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serial_hid: implement serial over HID transport
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4417074c
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1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 2017-2019 Gerhard Sittig <gerhard.sittig@gmx.net>
5 *
6 * This program is free software: you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation, either version 3 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program. If not, see <http://www.gnu.org/licenses/>.
18 */
19
20#include "config.h"
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21#include <glib.h>
22#ifdef HAVE_LIBHIDAPI
23#include <hidapi.h>
24#endif
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25#include <libsigrok/libsigrok.h>
26#include "libsigrok-internal.h"
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27#include "serial_hid.h"
28#include <stdlib.h>
29#include <string.h>
30#ifdef G_OS_WIN32
31#include <windows.h> /* for HANDLE */
32#endif
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33
34/** @cond PRIVATE */
35#define LOG_PREFIX "serial-hid"
36/** @endcond */
37
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38#ifdef HAVE_SERIAL_COMM
39
40/**
41 * @file
42 *
43 * Serial port handling, HIDAPI library specific support code.
44 */
45
46/**
47 * @defgroup grp_serial_hid Serial port handling, HID group
48 *
49 * Make serial-over-HID communication appear like a regular serial port.
50 *
51 * @{
52 */
53
54#ifdef HAVE_LIBHIDAPI
55/* {{{ helper routines */
56
57/* Strip off parity bits for "odd" data bit counts like in 7e1 frames. */
58static void ser_hid_mask_databits(struct sr_serial_dev_inst *serial,
59 uint8_t *data, size_t len)
60{
61 uint32_t mask32;
62 uint8_t mask;
63 size_t idx;
64
65 if ((serial->comm_params.data_bits % 8) == 0)
66 return;
67
68 mask32 = (1UL << serial->comm_params.data_bits) - 1;
69 mask = mask32 & 0xff;
70 for (idx = 0; idx < len; idx++)
71 data[idx] &= mask;
72}
73
74/* }}} */
75/* {{{ open/close/list/find HIDAPI connection, exchange HID requests and data */
76
77/*
78 * Convert a HIDAPI path (which depends on the target platform, and may
79 * depend on one of several available API variants on that platform) to
80 * something that is usable as a "port name" in conn= specs.
81 *
82 * Since conn= is passed with -d where multiple options (among them conn=)
83 * are separated by colons, port names themselves cannot contain colons.
84 *
85 * Just replace colons by a period in the simple case (Linux platform,
86 * hidapi-libusb implementation, bus/address/interface). Prefix the
87 * HIDAPI path in the complex cases (Linux hidapi-hidraw, Windows, Mac).
88 * Paths with colons outside of libusb based implementations are unhandled
89 * here, but were not yet seen on any sigrok supported platform either.
90 * So just reject them.
91 */
92static char *get_hidapi_path_copy(const char *path)
93{
94 static const char *accept = "0123456789abcdefABCDEF:";
95 static const char *keep = "0123456789abcdefABCDEF";
96
97 int has_colon;
98 int is_hex_colon;
99 char *name;
100
101 has_colon = strchr(path, ':') != NULL;
102 is_hex_colon = strspn(path, accept) == strlen(path);
103 if (has_colon && !is_hex_colon) {
104 sr_err("Unsupported HIDAPI path format: %s", path);
105 return NULL;
106 }
107 if (is_hex_colon) {
108 name = g_strdup_printf("%s%s", SER_HID_USB_PREFIX, path);
109 g_strcanon(name + strlen(SER_HID_USB_PREFIX), keep, '.');
110 } else {
111 name = g_strdup_printf("%s%s", SER_HID_RAW_PREFIX, path);
112 }
113
114 return name;
115}
116
117/*
118 * Undo the port name construction that was done during scan. Extract
119 * the HIDAPI path from a conn= input spec (the part after the hid/
120 * prefix and chip type).
121 *
122 * Strip off the "raw" prefix, or undo colon substitution. See @ref
123 * get_hidapi_path_copy() for details.
124 */
125static const char *extract_hidapi_path(char *buffer)
126{
127 static const char *keep = "0123456789abcdefABCDEF:";
128
129 const char *p;
130
131 p = buffer;
132 if (!p || !*p)
133 return NULL;
134
135 if (strncmp(p, SER_HID_RAW_PREFIX, strlen(SER_HID_RAW_PREFIX)) == 0) {
136 p += strlen(SER_HID_RAW_PREFIX);
137 return p;
138 }
139 if (strncmp(p, SER_HID_USB_PREFIX, strlen(SER_HID_USB_PREFIX)) == 0) {
140 p += strlen(SER_HID_USB_PREFIX);
141 g_strcanon(buffer, keep, ':');
142 return p;
143 }
144
145 return NULL;
146}
147
148/*
149 * The HIDAPI specific list() callback, invoked by common serial.c code.
150 * Enumerate all devices (no VID:PID is involved).
151 * Invoke an 'append' callback with "path" and "name".
152 */
153static GSList *ser_hid_hidapi_list(GSList *list, sr_ser_list_append_t append)
154{
155 struct hid_device_info *devs, *curdev;
156 const char *chipname;
157 char *path, *name;
158 wchar_t *manuf, *prod, *serno;
159 uint16_t vid, pid;
160 GString *desc;
161
162 devs = hid_enumerate(0x0000, 0x0000);
163 for (curdev = devs; curdev; curdev = curdev->next) {
164 /*
165 * Determine the chip name from VID:PID (if it's one of
166 * the supported types with an ID known to us).
167 */
168 vid = curdev->vendor_id;
169 pid = curdev->product_id;
170 sr_dbg("DIAG: hidapi enum, vid:pid %04x:%04x, path %s\n",
171 curdev->vendor_id, curdev->product_id, curdev->path);
172 chipname = ser_hid_chip_find_name_vid_pid(vid, pid);
173 if (!chipname)
174 chipname = "<chip>";
175
176 /*
177 * Prefix port names such that open() calls with this
178 * conn= spec will end up here and contain all details
179 * that are essential for processing.
180 */
181 path = get_hidapi_path_copy(curdev->path);
182 if (!path)
183 continue;
184 name = g_strdup_printf("%s/%s/%s",
185 SER_HID_CONN_PREFIX, chipname, path);
186 g_free(path);
187
188 /*
189 * Print whatever information was available. Construct
190 * the description text from pieces. Absence of fields
191 * is not fatal, we have seen perfectly usable cables
192 * that only had a VID and PID (permissions were not an
193 * issue).
