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1 /*
2  * This file is part of the sigrok 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 "protocol.h"
21
22 #define VENDOR_NAME                     "ZEROPLUS"
23 #define USB_INTERFACE                   0
24 #define USB_CONFIGURATION               1
25 #define NUM_TRIGGER_STAGES              4
26 #define TRIGGER_TYPE                    "01"
27 #define PACKET_SIZE                     2048    /* ?? */
28
29 //#define ZP_EXPERIMENTAL
30
31 struct zp_model {
32         uint16_t vid;
33         uint16_t pid;
34         char *model_name;
35         unsigned int channels;
36         unsigned int sample_depth;      /* In Ksamples/channel */
37         unsigned int max_sampling_freq;
38 };
39
40 /*
41  * Note -- 16032, 16064 and 16128 *usually* -- but not always -- have the
42  * same 128K sample depth.
43  */
44 static const struct zp_model zeroplus_models[] = {
45         {0x0c12, 0x7002, "LAP-16128U",    16, 128,  200},
46         {0x0c12, 0x7009, "LAP-C(16064)",  16, 64,   100},
47         {0x0c12, 0x700a, "LAP-C(16128)",  16, 128,  200},
48         /* TODO: We don't know anything about these.
49         {0x0c12, 0x700b, "LAP-C(32128)",  32, 128,  200},
50         {0x0c12, 0x700c, "LAP-C(321000)", 32, 1024, 200},
51         {0x0c12, 0x700d, "LAP-C(322000)", 32, 2048, 200},
52         */
53         {0x0c12, 0x700e, "LAP-C(16032)",  16, 32,   100},
54         {0x0c12, 0x7016, "LAP-C(162000)", 16, 2048, 200},
55         { 0, 0, 0, 0, 0, 0 }
56 };
57
58 static const int32_t hwcaps[] = {
59         SR_CONF_LOGIC_ANALYZER,
60         SR_CONF_SAMPLERATE,
61         SR_CONF_CAPTURE_RATIO,
62         SR_CONF_LIMIT_SAMPLES,
63 };
64
65 /*
66  * ZEROPLUS LAP-C (16032) numbers the 16 probes A0-A7 and B0-B7.
67  * We currently ignore other untested/unsupported devices here.
68  */
69 static const char *probe_names[] = {
70         "A0", "A1", "A2", "A3", "A4", "A5", "A6", "A7",
71         "B0", "B1", "B2", "B3", "B4", "B5", "B6", "B7",
72         NULL,
73 };
74
75 SR_PRIV struct sr_dev_driver zeroplus_logic_cube_driver_info;
76 static struct sr_dev_driver *di = &zeroplus_logic_cube_driver_info;
77
78 /*
79  * The hardware supports more samplerates than these, but these are the
80  * options hardcoded into the vendor's Windows GUI.
81  */
82
83 static const uint64_t samplerates_100[] = {
84         SR_HZ(100),
85         SR_HZ(500),
86         SR_KHZ(1),
87         SR_KHZ(5),
88         SR_KHZ(25),
89         SR_KHZ(50),
90         SR_KHZ(100),
91         SR_KHZ(200),
92         SR_KHZ(400),
93         SR_KHZ(800),
94         SR_MHZ(1),
95         SR_MHZ(10),
96         SR_MHZ(25),
97         SR_MHZ(50),
98         SR_MHZ(80),
99         SR_MHZ(100),
100 };
101
102 const uint64_t samplerates_200[] = {
103         SR_HZ(100),
104         SR_HZ(500),
105         SR_KHZ(1),
106         SR_KHZ(5),
107         SR_KHZ(25),
108         SR_KHZ(50),
109         SR_KHZ(100),
110         SR_KHZ(200),
111         SR_KHZ(400),
112         SR_KHZ(800),
113         SR_MHZ(1),
114         SR_MHZ(10),
115         SR_MHZ(25),
116         SR_MHZ(50),
117         SR_MHZ(80),
118         SR_MHZ(100),
119         SR_MHZ(150),
120         SR_MHZ(200),
121 };
122
123 static int hw_dev_close(struct sr_dev_inst *sdi);
124
125 #if 0
126 static int configure_probes(const struct sr_dev_inst *sdi)
127 {
128         struct dev_context *devc;
129         const struct sr_probe *probe;
130         const GSList *l;
131         int probe_bit, stage, i;
132         char *tc;
133
134         /* Note: sdi and sdi->priv are non-NULL, the caller checked this. */
135         devc = sdi->priv;
136
137         devc->probe_mask = 0;
138         for (i = 0; i < NUM_TRIGGER_STAGES; i++) {
139                 devc->trigger_mask[i] = 0;
140                 devc->trigger_value[i] = 0;
141         }
142
143         stage = -1;
144         for (l = sdi->probes; l; l = l->next) {
145                 probe = (struct sr_probe *)l->data;
146                 if (probe->enabled == FALSE)
147                         continue;
148                 probe_bit = 1 << (probe->index);
