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sr_dev_close(): Set status to SR_ST_INACTIVE.
[libsigrok.git] / src / hardware / chronovu-la / api.c
1 /*
2  * This file is part of the libsigrok project.
3  *
4  * Copyright (C) 2011-2015 Uwe Hermann <uwe@hermann-uwe.de>
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 2 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 static const uint32_t drvopts[] = {
24         SR_CONF_LOGIC_ANALYZER,
25 };
26
27 static const uint32_t scanopts[] = {
28         SR_CONF_CONN,
29 };
30
31 static const uint32_t devopts[] = {
32         SR_CONF_LIMIT_MSEC | SR_CONF_SET,
33         SR_CONF_LIMIT_SAMPLES | SR_CONF_SET | SR_CONF_LIST,
34         SR_CONF_CONN | SR_CONF_GET,
35         SR_CONF_SAMPLERATE | SR_CONF_GET | SR_CONF_SET | SR_CONF_LIST,
36         SR_CONF_TRIGGER_MATCH | SR_CONF_LIST,
37 };
38
39 static const int32_t trigger_matches[] = {
40         SR_TRIGGER_ZERO,
41         SR_TRIGGER_ONE,
42         SR_TRIGGER_RISING,
43         SR_TRIGGER_FALLING,
44 };
45
46 static void clear_helper(void *priv)
47 {
48         struct dev_context *devc;
49
50         devc = priv;
51
52         ftdi_free(devc->ftdic);
53         g_free(devc->final_buf);
54 }
55
56 static int dev_clear(const struct sr_dev_driver *di)
57 {
58         return std_dev_clear(di, clear_helper);
59 }
60
61 static int add_device(int model, struct libusb_device_descriptor *des,
62         const char *serial_num, const char *connection_id, libusb_device *usbdev,
63         GSList **devices)
64 {
65         int ret;
66         unsigned int i;
67         struct sr_dev_inst *sdi;
68         struct dev_context *devc;
69
70         ret = SR_OK;
71
72         /* Allocate memory for our private device context. */
73         devc = g_malloc0(sizeof(struct dev_context));
74
75         /* Set some sane defaults. */
76         devc->prof = &cv_profiles[model];
77         devc->ftdic = NULL; /* Will be set in the open() API call. */
78         devc->cur_samplerate = 0; /* Set later (different for LA8/LA16). */
79         devc->limit_msec = 0;
80         devc->limit_samples = 0;
81         memset(devc->mangled_buf, 0, BS);
82         devc->final_buf = NULL;
83         devc->trigger_pattern = 0x0000; /* Irrelevant, see trigger_mask. */
84         devc->trigger_mask = 0x0000; /* All channels: "don't care". */
85         devc->trigger_edgemask = 0x0000; /* All channels: "state triggered". */
86         devc->trigger_found = 0;
87         devc->done = 0;
88         devc->block_counter = 0;
89         devc->divcount = 0;
90         devc->usb_vid = des->idVendor;
91         devc->usb_pid = des->idProduct;
92         memset(devc->samplerates, 0, sizeof(uint64_t) * 255);
93
94         /* Allocate memory where we'll store the de-mangled data. */
95         if (!(devc->final_buf = g_try_malloc(SDRAM_SIZE))) {
96                 sr_err("Failed to allocate memory for sample buffer.");
97                 ret = SR_ERR_MALLOC;
98                 goto err_free_devc;
99         }
100
101         /* We now know the device, set its max. samplerate as default. */
102         devc->cur_samplerate = devc->prof->max_samplerate;
103
104         /* Register the device with libsigrok. */
105         sdi = g_malloc0(sizeof(struct sr_dev_inst));
106         sdi->status = SR_ST_INACTIVE;
107         sdi->vendor = g_strdup("ChronoVu");
108         sdi->model = g_strdup(devc->prof->modelname);
109         sdi->serial_num = g_strdup(serial_num);
110         sdi->connection_id = g_strdup(connection_id);
111         sdi->conn = sr_usb_dev_inst_new(libusb_get_bus_number(usbdev),
112                 libusb_get_device_address(usbdev), NULL);
113         sdi->priv = devc;
114
115         for (i = 0; i < devc->prof->num_channels; i++)
116                 sr_channel_new(sdi, i, SR_CHANNEL_LOGIC, TRUE,
117                                 cv_channel_names[i]);
118
119         *devices = g_slist_append(*devices, sdi);
120
121         if (ret == SR_OK)
122                 return SR_OK;
123
124 err_free_devc:
125         g_free(devc);
126
127         return ret;
128 }
129
130 static GSList *scan(struct sr_dev_driver *di, GSList *options)
131 {
132         int i, ret, model;
133         struct drv_context *drvc;
134         GSList *devices, *conn_devices, *l;
135         struct sr_usb_dev_inst *usb;