194 */
195 manuf = curdev->manufacturer_string;
196 prod = curdev->product_string;
197 serno = curdev->serial_number;
198 vid = curdev->vendor_id;
199 pid = curdev->product_id;
200 desc = g_string_sized_new(128);
201 g_string_append_printf(desc, "HID");
202 if (manuf)
203 g_string_append_printf(desc, " %ls", manuf);
204 if (prod)
205 g_string_append_printf(desc, " %ls", prod);
206 if (serno)
207 g_string_append_printf(desc, " %ls", serno);
208 if (vid && pid)
209 g_string_append_printf(desc, " %04hx:%04hx", vid, pid);
210 list = append(list, name, desc->str);
211 g_string_free(desc, TRUE);
212 g_free(name);
213 }
214 hid_free_enumeration(devs);
215
216 return list;
217}
218
219/*
220 * The HIDAPI specific find_usb() callback, invoked by common serial.c code.
221 * Enumerate devices for the specified VID:PID pair.
222 * Invoke an "append" callback with 'path' for the device.
223 */
224static GSList *ser_hid_hidapi_find_usb(GSList *list, sr_ser_find_append_t append,
225 uint16_t vendor_id, uint16_t product_id)
226{
227 struct hid_device_info *devs, *curdev;
228 const char *name;
229
230 devs = hid_enumerate(vendor_id, product_id);
231 for (curdev = devs; curdev; curdev = curdev->next) {
232 name = curdev->path;
233 list = append(list, name);
234 }
235 hid_free_enumeration(devs);
236
237 return list;
238}
239
240/* Get the serial number of a device specified by path. */
241static int ser_hid_hidapi_get_serno(const char *path, char *buf, size_t blen)
242{
243 char *usbpath;
244 const char *hidpath;
245 hid_device *dev;
246 wchar_t *serno_wch;
247 int rc;
248
249 if (!path || !*path)
250 return SR_ERR_ARG;
251 usbpath = g_strdup(path);
252 hidpath = extract_hidapi_path(usbpath);
253 dev = hidpath ? hid_open_path(hidpath) : NULL;
254 g_free(usbpath);
255 if (!dev)
256 return SR_ERR_IO;
257
258 serno_wch = g_malloc0(blen * sizeof(*serno_wch));
259 rc = hid_get_serial_number_string(dev, serno_wch, blen - 1);
260 hid_close(dev);
261 if (rc != 0) {
262 g_free(serno_wch);
263 return SR_ERR_IO;
264 }
265
266 snprintf(buf, blen, "%ls", serno_wch);
267 g_free(serno_wch);
268
269 return SR_OK;
270}
271
272/* Get the VID and PID of a device specified by path. */
273static int ser_hid_hidapi_get_vid_pid(const char *path,
274 uint16_t *vid, uint16_t *pid)
275{
276#if 0
277 /*
278 * Bummer! It would have been most reliable to just open the
279 * device by the specified path, and grab its VID:PID. But
280 * there is no way to get these parameters, neither in the
281 * HIDAPI itself, nor when cheating and reaching behind the API
282 * and accessing the libusb handle in dirty ways. :(
283 */
284 hid_device *dev;
285
286 if (!path || !*path)
287 return SR_ERR_ARG;
288 dev = hid_open_path(path);
289 if (!dev)
290 return SR_ERR_IO;
291 if (vid)
292 *vid = dev->vendor_id;
293 if (pid)
294 *pid = dev->product_id;
295 hid_close(dev);
296
297 return SR_OK;
298#else
299 /*
300 * The fallback approach. Enumerate all devices, compare the
301 * enumerated USB path, and grab the VID:PID. Unfortunately the
302 * caller can provide path specs that differ from enumerated
303 * paths yet mean the same (address the same device). This needs
304 * more attention. Though the specific format of the path and
305 * its meaning are said to be OS specific, which is why we may
306 * not assume anything about it...
307 */
308 char *usbpath;
309 const char *hidpath;
310 struct hid_device_info *devs, *dev;
311 int found;
312
313 usbpath = g_strdup(path);
314 hidpath = extract_hidapi_path(usbpath);
315 if (!hidpath) {
316 g_free(usbpath);
317 return SR_ERR_NA;
318 }
319
320 devs = hid_enumerate(0x0000, 0x0000);
321 found = 0;
322 for (dev = devs; dev; dev = dev->next) {
323 if (strcmp(dev->path, hidpath) != 0)
324 continue;
325 if (vid)
326 *vid = dev->vendor_id;
327 if (pid)
328 *pid = dev->product_id;
329 found = 1;
330 break;
331 }
332 hid_free_enumeration(devs);
333 g_free(usbpath);
334
335 return found ? SR_OK : SR_ERR_NA;
336#endif
337}
338
339static int ser_hid_hidapi_open_dev(struct sr_serial_dev_inst *serial)
340{
341 hid_device *hid_dev;
342
343 if (!serial->usb_path || !*serial->usb_path)
344 return SR_ERR_ARG;
345
346 /*
347 * A path is available, assume that either a GUI or a
348 * user has copied what a previous listing has provided.
349 * Or a scan determined a matching device's USB path.
350 */
351 if (!serial->hid_path)
352 serial->hid_path = extract_hidapi_path(serial->usb_path);
353 hid_dev = hid_open_path(serial->hid_path);
354 sr_dbg("DBG: %s(), hid_open_path(\"%s\") => %p", __func__,
355 serial->hid_path, hid_dev);
356 if (!hid_dev) {
357 serial->hid_path = NULL;
358 return SR_ERR_IO;
359 }
360
361 serial->hid_dev = hid_dev;
362 hid_set_nonblocking(hid_dev, 1);
363
364 return SR_OK;
365}
366
367static void ser_hid_hidapi_close_dev(struct sr_serial_dev_inst *serial)
368{
369 if (serial->hid_dev) {
370 hid_close(serial->hid_dev);
371 serial->hid_dev = NULL;
372 serial->hid_path = NULL;
373 }
374 g_slist_free_full(serial->hid_source_args, g_free);
375 serial->hid_source_args = NULL;
376}
377
378struct hidapi_source_args_t {
379 /* Application callback. */
380 sr_receive_data_callback cb;
381 void *cb_data;
382 /* The serial device, to store RX data. */
383 struct sr_serial_dev_inst *serial;
384};
385
386/*
387 * Gets periodically invoked by the glib main loop. "Drives" (checks)
388 * progress of USB communication, and invokes the application's callback
389 * which processes RX data (when some has become available), as well as
390 * handles application level timeouts.