149                 devc->probe_mask |= probe_bit;
150
151                 if (probe->trigger) {
152                         stage = 0;
153                         for (tc = probe->trigger; *tc; tc++) {
154                                 devc->trigger_mask[stage] |= probe_bit;
155                                 if (*tc == '1')
156                                         devc->trigger_value[stage] |= probe_bit;
157                                 stage++;
158                                 if (stage > NUM_TRIGGER_STAGES)
159                                         return SR_ERR;
160                         }
161                 }
162         }
163
164         return SR_OK;
165 }
166 #endif
167
168 static int configure_probes(const struct sr_dev_inst *sdi)
169 {
170         struct dev_context *devc;
171         const GSList *l;
172         const struct sr_probe *probe;
173         char *tc;
174         int type;
175
176         /* Note: sdi and sdi->priv are non-NULL, the caller checked this. */
177         devc = sdi->priv;
178
179         for (l = sdi->probes; l; l = l->next) {
180                 probe = (struct sr_probe *)l->data;
181                 if (probe->enabled == FALSE)
182                         continue;
183
184                 if ((tc = probe->trigger)) {
185                         switch (*tc) {
186                         case '1':
187                                 type = TRIGGER_HIGH;
188                                 break;
189                         case '0':
190                                 type = TRIGGER_LOW;
191                                 break;
192 #if 0
193                         case 'r':
194                                 type = TRIGGER_POSEDGE;
195                                 break;
196                         case 'f':
197                                 type = TRIGGER_NEGEDGE;
198                                 break;
199                         case 'c':
200                                 type = TRIGGER_ANYEDGE;
201                                 break;
202 #endif
203                         default:
204                                 return SR_ERR;
205                         }
206                         analyzer_add_trigger(probe->index, type);
207                         devc->trigger = 1;
208                 }
209         }
210
211         return SR_OK;
212 }
213
214 SR_PRIV int zp_set_samplerate(struct dev_context *devc, uint64_t samplerate)
215 {
216         int i;
217
218         for (i = 0; ARRAY_SIZE(samplerates_200); i++)
219                 if (samplerate == samplerates_200[i])
220                         break;
221
222         if (i == ARRAY_SIZE(samplerates_200) || samplerate > devc->max_samplerate) {
223                 sr_err("Unsupported samplerate: %" PRIu64 "Hz.", samplerate);
224                 return SR_ERR_ARG;
225         }
226
227         sr_info("Setting samplerate to %" PRIu64 "Hz.", samplerate);
228
229         if (samplerate >= SR_MHZ(1))
230                 analyzer_set_freq(samplerate / SR_MHZ(1), FREQ_SCALE_MHZ);
231         else if (samplerate >= SR_KHZ(1))
232                 analyzer_set_freq(samplerate / SR_KHZ(1), FREQ_SCALE_KHZ);
233         else
234                 analyzer_set_freq(samplerate, FREQ_SCALE_HZ);
235
236         devc->cur_samplerate = samplerate;
237
238         return SR_OK;
239 }
240
241 static int clear_instances(void)
242 {
243         GSList *l;
244         struct sr_dev_inst *sdi;
245         struct drv_context *drvc;
246         struct dev_context *devc;
247
248         drvc = di->priv;
249         for (l = drvc->instances; l; l = l->next) {
250                 sdi = l->data;
251                 if (!(devc = sdi->priv)) {
252                         /* Log error, but continue cleaning up the rest. */
253                         sr_err("%s: sdi->priv was NULL, continuing", __func__);
254                         continue;
255                 }
256                 sr_usb_dev_inst_free(devc->usb);
257                 /* Properly close all devices... */
258                 hw_dev_close(sdi);
259                 /* ...and free all their memory. */