136         struct sr_config *src;
137         struct libusb_device_descriptor des;
138         libusb_device **devlist;
139         struct libusb_device_handle *hdl;
140         const char *conn;
141         char product[64], serial_num[64], connection_id[64];
142
143         drvc = di->context;
144
145         conn = NULL;
146         for (l = options; l; l = l->next) {
147                 src = l->data;
148                 switch (src->key) {
149                 case SR_CONF_CONN:
150                         conn = g_variant_get_string(src->data, NULL);
151                         break;
152                 }
153         }
154         if (conn)
155                 conn_devices = sr_usb_find(drvc->sr_ctx->libusb_ctx, conn);
156         else
157                 conn_devices = NULL;
158
159         devices = NULL;
160         libusb_get_device_list(drvc->sr_ctx->libusb_ctx, &devlist);
161
162         for (i = 0; devlist[i]; i++) {
163                 if (conn) {
164                         for (l = conn_devices; l; l = l->next) {
165                                 usb = l->data;
166                                 if (usb->bus == libusb_get_bus_number(devlist[i])
167                                         && usb->address == libusb_get_device_address(devlist[i]))
168                                         break;
169                         }
170                         if (!l)
171                                 /* This device matched none of the ones that
172                                  * matched the conn specification. */
173                                 continue;
174                 }
175
176                 libusb_get_device_descriptor(devlist[i], &des);
177
178                 if ((ret = libusb_open(devlist[i], &hdl)) < 0)
179                         continue;
180
181                 if (des.iProduct == 0) {
182                         product[0] = '\0';
183                 } else if ((ret = libusb_get_string_descriptor_ascii(hdl,
184                                 des.iProduct, (unsigned char *)product,
185                                 sizeof(product))) < 0) {
186                         sr_warn("Failed to get product string descriptor: %s.",
187                                 libusb_error_name(ret));
188                         continue;
189                 }
190
191                 if (des.iSerialNumber == 0) {
192                         serial_num[0] = '\0';
193                 } else if ((ret = libusb_get_string_descriptor_ascii(hdl,
194                                 des.iSerialNumber, (unsigned char *)serial_num,
195                                 sizeof(serial_num))) < 0) {
196                         sr_warn("Failed to get serial number string descriptor: %s.",
197                                 libusb_error_name(ret));
198                         continue;
199                 }
200
201                 usb_get_port_path(devlist[i], connection_id, sizeof(connection_id));
202
203                 libusb_close(hdl);
204
205                 if (!strcmp(product, "ChronoVu LA8")) {
206                         model = 0;
207                 } else if (!strcmp(product, "ChronoVu LA16")) {
208                         model = 1;
209                 } else {
210                         sr_spew("Unknown iProduct string '%s'.", product);
211                         continue;
212                 }
213
214                 sr_dbg("Found %s (%04x:%04x, %d.%d, %s).",
215                        product, des.idVendor, des.idProduct,
216                        libusb_get_bus_number(devlist[i]),
217                        libusb_get_device_address(devlist[i]), connection_id);
218
219                 if ((ret = add_device(model, &des, serial_num, connection_id,
220                                         devlist[i], &devices)) < 0) {
221                         sr_dbg("Failed to add device: %d.", ret);
222                 }
223         }
224
225         libusb_free_device_list(devlist, 1);
226         g_slist_free_full(conn_devices, (GDestroyNotify)sr_usb_dev_inst_free);
227
228         return std_scan_complete(di, devices);
229 }
230
231 static int dev_open(struct sr_dev_inst *sdi)
232 {
233         struct dev_context *devc;
234         int ret;
235
236         devc = sdi->priv;
237
238         /* Allocate memory for the FTDI context and initialize it. */
