc->profile->buffersizes[idx];
548 break;
549 case SR_CONF_TIMEBASE:
550 if ((idx = std_u64_tuple_idx(data, ARRAY_AND_SIZE(timebases))) < 0)
551 return SR_ERR_ARG;
552 devc->timebase = idx;
553 break;
554 case SR_CONF_SAMPLERATE:
555 if ((idx = std_u64_idx(data, ARRAY_AND_SIZE(samplerates))) < 0)
556 return SR_ERR_ARG;
557 devc->samplerate = samplerates[idx];
558 if (dso_set_trigger_samplerate(sdi) != SR_OK)
559 return SR_ERR;
560 sr_dbg("got new sample rate %d, idx %d", devc->samplerate, idx);
561 break;
562 case SR_CONF_TRIGGER_SOURCE:
563 if ((idx = std_str_idx(data, ARRAY_AND_SIZE(trigger_sources))) < 0)
564 return SR_ERR_ARG;
565 devc->triggersource = g_strdup(trigger_sources[idx]);
566 break;
567 default:
568 return SR_ERR_NA;
569 }
570 } else {
571 if (sdi->channel_groups->data == cg)
572 ch_idx = 0;
573 else if (sdi->channel_groups->next->data == cg)
574 ch_idx = 1;
575 else
576 return SR_ERR_ARG;
577 switch (key) {
578 case SR_CONF_FILTER:
579 devc->filter[ch_idx] = g_variant_get_boolean(data);
580 break;
581 case SR_CONF_VDIV:
582 if ((idx = std_u64_tuple_idx(data, ARRAY_AND_SIZE(vdivs))) < 0)
583 return SR_ERR_ARG;
584 devc->voltage[ch_idx] = idx;
585 break;
586 case SR_CONF_COUPLING:
587 if ((idx = std_str_idx(data, ARRAY_AND_SIZE(coupling))) < 0)
588 return SR_ERR_ARG;
589 devc->coupling[ch_idx] = idx;
590 break;
591 default:
592 return SR_ERR_NA;
593 }
594 }
595
596 return SR_OK;
597}
598
599static int config_list(uint32_t key, GVariant **data,
600 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg)
601{
602 struct dev_context *devc;
603
604 if (!cg) {
605 switch (key) {
606 case SR_CONF_SCAN_OPTIONS:
607 case SR_CONF_DEVICE_OPTIONS:
608 return STD_CONFIG_LIST(key, data, sdi, cg, scanopts, drvopts, devopts);
609 case SR_CONF_BUFFERSIZE:
610 if (!sdi)
611 return SR_ERR_ARG;
612 devc = sdi->priv;
613 *data = std_gvar_array_u64(devc->profile->buffersizes, NUM_BUFFER_SIZES);
614 break;
615 case SR_CONF_SAMPLERATE:
616 *data = std_gvar_samplerates(ARRAY_AND_SIZE(samplerates));
617 break;
618 case SR_CONF_TIMEBASE:
619 *data = std_gvar_tuple_array(ARRAY_AND_SIZE(timebases));
620 break;
621 case SR_CONF_TRIGGER_SOURCE:
622 *data = g_variant_new_strv(ARRAY_AND_SIZE(trigger_sources));
623 break;
624 case SR_CONF_TRIGGER_SLOPE:
625 *data = g_variant_new_strv(ARRAY_AND_SIZE(trigger_slopes));
626 break;
627 default:
628 return SR_ERR_NA;
629 }
630 } else {
631 switch (key) {
632 case SR_CONF_DEVICE_OPTIONS:
633 *data = std_gvar_array_u32(ARRAY_AND_SIZE(devopts_cg));
634 break;
635 case SR_CONF_COUPLING:
636 *data = g_variant_new_strv(ARRAY_AND_SIZE(coupling));
637 break;
638 case SR_CONF_VDIV:
639 *data = std_gvar_tuple_array(ARRAY_AND_SIZE(vdivs));
640 break;
641 default:
642 return SR_ERR_NA;
643 }
644 }
645
646 return SR_OK;
647}
648
649static void send_chunk(struct sr_dev_inst *sdi, unsigned char *buf,
650 int num_samples)
651{
652 struct sr_datafeed_packet packet;
653 struct sr_datafeed_analog analog;
654 struct sr_analog_encoding encoding;
655 struct sr_analog_meaning meaning;
656 struct sr_analog_spec spec;
657 struct dev_context *devc = sdi->priv;
658 GSList *channels = devc->enabled_channels;