260                 sr_dev_inst_free(sdi);
261         }
262         g_slist_free(drvc->instances);
263         drvc->instances = NULL;
264
265         return SR_OK;
266 }
267
268 static int hw_init(struct sr_context *sr_ctx)
269 {
270         return std_hw_init(sr_ctx, di, "zeroplus: ");
271 }
272
273 static GSList *hw_scan(GSList *options)
274 {
275         struct sr_dev_inst *sdi;
276         struct sr_probe *probe;
277         struct drv_context *drvc;
278         struct dev_context *devc;
279         const struct zp_model *prof;
280         struct libusb_device_descriptor des;
281         libusb_device **devlist;
282         GSList *devices;
283         int ret, devcnt, i, j;
284
285         (void)options;
286
287         drvc = di->priv;
288
289         devices = NULL;
290
291         clear_instances();
292
293         /* Find all ZEROPLUS analyzers and add them to device list. */
294         devcnt = 0;
295         libusb_get_device_list(drvc->sr_ctx->libusb_ctx, &devlist); /* TODO: Errors. */
296
297         for (i = 0; devlist[i]; i++) {
298                 ret = libusb_get_device_descriptor(devlist[i], &des);
299                 if (ret != 0) {
300                         sr_err("Failed to get device descriptor: %s.",
301                                libusb_error_name(ret));
302                         continue;
303                 }
304
305                 prof = NULL;
306                 for (j = 0; j < zeroplus_models[j].vid; j++) {
307                         if (des.idVendor == zeroplus_models[j].vid &&
308                                 des.idProduct == zeroplus_models[j].pid) {
309                                 prof = &zeroplus_models[j];
310                         }
311                 }
312                 /* Skip if the device was not found. */
313                 if (!prof)
314                         continue;
315                 sr_info("Found ZEROPLUS %s.", prof->model_name);
316
317                 /* Register the device with libsigrok. */
318                 if (!(sdi = sr_dev_inst_new(devcnt, SR_ST_INACTIVE,
319                                 VENDOR_NAME, prof->model_name, NULL))) {
320                         sr_err("%s: sr_dev_inst_new failed", __func__);
321                         return NULL;
322                 }
323                 sdi->driver = di;
324
325                 /* Allocate memory for our private driver context. */
326                 if (!(devc = g_try_malloc0(sizeof(struct dev_context)))) {
327                         sr_err("Device context malloc failed.");
328                         return NULL;
329                 }
330
331                 sdi->priv = devc;
332                 devc->prof = prof;
333                 devc->num_channels = prof->channels;
334 #ifdef ZP_EXPERIMENTAL
335                 devc->max_memory_size = 128 * 1024;
336                 devc->max_samplerate = 200;
337 #else
338                 devc->max_memory_size = prof->sample_depth * 1024;
339                 devc->max_samplerate = prof->max_sampling_freq;
340 #endif
341                 devc->max_samplerate *= SR_MHZ(1);
342                 devc->memory_size = MEMORY_SIZE_8K;
343                 // memset(devc->trigger_buffer, 0, NUM_TRIGGER_STAGES);
344
345                 /* Fill in probelist according to this device's profile. */
346                 for (j = 0; j < devc->num_channels; j++) {
347                         if (!(probe = sr_probe_new(j, SR_PROBE_LOGIC, TRUE,
348                                         probe_names[j])))
349                                 return NULL;
350                         sdi->probes = g_slist_append(sdi->probes, probe);
351                 }
352
353                 devices = g_slist_append(devices, sdi);
354                 drvc->instances = g_slist_append(drvc->instances, sdi);
355                 devc->usb = sr_usb_dev_inst_new(
356                         libusb_get_bus_number(devlist[i]),
357                         libusb_get_device_address(devlist[i]), NULL);
358                 devcnt++;
359
360         }
361         libusb_free_device_list(devlist, 1);
362
363         return devices;
364 }
365