391 */
392static int hidapi_source_cb(int fd, int revents, void *cb_data)
393{
394 struct hidapi_source_args_t *args;
395 uint8_t rx_buf[SER_HID_CHUNK_SIZE];
396 int rc;
397
398 sr_dbg("DBG: %s() fd %d, evt 0x%x, data %p.", __func__, fd, revents, cb_data);
399 args = cb_data;
400
401 /*
402 * Drain receive data which the chip might have pending. This is
403 * "a copy" of the "background part" of ser_hid_read(), without
404 * the timeout support code, and not knowing how much data the
405 * application is expecting.
406 */
407 do {
408 rc = args->serial->hid_chip_funcs->read_bytes(args->serial,
409 rx_buf, sizeof(rx_buf), 0);
410 if (rc > 0) {
411 sr_dbg("DBG: %s() queueing %d bytes.", __func__, rc);
412 ser_hid_mask_databits(args->serial, rx_buf, rc);
413 sr_ser_queue_rx_data(args->serial, rx_buf, rc);
414 }
415 } while (rc > 0);
416
417 /*
418 * When RX data became available (now or earlier), pass this
419 * condition to the application callback. Always periodically
420 * run the application callback, since it handles timeouts and
421 * might carry out other tasks as well like signalling progress.
422 */
423 if (sr_ser_has_queued_data(args->serial))
424 revents |= G_IO_IN;
425 rc = args->cb(fd, revents, args->cb_data);
426 sr_dbg("DBG: %s() rc %d.", __func__, rc);
427
428 return rc;
429}
430
431#define WITH_MAXIMUM_TIMEOUT_VALUE 10
432static int ser_hid_hidapi_setup_source_add(struct sr_session *session,
433 struct sr_serial_dev_inst *serial, int events, int timeout,
434 sr_receive_data_callback cb, void *cb_data)
435{
436 struct hidapi_source_args_t *args;
437 int rc;
438
439 sr_dbg("DBG: %s() evt 0x%x, to %d.", __func__, events, timeout);
440 (void)events;
441
442 /* Optionally enforce a minimum poll period. */
443 if (WITH_MAXIMUM_TIMEOUT_VALUE && timeout > WITH_MAXIMUM_TIMEOUT_VALUE)
444 timeout = WITH_MAXIMUM_TIMEOUT_VALUE;
445
446 /* Allocate status container for background data reception. */
447 args = g_malloc0(sizeof(*args));
448 args->cb = cb;
449 args->cb_data = cb_data;
450 args->serial = serial;
451
452 /*
453 * Have a periodic timer installed. Register the allocated block
454 * with the serial device, since the GSource's finalizer won't
455 * free the memory, and we haven't bothered to create a custom
456 * HIDAPI specific GSource.
457 */
458 rc = sr_session_source_add(session, -1, events, timeout,
459 hidapi_source_cb, args);
460 sr_dbg("DBG: %s() added, rc %d.", __func__, rc);
461 if (rc != SR_OK) {
462 g_free(args);
463 return rc;
464 }
465 serial->hid_source_args = g_slist_append(serial->hid_source_args, args);
466
467 return SR_OK;
468}
469
470static int ser_hid_hidapi_setup_source_remove(struct sr_session *session,
471 struct sr_serial_dev_inst *serial)
472{
473 (void)serial;
474
475 sr_dbg("DBG: %s().", __func__);
476 (void)sr_session_source_remove(session, -1);
477 /*
478 * Release callback args here already? Can there be more than
479 * one source registered at any time, given that we pass fd -1
480 * which is used as the key for the session?
481 */
482
483 return SR_OK;
484}
485
486SR_PRIV int ser_hid_hidapi_get_report(struct sr_serial_dev_inst *serial,
487 uint8_t *data, size_t len)
488{
489 int rc;
490
491 rc = hid_get_feature_report(serial->hid_dev, data, len);
492 if (rc < 0)
493 return SR_ERR_IO;
494
495 return rc;
496}
497
498SR_PRIV int ser_hid_hidapi_set_report(struct sr_serial_dev_inst *serial,
499 const uint8_t *data, size_t len)
500{
501 int rc;
502 const wchar_t *err_text;
503
504 rc = hid_send_feature_report(serial->hid_dev, data, len);
505 if (rc < 0) {
506 err_text = hid_error(serial->hid_dev);
507 sr_dbg("%s() hidapi error: %ls", __func__, err_text);
508 return SR_ERR_IO;
509 }
510
511 return rc;
512}
513
514SR_PRIV int ser_hid_hidapi_get_data(struct sr_serial_dev_inst *serial,
515 uint8_t ep, uint8_t *data, size_t len, int timeout)
516{
517 int rc;
518
519 (void)ep;
520
521 if (timeout)
522 rc = hid_read_timeout(serial->hid_dev, data, len, timeout);
523 else
524 rc = hid_read(serial->hid_dev, data, len);
525 if (rc < 0)
526 return SR_ERR_IO;
527 if (rc == 0)
528 return 0;
529
530 return rc;
531}
532
533SR_PRIV int ser_hid_hidapi_set_data(struct sr_serial_dev_inst *serial,
534 uint8_t ep, const uint8_t *data, size_t len, int timeout)
535{
536 int rc;
537
538 (void)ep;
539 (void)timeout;
540
541 rc = hid_write(serial->hid_dev, data, len);
542 if (rc < 0)
543 return SR_ERR_IO;
544
545 return rc;
546}
547
548/* }}} */
549/* {{{ support for serial-over-HID chips */
550
551static struct ser_hid_chip_functions **chips[SER_HID_CHIP_LAST] = {
552 [SER_HID_CHIP_UNKNOWN] = NULL,
553};
554
555static struct ser_hid_chip_functions *get_hid_chip_funcs(enum ser_hid_chip_t chip)
556{
557 struct ser_hid_chip_functions *funcs;
558
559 if (chip >= ARRAY_SIZE(chips))
560 return NULL;
561 if (!chips[chip])
562 return NULL;
563 funcs = *chips[chip];
564 if (!funcs)
565 return NULL;
566
567 return funcs;
568}
569
570static int ser_hid_setup_funcs(struct sr_serial_dev_inst *serial)
571{
572
573 if (!serial)
574 return -1;
575
576 if (serial->hid_chip && !serial->hid_chip_funcs) {
577 serial->hid_chip_funcs = get_hid_chip_funcs(serial->hid_chip);
578 if (!serial->hid_chip_funcs)
579 return -1;
580 }
581
582 return 0;
583}
584
585/*
586 * Takes a pointer to the chip spec with potentially trailing data,
587 * returns the chip index and advances the spec pointer upon match,
588 * returns SER_HID_CHIP_UNKNOWN upon mismatch.