239         if (!(devc->ftdic = ftdi_new())) {
240                 sr_err("Failed to initialize libftdi.");
241                 return SR_ERR;
242         }
243
244         sr_dbg("Opening %s device (%04x:%04x).", devc->prof->modelname,
245                devc->usb_vid, devc->usb_pid);
246
247         /* Open the device. */
248         if ((ret = ftdi_usb_open_desc(devc->ftdic, devc->usb_vid,
249                         devc->usb_pid, devc->prof->iproduct, NULL)) < 0) {
250                 sr_err("Failed to open FTDI device (%d): %s.",
251                        ret, ftdi_get_error_string(devc->ftdic));
252                 goto err_ftdi_free;
253         }
254         sr_dbg("Device opened successfully.");
255
256         /* Purge RX/TX buffers in the FTDI chip. */
257         if ((ret = ftdi_usb_purge_buffers(devc->ftdic)) < 0) {
258                 sr_err("Failed to purge FTDI buffers (%d): %s.",
259                        ret, ftdi_get_error_string(devc->ftdic));
260                 goto err_ftdi_free;
261         }
262         sr_dbg("FTDI buffers purged successfully.");
263
264         /* Enable flow control in the FTDI chip. */
265         if ((ret = ftdi_setflowctrl(devc->ftdic, SIO_RTS_CTS_HS)) < 0) {
266                 sr_err("Failed to enable FTDI flow control (%d): %s.",
267                        ret, ftdi_get_error_string(devc->ftdic));
268                 goto err_ftdi_free;
269         }
270         sr_dbg("FTDI flow control enabled successfully.");
271
272         /* Wait 100ms. */
273         g_usleep(100 * 1000);
274
275         return SR_OK;
276
277 err_ftdi_free:
278         ftdi_free(devc->ftdic); /* Close device (if open), free FTDI context. */
279         devc->ftdic = NULL;
280         return SR_ERR;
281 }
282
283 static int dev_close(struct sr_dev_inst *sdi)
284 {
285         int ret;
286         struct dev_context *devc;
287
288         devc = sdi->priv;
289
290         if (!devc->ftdic)
291                 return SR_ERR_BUG;
292
293         if ((ret = ftdi_usb_close(devc->ftdic)) < 0)
294                 sr_err("Failed to close FTDI device (%d): %s.",
295                        ret, ftdi_get_error_string(devc->ftdic));
296
297         return (ret == 0) ? SR_OK : SR_ERR;
298 }
299
300 static int config_get(uint32_t key, GVariant **data, const struct sr_dev_inst *sdi,
301                 const struct sr_channel_group *cg)
302 {
303         struct dev_context *devc;
304         struct sr_usb_dev_inst *usb;
305         char str[128];
306
307         (void)cg;
308
309         switch (key) {
310         case SR_CONF_CONN:
311                 if (!sdi || !(usb = sdi->conn))
312                         return SR_ERR_ARG;
313                 snprintf(str, 128, "%d.%d", usb->bus, usb->address);
314                 *data = g_variant_new_string(str);
315                 break;
316         case SR_CONF_SAMPLERATE:
317                 if (!sdi)
318                         return SR_ERR_BUG;
319                 devc = sdi->priv;
320                 *data = g_variant_new_uint64(devc->cur_samplerate);
321                 break;
322         default:
323                 return SR_ERR_NA;
324         }
325
326         return SR_OK;
327 }
328
329 static int config_set(uint32_t key, GVariant *data, const struct sr_dev_inst *sdi,
330                 const struct sr_channel_group *cg)
331 {
332         struct dev_context *devc;
333
334         (void)cg;
335
336         devc = sdi->priv;
337
338         switch (key) {
339         case SR_CONF_SAMPLERATE:
340                 if (cv_set_samplerate(sdi, g_variant_get_uint64(data)) < 0)
341                         return SR_ERR;
342                 break;
343         case SR_CONF_LIMIT_MSEC:
344                 if (g_variant_get_uint64(data) == 0)
345                         return SR_ERR_ARG;
346                 devc->limit_msec = g_variant_get_uint64(data);
347                 break;
348         case SR_CONF_LIMIT_SAMPLES:
349                 if (g_variant_get_uint64(data) == 0)
350                         return SR_ERR_ARG;
351                 devc->limit_samples = g_variant_get_uint64(data);
352                 break;
353         default:
354                 return SR_ERR_NA;
355         }
356
357         return SR_OK;
358 }
359
360 static int config_list(uint32_t key, GVariant **data, const struct sr_dev_inst *sdi,