659
660 packet.type = SR_DF_ANALOG;
661 packet.payload = &analog;
662 /* TODO: support for 5xxx series 9-bit samples */
663 sr_analog_init(&analog, &encoding, &meaning, &spec, 0);
664 analog.num_samples = num_samples;
665 analog.meaning->mq = SR_MQ_VOLTAGE;
666 analog.meaning->unit = SR_UNIT_VOLT;
667 analog.meaning->mqflags = 0;
668 /* TODO: Check malloc return value. */
669 analog.data = g_try_malloc(num_samples * sizeof(float));
670
671 for (int ch = 0; ch < NUM_CHANNELS; ch++) {
672 if (!devc->ch_enabled[ch])
673 continue;
674
675 float range = ((float)vdivs[devc->voltage[ch]][0] / vdivs[devc->voltage[ch]][1]) * 8;
676 float vdivlog = log10f(range / 255);
677 int digits = -(int)vdivlog + (vdivlog < 0.0);
678 analog.encoding->digits = digits;
679 analog.spec->spec_digits = digits;
680 analog.meaning->channels = g_slist_append(NULL, channels->data);
681
682 for (int i = 0; i < num_samples; i++) {
683 /*
684 * The device always sends data for both channels. If a channel
685 * is disabled, it contains a copy of the enabled channel's
686 * data. However, we only send the requested channels to
687 * the bus.
688 *
689 * Voltage values are encoded as a value 0-255 (0-512 on the
690 * DSO-5200*), where the value is a point in the range
691 * represented by the vdiv setting. There are 8 vertical divs,
692 * so e.g. 500mV/div represents 4V peak-to-peak where 0 = -2V
693 * and 255 = +2V.
694 */
695 /* TODO: Support for DSO-5xxx series 9-bit samples. */
696 ((float *)analog.data)[i] = range / 255 * *(buf + i * 2 + 1 - ch) - range / 2;
697 }
698 sr_session_send(sdi, &packet);
699 g_slist_free(analog.meaning->channels);
700
701 channels = channels->next;
702 }
703 g_free(analog.data);
704}
705
706/*
707 * Called by libusb (as triggered by handle_event()) when a transfer comes in.
708 * Only channel data comes in asynchronously, and all transfers for this are
709 * queued up beforehand, so this just needs to chuck the incoming data onto
710 * the libsigrok session bus.
711 */
712static void LIBUSB_CALL receive_transfer(struct libusb_transfer *transfer)
713{
714 struct sr_datafeed_packet packet;
715 struct sr_dev_inst *sdi;
716 struct dev_context *devc;
717 int num_samples, pre;
718
719 sdi = transfer->user_data;
720 devc = sdi->priv;
721 sr_spew("receive_transfer(): status %s received %d bytes.",
722 libusb_error_name(transfer->status), transfer->actual_length);
723
724 if (transfer->actual_length == 0)
725 /* Nothing to send to the bus. */
726 return;
727
728 num_samples = transfer->actual_length / 2;
729
730 sr_spew("Got %d-%d/%d samples in frame.", devc->samp_received + 1,
731 devc->samp_received + num_samples, devc->framesize);
732
733 /*
734 * The device always sends a full frame, but the beginning of the frame
735 * doesn't represent the trigger point. The offset at which the trigger
736 * happened came in with the capture state, so we need to start sending
737 * from there up the session bus. The samples in the frame buffer
738 * before that trigger point came after the end of the device's frame
739 * buffer was reached, and it wrapped around to overwrite up until the
740 * trigger point.