589 */
590static enum ser_hid_chip_t ser_hid_chip_find_enum(char **spec_p)
591{
592 gchar *spec;
593 enum ser_hid_chip_t idx;
594 struct ser_hid_chip_functions *desc;
595
596 if (!spec_p || !*spec_p)
597 return SER_HID_CHIP_UNKNOWN;
598 spec = *spec_p;
599 if (!*spec)
600 return SER_HID_CHIP_UNKNOWN;
601 for (idx = 0; idx < SER_HID_CHIP_LAST; idx++) {
602 desc = get_hid_chip_funcs(idx);
603 if (!desc)
604 continue;
605 if (!desc->chipname)
606 continue;
607 if (!g_str_has_prefix(spec, desc->chipname))
608 continue;
609 spec += strlen(desc->chipname);
610 *spec_p = spec;
611 return idx;
612 }
613
614 return SER_HID_CHIP_UNKNOWN;
615}
616
617/* See if we can find a chip name for a VID:PID spec. */
618SR_PRIV const char *ser_hid_chip_find_name_vid_pid(uint16_t vid, uint16_t pid)
619{
620 size_t chip_idx;
621 struct ser_hid_chip_functions *desc;
622 const struct vid_pid_item *vid_pids;
623
624 for (chip_idx = 0; chip_idx < SER_HID_CHIP_LAST; chip_idx++) {
625 desc = get_hid_chip_funcs(chip_idx);
626 if (!desc)
627 continue;
628 if (!desc->chipname)
629 continue;
630 vid_pids = desc->vid_pid_items;
631 if (!vid_pids)
632 continue;
633 while (vid_pids->vid) {
634 if (vid_pids->vid == vid && vid_pids->pid == pid) {
635 return desc->chipname;
636 }
637 vid_pids++;
638 }
639 }
640
641 return NULL;
642}
643
644static const char *ser_hid_chip_get_text(enum ser_hid_chip_t idx)
645{
646 struct ser_hid_chip_functions *desc;
647
648 desc = get_hid_chip_funcs(idx);
649 if (!desc)
650 return NULL;
651
652 return desc->chipdesc;
653}
654
655/**
656 * See if a text string is a valid USB path for a HID device.
657 * @param[in] serial The serial port that is about to get opened.
658 * @param[in] path The (assumed) USB path specification.
659 * @return SR_OK upon success, SR_ERR* upon failure.
660 */
661static int try_open_path(struct sr_serial_dev_inst *serial, const char *path)
662{
663 int rc;
664
665 serial->usb_path = g_strdup(path);
666 rc = ser_hid_hidapi_open_dev(serial);
667 ser_hid_hidapi_close_dev(serial);
668 g_free(serial->usb_path);
669 serial->usb_path = NULL;
670
671 return rc;
672}
673
674/**
675 * Parse conn= specs for serial over HID communication.
676 *
677 * @param[in] serial The serial port that is about to get opened.
678 * @param[in] spec The caller provided conn= specification.
679 * @param[out] chip_ref Pointer to a chip type (enum).
680 * @param[out] path_ref Pointer to a USB path (text string).
681 * @param[out] serno_ref Pointer to a serial number (text string).
682 *
683 * @return 0 upon success, non-zero upon failure. Fills the *_ref output
684 * values.
685 *
686 * @internal
687 *
688 * Summary of parsing rules as they are implemented:
689 * - Insist on the "hid" prefix. Accept "hid" alone without any other
690 * additional field.
691 * - The first field that follows can be a chip spec, yet is optional.
692 * - Any other field is assumed to be either a USB path or a serial
693 * number. There is no point in specifying both of these, as either
694 * of them uniquely identifies a device.
695 *
696 * Supported formats resulting from these rules:
697 * hid[/<chip>]
698 * hid[/<chip>]/usb=<bus>.<dev>[.<if>]
699 * hid[/<chip>]/raw=<path> (may contain slashes!)
700 * hid[/<chip>]/sn=serno
701 *
702 * This routine just parses the conn= spec, which either was provided by
703 * a user, or may reflect (cite) an item of a previously gathered listing
704 * (clipboard provided by CLI clients, or selected from a GUI form).
705 * Another routine will fill in the blanks, and do the cable selection
706 * when a filter was specified.
707 *
708 * Users will want to use short forms when they need to come up with the
709 * specs by themselves. The "verbose" or seemingly redundant forms (chip
710 * _and_ path/serno spec) are useful when the cable uses non-standard or
711 * not-yet-supported VID:PID items when automatic chip detection fails.
712 */
713static int ser_hid_parse_conn_spec(
714 struct sr_serial_dev_inst *serial, const char *spec,
715 enum ser_hid_chip_t *chip_ref, char **path_ref, char **serno_ref)
716{
717 const char *p;
718 enum ser_hid_chip_t chip;
719 char *path, *serno;
720 int rc;
721
722 if (chip_ref)
723 *chip_ref = SER_HID_CHIP_UNKNOWN;
724 if (path_ref)
725 *path_ref = NULL;
726 if (serno_ref)
727 *serno_ref = NULL;
728 chip = SER_HID_CHIP_UNKNOWN;
729 path = serno = NULL;
730
731 if (!serial || !spec || !*spec)
732 return SR_ERR_ARG;
733 sr_dbg("DBG: %s(), input spec: %s", __func__, spec);
734 p = spec;
735
736 /* The "hid" prefix is mandatory. */
737 if (!g_str_has_prefix(p, SER_HID_CONN_PREFIX)) {
738 sr_dbg("DBG: %s(), not a HID port", __func__);
739 return SR_ERR_ARG;
740 }
741 p += strlen(SER_HID_CONN_PREFIX);
742
743 /*
744 * Check for prefixed fields, assume chip type spec otherwise.
745 * Paths and serial numbers "are greedy" (span to the end of
746 * the input spec). Chip types are optional, and cannot repeat
747 * multiple times.