361                 const struct sr_channel_group *cg)
362 {
363         GVariant *gvar, *grange[2];
364         GVariantBuilder gvb;
365         struct dev_context *devc;
366
367         (void)cg;
368
369         switch (key) {
370         case SR_CONF_SCAN_OPTIONS:
371                 *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT32,
372                                 scanopts, ARRAY_SIZE(scanopts), sizeof(uint32_t));
373                 break;
374         case SR_CONF_DEVICE_OPTIONS:
375                 if (!sdi)
376                         *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT32,
377                                         drvopts, ARRAY_SIZE(drvopts), sizeof(uint32_t));
378                 else
379                         *data = g_variant_new_fixed_array(G_VARIANT_TYPE_UINT32,
380                                         devopts, ARRAY_SIZE(devopts), sizeof(uint32_t));
381                 break;
382         case SR_CONF_SAMPLERATE:
383                 if (!sdi)
384                         return SR_ERR_BUG;
385                 devc = sdi->priv;
386                 cv_fill_samplerates_if_needed(sdi);
387                 g_variant_builder_init(&gvb, G_VARIANT_TYPE("a{sv}"));
388                 gvar = g_variant_new_fixed_array(G_VARIANT_TYPE("t"),
389                                 devc->samplerates,
390                                 ARRAY_SIZE(devc->samplerates),
391                                 sizeof(uint64_t));
392                 g_variant_builder_add(&gvb, "{sv}", "samplerates", gvar);
393                 *data = g_variant_builder_end(&gvb);
394                 break;
395         case SR_CONF_LIMIT_SAMPLES:
396                 if (!sdi || !sdi->priv || !(devc = sdi->priv) || !devc->prof)
397                         return SR_ERR_BUG;
398                 grange[0] = g_variant_new_uint64(0);
399                 if (devc->prof->model == CHRONOVU_LA8)
400                         grange[1] = g_variant_new_uint64(MAX_NUM_SAMPLES);
401                 else
402                         grange[1] = g_variant_new_uint64(MAX_NUM_SAMPLES / 2);
403                 *data = g_variant_new_tuple(grange, 2);
404                 break;
405         case SR_CONF_TRIGGER_MATCH:
406                 if (!sdi || !sdi->priv || !(devc = sdi->priv) || !devc->prof)
407                         return SR_ERR_BUG;
408                 *data = g_variant_new_fixed_array(G_VARIANT_TYPE_INT32,
409                                 trigger_matches, devc->prof->num_trigger_matches,
410                                 sizeof(int32_t));
411                 break;
412         default:
413                 return SR_ERR_NA;
414         }
415
416         return SR_OK;
417 }
418
419 static int receive_data(int fd, int revents, void *cb_data)
420 {
421         int i, ret;
422         struct sr_dev_inst *sdi;
423         struct dev_context *devc;
424
425         (void)fd;
426         (void)revents;
427
428         if (!(sdi = cb_data)) {
429                 sr_err("cb_data was NULL.");
430                 return FALSE;
431         }
432
433         if (!(devc = sdi->priv)) {
434                 sr_err("sdi->priv was NULL.");
435                 return FALSE;
436         }
437
438         if (!devc->ftdic) {
439                 sr_err("devc->ftdic was NULL.");
440                 return FALSE;
441         }
442
443         /* Get one block of data. */
444         if ((ret = cv_read_block(devc)) < 0) {
445                 sr_err("Failed to read data block: %d.", ret);
446                 sr_dev_acquisition_stop(sdi);
447                 return FALSE;
448         }
449
450         /* We need to get exactly NUM_BLOCKS blocks (i.e. 8MB) of data. */
451         if (devc->block_counter != (NUM_BLOCKS - 1)) {
452                 devc->block_counter++;
453                 return TRUE;
454         }
455
456         sr_dbg("Sampling finished, sending data to session bus now.");
457
458         /*
459          * All data was received and demangled, send it to the session bus.
460          *
461          * Note: Due to the method how data is spread across the 8MByte of
462          * SDRAM, we can _not_ send it to the session bus in a streaming
463          * manner while we receive it. We have to receive and de-mangle the
464          * full 8MByte first, only then the whole buffer contains valid data.