366 static GSList *hw_dev_list(void)
367 {
368         return ((struct drv_context *)(di->priv))->instances;
369 }
370
371 static int hw_dev_open(struct sr_dev_inst *sdi)
372 {
373         struct dev_context *devc;
374         struct drv_context *drvc;
375         libusb_device **devlist, *dev;
376         struct libusb_device_descriptor des;
377         int device_count, ret, i;
378
379         drvc = di->priv;
380
381         if (!(devc = sdi->priv)) {
382                 sr_err("%s: sdi->priv was NULL", __func__);
383                 return SR_ERR_ARG;
384         }
385
386         device_count = libusb_get_device_list(drvc->sr_ctx->libusb_ctx,
387                                               &devlist);
388         if (device_count < 0) {
389                 sr_err("Failed to retrieve device list.");
390                 return SR_ERR;
391         }
392
393         dev = NULL;
394         for (i = 0; i < device_count; i++) {
395                 if ((ret = libusb_get_device_descriptor(devlist[i], &des))) {
396                         sr_err("Failed to get device descriptor: %s.",
397                                libusb_error_name(ret));
398                         continue;
399                 }
400                 if (libusb_get_bus_number(devlist[i]) == devc->usb->bus
401                     && libusb_get_device_address(devlist[i]) == devc->usb->address) {
402                         dev = devlist[i];
403                         break;
404                 }
405         }
406         if (!dev) {
407                 sr_err("Device on bus %d address %d disappeared!",
408                        devc->usb->bus, devc->usb->address);
409                 return SR_ERR;
410         }
411
412         if (!(ret = libusb_open(dev, &(devc->usb->devhdl)))) {
413                 sdi->status = SR_ST_ACTIVE;
414                 sr_info("Opened device %d on %d.%d interface %d.",
415                         sdi->index, devc->usb->bus,
416                         devc->usb->address, USB_INTERFACE);
417         } else {
418                 sr_err("Failed to open device: %s.", libusb_error_name(ret));
419                 return SR_ERR;
420         }
421
422         ret = libusb_set_configuration(devc->usb->devhdl, USB_CONFIGURATION);
423         if (ret < 0) {
424                 sr_err("Unable to set USB configuration %d: %s.",
425                        USB_CONFIGURATION, libusb_error_name(ret));
426                 return SR_ERR;
427         }
428
429         ret = libusb_claim_interface(devc->usb->devhdl, USB_INTERFACE);
430         if (ret != 0) {
431                 sr_err("Unable to claim interface: %s.",
432                        libusb_error_name(ret));
433                 return SR_ERR;
434         }
435
436         /* Set default configuration after power on. */
437         if (analyzer_read_status(devc->usb->devhdl) == 0)
438                 analyzer_configure(devc->usb->devhdl);
439
440         analyzer_reset(devc->usb->devhdl);
441         analyzer_initialize(devc->usb->devhdl);
442
443         //analyzer_set_memory_size(MEMORY_SIZE_512K);
444         // analyzer_set_freq(g_freq, g_freq_scale);
445         analyzer_set_trigger_count(1);
446         // analyzer_set_ramsize_trigger_address((((100 - g_pre_trigger)
447         // * get_memory_size(g_memory_size)) / 100) >> 2);
448
449 #if 0
450         if (g_double_mode == 1)
451                 analyzer_set_compression(COMPRESSION_DOUBLE);
452         else if (g_compression == 1)
453                 analyzer_set_compression(COMPRESSION_ENABLE);
454         else
455 #endif
456         analyzer_set_compression(COMPRESSION_NONE);
457
458         if (devc->cur_samplerate == 0) {
459                 /* Samplerate hasn't been set. Default to 1MHz. */
460                 analyzer_set_freq(1, FREQ_SCALE_MHZ);
461                 devc->cur_samplerate = SR_MHZ(1);
462         }
463
464         return SR_OK;
465 }
466
467 static int hw_dev_close(struct sr_dev_inst *sdi)
468 {
469         struct dev_context *devc;
470
471         devc = sdi->priv;
472
473         if (!devc->usb->devhdl)
474                 return SR_ERR;
475