748 */
749 while (*p) {
750 if (*p == '/')
751 p++;
752 if (!*p)
753 break;
754 if (g_str_has_prefix(p, SER_HID_USB_PREFIX)) {
755 rc = try_open_path(serial, p);
756 sr_dbg("DBG: %s(), open usb path %s => rc %d", __func__, p, rc);
757 if (rc != SR_OK)
758 return rc;
759 path = g_strdup(p);
760 p += strlen(p);
761 } else if (g_str_has_prefix(p, SER_HID_RAW_PREFIX)) {
762 rc = try_open_path(serial, p);
763 sr_dbg("DBG: %s(), open raw path %s => rc %d", __func__, p, rc);
764 if (rc != SR_OK)
765 return rc;
766 path = g_strdup(p);
767 p += strlen(p);
768 } else if (g_str_has_prefix(p, SER_HID_SNR_PREFIX)) {
769 p += strlen(SER_HID_SNR_PREFIX);
770 sr_dbg("DBG: %s(), snr %s", __func__, p);
771 serno = g_strdup(p);
772 p += strlen(p);
773 } else if (!chip) {
774 char *copy, *endptr;
775 const char *name;
776 copy = g_strdup(p);
777 endptr = copy;
778 chip = ser_hid_chip_find_enum(&endptr);
779 sr_dbg("DBG: %s(), chip search, %s => %u", __func__, p, chip);
780 if (!chip) {
781 g_free(copy);
782 return SR_ERR_ARG;
783 }
784 p += endptr - copy;
785 g_free(copy);
786 name = ser_hid_chip_get_text(chip);
787 sr_dbg("DBG: %s(), chip %s", __func__, name);
788 } else {
789 sr_err("unsupported conn= spec %s, error at %s", spec, p);
790 return SR_ERR_ARG;
791 }
792 if (*p == '/')
793 p++;
794 if (path || serno)
795 break;
796 }
797
798 sr_dbg("DBG: %s() done, chip %d, path %s, serno %s", __func__, chip, path, serno);
799 if (chip_ref)
800 *chip_ref = chip;
801 if (path_ref && path)
802 *path_ref = path;
803 if (serno_ref && serno)
804 *serno_ref = serno;
805
806 return SR_OK;
807}
808
809/* Get and compare serial number. Boolean return value. */
810static int check_serno(const char *path, const char *serno_want)
811{
812 char *usb_path;
813 const char *hid_path;
814 char serno_got[128];
815 int rc;
816
817 sr_dbg("DBG: %s(\"%s\", \"%s\")", __func__, path, serno_want);
818
819 usb_path = g_strdup(path);
820 hid_path = extract_hidapi_path(usb_path);
821 rc = ser_hid_hidapi_get_serno(hid_path, serno_got, sizeof(serno_got));
822 sr_dbg("DBG: %s(), usb %s, hidapi %s => rc %d", __func__, usb_path, hid_path, rc);
823 g_free(usb_path);
824 if (rc) {
825 sr_dbg("DBG: %s(), could not get serial number", __func__);
826 return 0;
827 }
828 sr_dbg("DBG: %s(), got serno \"%s\"", __func__, serno_got);
829
830 rc = strcmp(serno_got, serno_want) == 0;
831 sr_dbg("DBG: %s(), return %d", __func__, rc);
832
833 return rc;
834}
835
836static GSList *append_find(GSList *devs, const char *path)
837{
838 char *copy;
839
840 if (!path || !*path)
841 return devs;
842
843 copy = g_strdup(path);
844 devs = g_slist_append(devs, copy);
845
846 return devs;
847}
848
849static GSList *list_paths_for_vids_pids(const struct vid_pid_item *vid_pids)
850{
851 GSList *list;
852 size_t idx;
853 uint16_t vid, pid;
854
855 list = NULL;
856 for (idx = 0; /* EMPTY */; idx++) {
857 if (!vid_pids) {
858 vid = pid = 0;
859 } else if (!vid_pids[idx].vid) {
860 break;
861 } else {
862 vid = vid_pids[idx].vid;
863 pid = vid_pids[idx].pid;
864 }
865 sr_dbg("DBG: %s(), searching VID:PID %04hx:%04hx",
866 __func__, vid, pid);
867 list = ser_hid_hidapi_find_usb(list, append_find, vid, pid);
868 if (!vid_pids)
869 break;
870 }
871
872 return list;
873}
874
875/**
876 * Search for a matching USB device for HID communication.
877 *
878 * @param[inout] chip The HID chip type (enum).
879 * @param[inout] usbpath The USB path for the device (string).
880 * @param[in] serno The serial number to search for.
881 *
882 * @retval SR_OK upon success
883 * @retval SR_ERR_* upon failure.
884 *
885 * @internal
886 *
887 * This routine fills in blanks which the conn= spec parser left open.
888 * When not specified yet, the HID chip type gets determined. When a
889 * serial number was specified, then search the corresponding device.
890 * Upon completion, the chip type and USB path for the device shall be
891 * known, as these are essential for subsequent operation.
892 */
893static int ser_hid_chip_search(enum ser_hid_chip_t *chip_ref,
894 char **path_ref, const char *serno)
895{
896 enum ser_hid_chip_t chip;
897 char *path;
898 int have_chip, have_path, have_serno;
899 struct ser_hid_chip_functions *chip_funcs;
900 int rc;
901 int serno_matched;
902 uint16_t vid, pid;
903 const char *name;
904 const struct vid_pid_item *vid_pids;
905 GSList *list, *matched, *matched2, *tmplist;
906
907 if (!chip_ref)
908 return SR_ERR_ARG;
909 chip = *chip_ref;
910 if (!path_ref)
911 return SR_ERR_ARG;
912 path = *path_ref;
913 sr_dbg("DBG: %s() enter, chip %d, path %s, serno %s", __func__,
914 chip, path, serno ? serno : "<none>");
915
916 /*
917 * Simplify the more complex conditions somewhat by assigning
918 * to local variables. Handle the easiest conditions first.
919 * - Either path or serial number can be specified, but not both
920 * at the same time.
921 * - When a USB path is given, immediately see which HID chip
922 * the device has, without the need for enumeration.
923 * - When a serial number is given, enumerate the devices and
924 * search for that number. Either enumerate all devices of the
925 * specified HID chip type (try the VID:PID pairs that we are
926 * aware of), or try all HID devices for unknown chip types.
927 * Not finding the serial number is fatal.