741 */
742 if (devc->samp_received < devc->trigger_offset) {
743 /* Trigger point not yet reached. */
744 if (devc->samp_received + num_samples < devc->trigger_offset) {
745 /* The entire chunk is before the trigger point. */
746 memcpy(devc->framebuf + devc->samp_buffered * 2,
747 transfer->buffer, num_samples * 2);
748 devc->samp_buffered += num_samples;
749 } else {
750 /*
751 * This chunk hits or overruns the trigger point.
752 * Store the part before the trigger fired, and
753 * send the rest up to the session bus.
754 */
755 pre = devc->trigger_offset - devc->samp_received;
756 memcpy(devc->framebuf + devc->samp_buffered * 2,
757 transfer->buffer, pre * 2);
758 devc->samp_buffered += pre;
759
760 /* The rest of this chunk starts with the trigger point. */
761 sr_dbg("Reached trigger point, %d samples buffered.",
762 devc->samp_buffered);
763
764 /* Avoid the corner case where the chunk ended at
765 * exactly the trigger point. */
766 if (num_samples > pre)
767 send_chunk(sdi, transfer->buffer + pre * 2,
768 num_samples - pre);
769 }
770 } else {
771 /* Already past the trigger point, just send it all out. */
772 send_chunk(sdi, transfer->buffer, num_samples);
773 }
774
775 devc->samp_received += num_samples;
776
777 /* Everything in this transfer was either copied to the buffer or
778 * sent to the session bus. */
779 g_free(transfer->buffer);
780 libusb_free_transfer(transfer);
781
782 if (devc->samp_received >= devc->framesize) {
783 /* That was the last chunk in this frame. Send the buffered
784 * pre-trigger samples out now, in one big chunk. */
785 sr_dbg("End of frame, sending %d pre-trigger buffered samples.",
786 devc->samp_buffered);
787 send_chunk(sdi, devc->framebuf, devc->samp_buffered);
788 g_free(devc->framebuf);
789 devc->framebuf = NULL;
790
791 /* Mark the end of this frame. */
792 packet.type = SR_DF_FRAME_END;
793 sr_session_send(sdi, &packet);
794
795 if (devc->limit_frames && ++devc->num_frames >= devc->limit_frames) {
796 /* Terminate session */
797 devc->dev_state = STOPPING;
798 } else {
799 devc->dev_state = NEW_CAPTURE;
800 }
801 }
802}
803
804static int handle_event(int fd, int revents, void *cb_data)
805{
806 const struct sr_dev_inst *sdi;
807 struct sr_datafeed_packet packet;
808 struct timeval tv;
809 struct sr_dev_driver *di;
810 struct dev_context *devc;
811 struct drv_context *drvc;
812 int num_channels;
813 uint32_t trigger_offset;
814 uint8_t capturestate;
815
816 (void)fd;
817 (void)revents;
818
819 sdi = cb_data;
820 di = sdi->driver;
821 drvc = di->context;
822 devc = sdi->priv;
823 if (devc->dev_state == STOPPING) {
824 /* We've been told to wind up the acquisition. */
825 sr_dbg("Stopping acquisition.");
826 /*
827 * TODO: Doesn't really cancel pending transfers so they might
828 * come in after SR_DF_END is sent.