476         sr_info("Closing device %d on %d.%d interface %d.", sdi->index,
477                 devc->usb->bus, devc->usb->address, USB_INTERFACE);
478         libusb_release_interface(devc->usb->devhdl, USB_INTERFACE);
479         libusb_reset_device(devc->usb->devhdl);
480         libusb_close(devc->usb->devhdl);
481         devc->usb->devhdl = NULL;
482         sdi->status = SR_ST_INACTIVE;
483
484         return SR_OK;
485 }
486
487 static int hw_cleanup(void)
488 {
489         struct drv_context *drvc;
490
491         if (!(drvc = di->priv))
492                 return SR_OK;
493
494         clear_instances();
495
496         return SR_OK;
497 }
498
499 static int config_get(int id, GVariant **data, const struct sr_dev_inst *sdi)
500 {
501         struct dev_context *devc;
502
503         switch (id) {
504         case SR_CONF_SAMPLERATE:
505                 if (sdi) {
506                         devc = sdi->priv;
507                         *data = g_variant_new_uint64(devc->cur_samplerate);
508                         sr_spew("Returning samplerate: %" PRIu64 "Hz.",
509                                 devc->cur_samplerate);
510                 } else
511                         return SR_ERR;
512                 break;
513         default:
514                 return SR_ERR_ARG;
515         }
516
517         return SR_OK;
518 }
519
520 static int config_set(int id, GVariant *data, const struct sr_dev_inst *sdi)
521 {
522         struct dev_context *devc;
523
524         if (!sdi) {
525                 sr_err("%s: sdi was NULL", __func__);
526                 return SR_ERR_ARG;
527         }
528
529         if (!(devc = sdi->priv)) {
530                 sr_err("%s: sdi->priv was NULL", __func__);
531                 return SR_ERR_ARG;
532         }
533
534         switch (id) {
535         case SR_CONF_SAMPLERATE:
536                 return zp_set_samplerate(devc, g_variant_get_uint64(data));
537         case SR_CONF_LIMIT_SAMPLES:
538                 return set_limit_samples(devc, g_variant_get_uint64(data));
539         case SR_CONF_CAPTURE_RATIO:
540                 return set_capture_ratio(devc, g_variant_get_uint64(data));
541         default:
542                 return SR_ERR;
543         }
544
545         return SR_OK;
546 }
547
548 static int config_list(int key, GVariant **data, const struct sr_dev_inst *sdi)
549 {
550         struct dev_context *devc;
551         GVariant *gvar;
552         GVariantBuilder gvb;
553
554         switch (key) {
555         case SR_CONF_DEVICE_OPTIONS:
556                 *data = g_variant_new_fixed_array(G_VARIANT_TYPE_INT32,
557                                 hwcaps, ARRAY_SIZE(hwcaps), sizeof(int32_t));
558                 break;
559         case SR_CONF_SAMPLERATE:
560                 devc = sdi->priv;
561                 g_variant_builder_init(&gvb, G_VARIANT_TYPE("a{sv}"));
562                 if (devc->prof->max_sampling_freq == 100) {
563                         gvar = g_variant_new_fixed_array(G_VARIANT_TYPE("t"),
564                                         samplerates_100, ARRAY_SIZE(samplerates_100),
565                                         sizeof(uint64_t));
566                 } else if (devc->prof->max_sampling_freq == 200) {
567                         gvar = g_variant_new_fixed_array(G_VARIANT_TYPE("t"),
568                                         samplerates_200, ARRAY_SIZE(samplerates_200),
569                                         sizeof(uint64_t));
570                 } else {
571                         sr_err("Internal error: Unknown max. samplerate: %d.",
572                                devc->prof->max_sampling_freq);
573                         return SR_ERR_ARG;
574                 }
575                 g_variant_builder_add(&gvb, "{sv}", "samplerates", gvar);
576                 *data = g_variant_builder_end(&gvb);
577                 break;
578         case SR_CONF_TRIGGER_TYPE:
579                 *data = g_variant_new_string(TRIGGER_TYPE);
580                 break;
581         default:
582                 return SR_ERR_ARG;
583         }
584
585         return SR_OK;
586 }
587