928 * - When no path was found yet, enumerate the devices and pick
929 * one of them. Try known VID:PID pairs for a HID chip, or all
930 * devices for unknown chips. Make sure to pick a device of a
931 * supported chip type if the chip was not specified.
932 * - Determine the chip type if not yet known. There should be
933 * a USB path by now, determined in one of the above blocks.
934 */
935 have_chip = (chip != SER_HID_CHIP_UNKNOWN) ? 1 : 0;
936 have_path = (path && *path) ? 1 : 0;
937 have_serno = (serno && *serno) ? 1 : 0;
938 sr_dbg("DBG: %s(), have chip %d, path %d, serno %d", __func__,
939 have_chip, have_path, have_serno);
940 if (have_path && have_serno) {
941 sr_err("Unsupported combination of USB path and serno");
942 return SR_ERR_ARG;
943 }
944 chip_funcs = have_chip ? get_hid_chip_funcs(chip) : NULL;
945 if (have_chip && !chip_funcs)
946 return SR_ERR_NA;
947 if (have_chip && !chip_funcs->vid_pid_items)
948 return SR_ERR_NA;
949 if (have_path && !have_chip) {
950 sr_dbg("DBG: %s(), searching chip for path %s", __func__, path);
951 vid = pid = 0;
952 rc = ser_hid_hidapi_get_vid_pid(path, &vid, &pid);
953 sr_dbg("DBG: %s(), rc %d, VID:PID %04x:%04x", __func__, rc, vid, pid);
954 if (rc != SR_OK)
955 return rc;
956 name = ser_hid_chip_find_name_vid_pid(vid, pid);
957 sr_dbg("DBG: %s(), name %s", __func__, name);
958 if (!name || !*name)
959 return SR_ERR_NA;
960 chip = ser_hid_chip_find_enum((char **)&name);
961 sr_dbg("DBG: %s(), chip %d", __func__, chip);
962 if (chip == SER_HID_CHIP_UNKNOWN)
963 return SR_ERR_NA;
964 have_chip = 1;
965 }
966 if (have_serno) {
967 sr_dbg("DBG: %s(), searching path for serno %s", __func__, serno);
968 vid_pids = have_chip ? chip_funcs->vid_pid_items : NULL;
969 list = list_paths_for_vids_pids(vid_pids);
970 sr_dbg("DBG: %s(), vid/pid list for chip type %p", __func__, list);
971 if (!list)
972 return SR_ERR_NA;
973 matched = NULL;
974 for (tmplist = list; tmplist; tmplist = tmplist->next) {
975 path = get_hidapi_path_copy(tmplist->data);
976 sr_dbg("DBG: %s(), checking %s", __func__, path);
977 serno_matched = check_serno(path, serno);
978 g_free(path);
979 if (!serno_matched)
980 continue;
981 matched = tmplist;
982 break;
983 }
984 if (!matched)
985 return SR_ERR_NA;
986 path = g_strdup(matched->data);
987 sr_dbg("DBG: %s(), match, path %s", __func__, path);
988 have_path = 1;
989 g_slist_free_full(list, g_free);
990 }
991 if (!have_path) {
992 sr_dbg("DBG: %s(), searching path, chip %d", __func__, chip);
993 vid_pids = have_chip ? chip_funcs->vid_pid_items : NULL;
994 list = list_paths_for_vids_pids(vid_pids);
995 if (!list)
996 return SR_ERR_NA;
997 for (tmplist = list; tmplist; tmplist = tmplist->next) {
998 path = tmplist->data;
999 sr_dbg("DBG: %s(), path %s", __func__, path);
1000 }
1001 matched = matched2 = NULL;
1002 if (have_chip) {
1003 /* List already only contains specified chip. */
1004 matched = list;
1005 path = matched->data;
1006 sr_dbg("DBG: %s(), match 1 %s", __func__, path);
1007 matched2 = list->next;
1008 if (matched2) {
1009 path = matched2->data;
1010 sr_dbg("DBG: %s(), match 2 %s", __func__, path);
1011 }
1012 }
1013 /* Works for lists with one or multiple chips. Saves indentation. */
1014 for (tmplist = list; tmplist; tmplist = tmplist->next) {
1015 if (have_chip)
1016 break;
1017 path = tmplist->data;
1018 rc = ser_hid_hidapi_get_vid_pid(path, &vid, &pid);
1019 if (rc || !ser_hid_chip_find_name_vid_pid(vid, pid))
1020 continue;
1021 if (!matched) {
1022 matched = tmplist;
1023 sr_dbg("DBG: %s(), match 1 %s", __func__, path);
1024 continue;
1025 }
1026 if (!matched2) {
1027 matched2 = tmplist;
1028 sr_dbg("DBG: %s(), match 2 %s", __func__, path);
1029 break;
1030 }
1031 }
1032 if (!matched) {
1033 g_slist_free_full(list, g_free);
1034 return SR_ERR_NA;
1035 }
1036 /*
1037 * TODO Optionally fail harder, expect users to provide
1038 * unambiguous cable specs.