829 */
830 usb_source_remove(sdi->session, drvc->sr_ctx);
831
832 std_session_send_df_end(sdi);
833
834 devc->dev_state = IDLE;
835
836 return TRUE;
837 }
838
839 /* Always handle pending libusb events. */
840 tv.tv_sec = tv.tv_usec = 0;
841 libusb_handle_events_timeout(drvc->sr_ctx->libusb_ctx, &tv);
842
843 /* TODO: ugh */
844 if (devc->dev_state == NEW_CAPTURE) {
845 if (dso_capture_start(sdi) != SR_OK)
846 return TRUE;
847 if (dso_enable_trigger(sdi) != SR_OK)
848 return TRUE;
849// if (dso_force_trigger(sdi) != SR_OK)
850// return TRUE;
851 sr_dbg("Successfully requested next chunk.");
852 devc->dev_state = CAPTURE;
853 return TRUE;
854 }
855 if (devc->dev_state != CAPTURE)
856 return TRUE;
857
858 if ((dso_get_capturestate(sdi, &capturestate, &trigger_offset)) != SR_OK)
859 return TRUE;
860
861 sr_dbg("Capturestate %d.", capturestate);
862 sr_dbg("Trigger offset 0x%.6x.", trigger_offset);
863 switch (capturestate) {
864 case CAPTURE_EMPTY:
865 if (++devc->capture_empty_count >= MAX_CAPTURE_EMPTY) {
866 devc->capture_empty_count = 0;
867 if (dso_capture_start(sdi) != SR_OK)
868 break;
869 if (dso_enable_trigger(sdi) != SR_OK)
870 break;
871// if (dso_force_trigger(sdi) != SR_OK)
872// break;
873 sr_dbg("Successfully requested next chunk.");
874 }
875 break;
876 case CAPTURE_FILLING:
877 /* No data yet. */
878 break;
879 case CAPTURE_READY_8BIT:
880 case CAPTURE_READY2250:
881 /* Remember where in the captured frame the trigger is. */
882 devc->trigger_offset = trigger_offset;
883
884 num_channels = (devc->ch_enabled[0] && devc->ch_enabled[1]) ? 2 : 1;
885 devc->framebuf = g_malloc(devc->framesize * num_channels * 2);
886 devc->samp_buffered = devc->samp_received = 0;
887
888 /* Tell the scope to send us the first frame. */
889 if (dso_get_channeldata(sdi, receive_transfer) != SR_OK)
890 break;
891
892 /*
893 * Don't hit the state machine again until we're done fetching
894 * the data we just told the scope to send.
895 */
896 devc->dev_state = FETCH_DATA;
897
898 /* Tell the frontend a new frame is on the way. */
899 packet.type = SR_DF_FRAME_BEGIN;
900 sr_session_send(sdi, &packet);
901 break;
902 case CAPTURE_READY_9BIT:
903 /* TODO */
904 sr_err("Not yet supported.");
905 break;
906 case CAPTURE_TIMEOUT:
907 /* Doesn't matter, we'll try again next time. */
908 break;
909 default:
910 sr_dbg("Unknown capture state: %d.", capturestate);
911 break;
912 }
913
914 return TRUE;
915}
916
917static int dev_acquisition_start(const struct sr_dev_inst *sdi)
918{
919 struct dev_context *devc;
920 struct sr_dev_driver *di = sdi->driver;
921 struct drv_context *drvc = di->context;
922
923 devc = sdi->priv;
924
925 if (configure_channels(sdi) != SR_OK) {
926 sr_err("Failed to configure channels.");
927 return SR_ERR;
928 }
929
930 if (dso_init(sdi) != SR_OK)
931 return SR_ERR;
932
933 if (dso_capture_start(sdi) != SR_OK)
934 return SR_ERR;
935
936 devc->dev_state = CAPTURE;
937 usb_source_add(sdi->session, drvc->sr_ctx, TICK, handle_event, (void *)sdi);
938
939 std_session_send_df_header(sdi);
940
941 return SR_OK;
942}
943
944static int dev_acquisition_stop(struct sr_dev_inst *sdi)
945{
946 struct dev_context *devc;
947
948 devc = sdi->priv;
949 devc->dev_state = STOPPING;
950 devc->num_frames = 0;
951
952 return SR_OK;
953}
954
955static struct sr_dev_driver hantek_dso_driver_info = {
956 .name = "hantek-dso",
957 .longname = "Hantek DSO",
958 .api_version = 1,
959 .init = std_init,
960 .cleanup = std_cleanup,
961 .scan = scan,
962 .dev_list = std_dev_list,
963 .dev_clear = dev_clear,
964 .config_get = config_get,
965 .config_set = config_set,
966 .config_list = config_list,
967 .dev_open = dev_open,
968 .dev_close = dev_close,
969 .dev_acquisition_start = dev_acquisition_start,
970 .dev_acquisition_stop = dev_acquisition_stop,
971 .context = NULL,
972};
973SR_REGISTER_DEV_DRIVER(hantek_dso_driver_info);