465          */
466         for (i = 0; i < NUM_BLOCKS; i++)
467                 cv_send_block_to_session_bus(sdi, i);
468
469         sr_dev_acquisition_stop(sdi);
470
471         return TRUE;
472 }
473
474 static int dev_acquisition_start(const struct sr_dev_inst *sdi)
475 {
476         struct dev_context *devc;
477         uint8_t buf[8];
478         int bytes_to_write, bytes_written;
479
480         devc = sdi->priv;
481
482         if (!devc->ftdic) {
483                 sr_err("devc->ftdic was NULL.");
484                 return SR_ERR_BUG;
485         }
486
487         devc->divcount = cv_samplerate_to_divcount(sdi, devc->cur_samplerate);
488         if (devc->divcount == 0xff) {
489                 sr_err("Invalid divcount/samplerate.");
490                 return SR_ERR;
491         }
492
493         if (cv_convert_trigger(sdi) != SR_OK) {
494                 sr_err("Failed to configure trigger.");
495                 return SR_ERR;
496         }
497
498         /* Fill acquisition parameters into buf[]. */
499         if (devc->prof->model == CHRONOVU_LA8) {
500                 buf[0] = devc->divcount;
501                 buf[1] = 0xff; /* This byte must always be 0xff. */
502                 buf[2] = devc->trigger_pattern & 0xff;
503                 buf[3] = devc->trigger_mask & 0xff;
504                 bytes_to_write = 4;
505         } else {
506                 buf[0] = devc->divcount;
507                 buf[1] = 0xff; /* This byte must always be 0xff. */
508                 buf[2] = (devc->trigger_pattern & 0xff00) >> 8;  /* LSB */
509                 buf[3] = (devc->trigger_pattern & 0x00ff) >> 0;  /* MSB */
510                 buf[4] = (devc->trigger_mask & 0xff00) >> 8;     /* LSB */
511                 buf[5] = (devc->trigger_mask & 0x00ff) >> 0;     /* MSB */
512                 buf[6] = (devc->trigger_edgemask & 0xff00) >> 8; /* LSB */
513                 buf[7] = (devc->trigger_edgemask & 0x00ff) >> 0; /* MSB */
514                 bytes_to_write = 8;
515         }
516
517         /* Start acquisition. */
518         bytes_written = cv_write(devc, buf, bytes_to_write);
519
520         if (bytes_written < 0 || bytes_written != bytes_to_write) {
521                 sr_err("Acquisition failed to start.");
522                 return SR_ERR;
523         }
524
525         sr_dbg("Hardware acquisition started successfully.");
526
527         std_session_send_df_header(sdi);
528
529         /* Time when we should be done (for detecting trigger timeouts). */
530         devc->done = (devc->divcount + 1) * devc->prof->trigger_constant +
531                         g_get_monotonic_time() + (10 * G_TIME_SPAN_SECOND);
532         devc->block_counter = 0;
533         devc->trigger_found = 0;
534
535         /* Hook up a dummy handler to receive data from the device. */
536         sr_session_source_add(sdi->session, -1, 0, 0, receive_data, (void *)sdi);
537
538         return SR_OK;
539 }
540
541 static int dev_acquisition_stop(struct sr_dev_inst *sdi)
542 {
543         sr_session_source_remove(sdi->session, -1);
544         std_session_send_df_end(sdi);
545
546         return SR_OK;
547 }
548
549 static struct sr_dev_driver chronovu_la_driver_info = {
550         .name = "chronovu-la",
551         .longname = "ChronoVu LA8/LA16",
552         .api_version = 1,
553         .init = std_init,
554         .cleanup = std_cleanup,
555         .scan = scan,
556         .dev_list = std_dev_list,
557         .dev_clear = dev_clear,
558         .config_get = config_get,
559         .config_set = config_set,
560         .config_list = config_list,
561         .dev_open = dev_open,
562         .dev_close = dev_close,
563         .dev_acquisition_start = dev_acquisition_start,
564         .dev_acquisition_stop = dev_acquisition_stop,
565         .context = NULL,
566 };
567 SR_REGISTER_DEV_DRIVER(chronovu_la_driver_info);