1039 */
1040 if (matched2)
1041 sr_info("More than one cable matches, random pick.");
1042 path = get_hidapi_path_copy(matched->data);
1043 sr_dbg("DBG: %s(), match, path %s", __func__, path);
1044 have_path = 1;
1045 g_slist_free_full(list, g_free);
1046 }
1047 if (have_path && !have_chip) {
1048 sr_dbg("DBG: %s(), searching chip for path %s", __func__, path);
1049 vid = pid = 0;
1050 rc = ser_hid_hidapi_get_vid_pid(path, &vid, &pid);
1051 sr_dbg("DBG: %s(), rc %d, VID:PID %04x:%04x", __func__, rc, vid, pid);
1052 if (rc != SR_OK)
1053 return rc;
1054 name = ser_hid_chip_find_name_vid_pid(vid, pid);
1055 sr_dbg("DBG: %s(), name %s", __func__, name);
1056 if (!name || !*name)
1057 return SR_ERR_NA;
1058 chip = ser_hid_chip_find_enum((char **)&name);
1059 sr_dbg("DBG: %s(), chip %d", __func__, chip);
1060 if (chip == SER_HID_CHIP_UNKNOWN)
1061 return SR_ERR_NA;
1062 have_chip = 1;
1063 }
1064
1065 sr_dbg("DBG: %s() leave, chip %d, path %s", __func__, chip, path);
1066 if (chip_ref)
1067 *chip_ref = chip;
1068 if (path_ref)
1069 *path_ref = path;
1070
1071 return SR_OK;
1072}
1073
1074/* }}} */
1075/* {{{ transport methods called by the common serial.c code */
1076
1077/* See if a serial port's name refers to an HID type. */
1078SR_PRIV int ser_name_is_hid(struct sr_serial_dev_inst *serial)
1079{
1080 size_t off;
1081 char sep;
1082
1083 if (!serial)
1084 return 0;
1085 if (!serial->port || !*serial->port)
1086 return 0;
1087
1088 /* Accept either "hid" alone, or "hid/" as a prefix. */
1089 if (!g_str_has_prefix(serial->port, SER_HID_CONN_PREFIX))
1090 return 0;
1091 off = strlen(SER_HID_CONN_PREFIX);
1092 sep = serial->port[off];
1093 if (sep != '\0' && sep != '/')
1094 return 0;
1095
1096 return 1;
1097}
1098
1099static int ser_hid_open(struct sr_serial_dev_inst *serial, int flags)
1100{
1101 enum ser_hid_chip_t chip;
1102 char *usbpath, *serno;
1103 int rc;
1104
1105 (void)flags;
1106
1107 if (ser_hid_setup_funcs(serial) != 0) {
1108 sr_err("Cannot determine HID communication library.");
1109 return SR_ERR_NA;
1110 }
1111
1112 rc = ser_hid_parse_conn_spec(serial, serial->port,
1113 &chip, &usbpath, &serno);
1114 if (rc != SR_OK)
1115 return SR_ERR_ARG;
1116
1117 /*
1118 * When a serial number was specified, or when the chip type or
1119 * the USB path were not specified, do a search to determine the
1120 * device's USB path.
1121 */
1122 if (!chip || !usbpath || serno) {
1123 sr_dbg("DBG: %s(), searching ...", __func__);
1124 rc = ser_hid_chip_search(&chip, &usbpath, serno);
1125 if (rc != 0)
1126 return SR_ERR_NA;
1127 }
1128
1129 /*
1130 * Open the HID device. Only store chip type and device handle
1131 * when open completes successfully.
1132 */
1133 serial->hid_chip = chip;
1134 if (ser_hid_setup_funcs(serial) != 0) {
1135 sr_err("Cannot determine HID chip specific routines.");
1136 return SR_ERR_NA;
1137 }
1138 if (usbpath && *usbpath)
1139 serial->usb_path = usbpath;
1140 if (serno && *serno)
1141 serial->usb_serno = serno;
1142
1143 rc = ser_hid_hidapi_open_dev(serial);
1144 if (rc) {
1145 sr_err("Failed to open HID device.");
1146 serial->hid_chip = 0;
1147 g_free(serial->usb_path);
1148 serial->usb_path = NULL;
1149 g_free(serial->usb_serno);
1150 serial->usb_serno = NULL;
1151 return SR_ERR_IO;
1152 }
1153 sr_dbg("DBG: %s() done, OK", __func__);
1154
1155 if (!serial->rcv_buffer)
1156 serial->rcv_buffer = g_string_sized_new(SER_HID_CHUNK_SIZE);
1157
1158 return SR_OK;
1159}
1160
1161static int ser_hid_close(struct sr_serial_dev_inst *serial)
1162{
1163 sr_dbg("DBG: %s()", __func__);
1164 ser_hid_hidapi_close_dev(serial);
1165
1166 return SR_OK;
1167}
1168
1169static int ser_hid_set_params(struct sr_serial_dev_inst *serial,
1170 int baudrate, int bits, int parity, int stopbits,
1171 int flowcontrol, int rts, int dtr)
1172{
1173 int rc;
1174
1175 sr_dbg("DBG: %s() enter", __func__);
1176 if (ser_hid_setup_funcs(serial) != 0)
1177 return SR_ERR_NA;
1178 sr_dbg("DBG: %s() chip funcs set", __func__);
1179 if (!serial->hid_chip_funcs || !serial->hid_chip_funcs->set_params)
1180 return SR_ERR_NA;
1181 sr_dbg("DBG: %s() set params avail", __func__);
1182 rc = serial->hid_chip_funcs->set_params(serial,
1183 baudrate, bits, parity, stopbits,
1184 flowcontrol, rts, dtr);
1185 sr_dbg("DBG: %s() set params rc %d", __func__, rc);
1186
1187 return rc;
1188}
1189
1190static int ser_hid_setup_source_add(struct sr_session *session,
1191 struct sr_serial_dev_inst *serial, int events, int timeout,
1192 sr_receive_data_callback cb, void *cb_data)
1193{
1194 return ser_hid_hidapi_setup_source_add(session, serial,
1195 events, timeout, cb, cb_data);
1196}
1197
1198static int ser_hid_setup_source_remove(struct sr_session *session,
1199 struct sr_serial_dev_inst *serial)
1200{
1201 return ser_hid_hidapi_setup_source_remove(session, serial);
1202}
1203
1204static GSList *ser_hid_list(GSList *list, sr_ser_list_append_t append)
1205{
1206 return ser_hid_hidapi_list(list, append);
1207}
1208
1209static GSList *ser_hid_find_usb(GSList *list, sr_ser_find_append_t append,
1210 uint16_t vendor_id, uint16_t product_id)
1211{
1212 return ser_hid_hidapi_find_usb(list, append, vendor_id, product_id);
1213}
1214
1215static int ser_hid_flush(struct sr_serial_dev_inst *serial)
1216{
1217 if (!serial->hid_chip_funcs || !serial->hid_chip_funcs->flush)
1218 return SR_ERR_NA;
1219
1220 return serial->hid_chip_funcs->flush(serial);
1221}
1222
1223static int ser_hid_drain(struct sr_serial_dev_inst *serial)
1224{
1225 if (!serial->hid_chip_funcs || !serial->hid_chip_funcs->drain)
1226 return SR_ERR_NA;
1227
1228 return serial->hid_chip_funcs->drain(serial);
1229}
1230
1231static int ser_hid_write(struct sr_serial_dev_inst *serial,
1232 const void *buf, size_t count,
1233 int nonblocking, unsigned int timeout_ms)
1234{
1235 int total, max_chunk, chunk_len;
1236 int rc;
1237
1238 if (!serial->hid_chip_funcs || !serial->hid_chip_funcs->write_bytes)
1239 return SR_ERR_NA;
1240 if (!serial->hid_chip_funcs->max_bytes_per_request)
1241 return SR_ERR_NA;
1242
1243 sr_dbg("DBG: %s() shall send %zu bytes TX data.", __func__, count);
1244 total = 0;
1245 max_chunk = serial->hid_chip_funcs->max_bytes_per_request;
1246 while (count > 0) {
1247 chunk_len = count;
1248 if (max_chunk && chunk_len > max_chunk)
1249 chunk_len = max_chunk;
1250 rc = serial->hid_chip_funcs->write_bytes(serial, buf, chunk_len);
1251 if (rc < 0) {
1252 sr_err("Error sending transmit data to HID device.");
1253 return total;
1254 }
1255 if (rc != chunk_len) {
1256 sr_warn("Short transmission to HID device (%d/%d bytes)?",
1257 rc, chunk_len);
1258 return total;
1259 }
1260 buf += chunk_len;
1261 count -= chunk_len;
1262 total += chunk_len;
1263 /* TODO
1264 * Need we wait here? For data to drain through the slow
1265 * UART. Not all UART-over-HID chips will have FIFOs.