588 static int hw_dev_acquisition_start(const struct sr_dev_inst *sdi,
589                 void *cb_data)
590 {
591         struct sr_datafeed_packet packet;
592         struct sr_datafeed_logic logic;
593         //uint64_t samples_read;
594         int res;
595         unsigned int packet_num, n;
596         unsigned char *buf;
597         struct dev_context *devc;
598
599         if (!(devc = sdi->priv)) {
600                 sr_err("%s: sdi->priv was NULL", __func__);
601                 return SR_ERR_ARG;
602         }
603
604         if (configure_probes(sdi) != SR_OK) {
605                 sr_err("Failed to configure probes.");
606                 return SR_ERR;
607         }
608
609         set_triggerbar(devc);
610
611         /* Push configured settings to device. */
612         analyzer_configure(devc->usb->devhdl);
613
614         analyzer_start(devc->usb->devhdl);
615         sr_info("Waiting for data.");
616         analyzer_wait_data(devc->usb->devhdl);
617
618         sr_info("Stop address    = 0x%x.",
619                 analyzer_get_stop_address(devc->usb->devhdl));
620         sr_info("Now address     = 0x%x.",
621                 analyzer_get_now_address(devc->usb->devhdl));
622         sr_info("Trigger address = 0x%x.",
623                 analyzer_get_trigger_address(devc->usb->devhdl));
624
625         /* Send header packet to the session bus. */
626         std_session_send_df_header(cb_data, DRIVER_LOG_DOMAIN);
627
628         if (!(buf = g_try_malloc(PACKET_SIZE))) {
629                 sr_err("Packet buffer malloc failed.");
630                 return SR_ERR_MALLOC;
631         }
632
633         //samples_read = 0;
634         analyzer_read_start(devc->usb->devhdl);
635         /* Send the incoming transfer to the session bus. */
636         n = get_memory_size(devc->memory_size);
637         if (devc->max_memory_size * 4 < n)
638                 n = devc->max_memory_size * 4;
639         for (packet_num = 0; packet_num < n / PACKET_SIZE; packet_num++) {
640                 res = analyzer_read_data(devc->usb->devhdl, buf, PACKET_SIZE);
641                 sr_info("Tried to read %d bytes, actually read %d bytes.",
642                         PACKET_SIZE, res);
643
644                 packet.type = SR_DF_LOGIC;
645                 packet.payload = &logic;
646                 logic.length = PACKET_SIZE;
647                 logic.unitsize = 4;
648                 logic.data = buf;
649                 sr_session_send(cb_data, &packet);
650                 //samples_read += res / 4;
651         }
652         analyzer_read_stop(devc->usb->devhdl);
653         g_free(buf);
654
655         packet.type = SR_DF_END;
656         sr_session_send(cb_data, &packet);
657
658         return SR_OK;
659 }
660
661 /* TODO: This stops acquisition on ALL devices, ignoring dev_index. */
662 static int hw_dev_acquisition_stop(struct sr_dev_inst *sdi, void *cb_data)
663 {
664         struct sr_datafeed_packet packet;
665         struct dev_context *devc;
666
667         packet.type = SR_DF_END;
668         sr_session_send(cb_data, &packet);
669
670         if (!(devc = sdi->priv)) {
671                 sr_err("%s: sdi->priv was NULL", __func__);
672                 return SR_ERR_BUG;
673         }
674
675         analyzer_reset(devc->usb->devhdl);
676         /* TODO: Need to cancel and free any queued up transfers. */
677
678         return SR_OK;
679 }
680
681 SR_PRIV struct sr_dev_driver zeroplus_logic_cube_driver_info = {
682         .name = "zeroplus-logic-cube",
683         .longname = "ZEROPLUS Logic Cube LAP-C series",
684         .api_version = 1,
685         .init = hw_init,
686         .cleanup = hw_cleanup,
687         .scan = hw_scan,
688         .dev_list = hw_dev_list,
689         .dev_clear = hw_cleanup,
690         .config_get = config_get,
691         .config_set = config_set,
692         .config_list = config_list,
693         .dev_open = hw_dev_open,
694         .dev_close = hw_dev_close,
695         .dev_acquisition_start = hw_dev_acquisition_start,
696         .dev_acquisition_stop = hw_dev_acquisition_stop,
697         .priv = NULL,
698 };