1266 */
1267 if (!nonblocking) {
1268 (void)timeout_ms;
1269 /* TODO */
1270 }
1271 }
1272
1273 return total;
1274}
1275
1276static int ser_hid_read(struct sr_serial_dev_inst *serial,
1277 void *buf, size_t count,
1278 int nonblocking, unsigned int timeout_ms)
1279{
1280 gint64 deadline_us, now_us;
1281 uint8_t buffer[SER_HID_CHUNK_SIZE];
1282 int rc;
1283 unsigned int got;
1284
1285 sr_dbg("DBG: %s() count %zd, block %d, to %u", __func__,
1286 count, !nonblocking, timeout_ms);
1287
1288 if (!serial->hid_chip_funcs || !serial->hid_chip_funcs->read_bytes)
1289 return SR_ERR_NA;
1290 if (!serial->hid_chip_funcs->max_bytes_per_request)
1291 return SR_ERR_NA;
1292
1293 /*
1294 * Immediately satisfy the caller's request from the RX buffer
1295 * if the requested amount of data is available already.
1296 */
1297 if (sr_ser_has_queued_data(serial) >= count) {
1298 rc = sr_ser_unqueue_rx_data(serial, buf, count);
1299 return rc;
1300 }
1301
1302 /*
1303 * When a timeout was specified, then determine the deadline
1304 * where to stop reception.
1305 */
1306 deadline_us = 0;
1307 now_us = 0; /* Silence a (false) compiler warning. */
1308 if (timeout_ms) {
1309 now_us = g_get_monotonic_time();
1310 deadline_us = now_us + timeout_ms * 1000;
1311 }
1312
1313 /*
1314 * Keep receiving from the port until the caller's requested
1315 * amount of data has become available, or the timeout has
1316 * expired. In the absence of a timeout, stop reading when an
1317 * attempt no longer yields receive data.
1318 *
1319 * This implementation assumes that applications will call the
1320 * read routine often enough, or that reception continues in
1321 * background, such that data is not lost and hardware and
1322 * software buffers won't overrun.
1323 */
1324 while (TRUE) {
1325 /*
1326 * Determine the timeout (in milliseconds) for this
1327 * iteration. The 'now_us' timestamp was initially
1328 * determined above, and gets updated at the bottom of
1329 * the loop.
1330 */
1331 if (deadline_us) {
1332 timeout_ms = (deadline_us - now_us) / 1000;
1333 if (!timeout_ms)
1334 timeout_ms = 1;
1335 } else if (nonblocking) {
1336 timeout_ms = 10;
1337 } else {
1338 timeout_ms = 0;
1339 }
1340
1341 /*
1342 * Check the HID transport for the availability of more
1343 * receive data.
1344 */
1345 rc = serial->hid_chip_funcs->read_bytes(serial,
1346 buffer, sizeof(buffer), timeout_ms);
1347 if (rc < 0) {
1348 sr_dbg("DBG: %s() read error %d.", __func__, rc);
1349 return SR_ERR;
1350 }
1351 if (rc) {
1352 sr_dbg("DBG: %s() queueing %d bytes.", __func__, rc);
1353 ser_hid_mask_databits(serial, buffer, rc);
1354 sr_ser_queue_rx_data(serial, buffer, rc);
1355 }
1356 got = sr_ser_has_queued_data(serial);
1357
1358 /*
1359 * Stop reading when the requested amount is available,
1360 * or when the timeout has expired.
1361 *
1362 * TODO Consider whether grabbing all RX data is more
1363 * desirable. Implementing this approach requires a cheap
1364 * check for the availability of more data on the USB level.
1365 */
1366 if (got >= count)
1367 break;
1368 if (nonblocking && !rc)
1369 break;
1370 if (deadline_us) {
1371 now_us = g_get_monotonic_time();
1372 if (now_us >= deadline_us) {
1373 sr_dbg("DBG: %s() read loop timeout.", __func__);
1374 break;
1375 }
1376 }
1377 }
1378
1379 /*
1380 * Satisfy the caller's demand for receive data from previously
1381 * queued incoming data.
1382 */
1383 if (got > count)
1384 got = count;
1385 sr_dbg("DBG: %s() passing %d bytes.", __func__, got);
1386 rc = sr_ser_unqueue_rx_data(serial, buf, count);
1387
1388 return rc;
1389}
1390
1391static struct ser_lib_functions serlib_hid = {
1392 .open = ser_hid_open,
1393 .close = ser_hid_close,
1394 .flush = ser_hid_flush,
1395 .drain = ser_hid_drain,
1396 .write = ser_hid_write,
1397 .read = ser_hid_read,
1398 .set_params = ser_hid_set_params,
1399 .setup_source_add = ser_hid_setup_source_add,
1400 .setup_source_remove = ser_hid_setup_source_remove,
1401 .list = ser_hid_list,
1402 .find_usb = ser_hid_find_usb,
1403 .get_frame_format = NULL,
1404};
1405SR_PRIV struct ser_lib_functions *ser_lib_funcs_hid = &serlib_hid;
1406
1407/* }}} */
1408#else
1409
4417074c
GS
1410SR_PRIV int ser_name_is_hid(struct sr_serial_dev_inst *serial)
1411{
1412 (void)serial;
1413
1414 return 0;
1415}
1416
1417SR_PRIV struct ser_lib_functions *ser_lib_funcs_hid = NULL;
edec0436
GS
1418
1419#endif
1420#endif
1421/** @} */