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1/*
2 * This file is part of the libsigrok project.
3 *
4 * Copyright (C) 2013 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#ifndef LIBSIGROK_LIBSIGROK_INTERNAL_H
21#define LIBSIGROK_LIBSIGROK_INTERNAL_H
22
23#include "config.h"
24
25#include <glib.h>
26#ifdef HAVE_LIBHIDAPI
27#include <hidapi.h>
28#endif
29#ifdef HAVE_LIBSERIALPORT
30#include <libserialport.h>
31#endif
32#ifdef HAVE_LIBUSB_1_0
33#include <libusb.h>
34#endif
35#ifdef HAVE_LIBFTDI
36#include <ftdi.h>
37#endif
38#include <stdarg.h>
39#include <stdint.h>
40#include <stdio.h>
41#include <stdlib.h>
42
43struct zip;
44struct zip_stat;
45
46/**
47 * @file
48 *
49 * libsigrok private header file, only to be used internally.
50 */
51
52/*--- Macros ----------------------------------------------------------------*/
53
54#ifndef ARRAY_SIZE
55#define ARRAY_SIZE(a) (sizeof(a) / sizeof((a)[0]))
56#endif
57
58#ifndef ARRAY_AND_SIZE
59#define ARRAY_AND_SIZE(a) (a), ARRAY_SIZE(a)
60#endif
61
62#ifndef G_SOURCE_FUNC
63#define G_SOURCE_FUNC(f) ((GSourceFunc) (void (*)(void)) (f)) /* Since 2.58. */
64#endif
65
66#define SR_RECEIVE_DATA_CALLBACK(f) \
67 ((sr_receive_data_callback) (void (*)(void)) (f))
68
69/**
70 * Read a 8 bits unsigned integer out of memory.
71 * @param x a pointer to the input memory
72 * @return the corresponding unsigned integer
73 */
74static inline uint8_t read_u8(const uint8_t *p)
75{
76 return p[0];
77}
78#define R8(x) read_u8((const uint8_t *)(x))
79
80/**
81 * Read an 8 bits signed integer out of memory.
82 * @param x a pointer to the input memory
83 * @return the corresponding signed integer
84 */
85static inline int8_t read_i8(const uint8_t *p)
86{
87 return (int8_t)p[0];
88}
89
90/**
91 * Read a 16 bits big endian unsigned integer out of memory.
92 * @param x a pointer to the input memory
93 * @return the corresponding unsigned integer
94 */
95static inline uint16_t read_u16be(const uint8_t *p)
96{
97 uint16_t u;
98
99 u = 0;
100 u <<= 8; u |= p[0];
101 u <<= 8; u |= p[1];
102
103 return u;
104}
105#define RB16(x) read_u16be((const uint8_t *)(x))
106
107/**
108 * Read a 16 bits little endian unsigned integer out of memory.
109 * @param x a pointer to the input memory
110 * @return the corresponding unsigned integer
111 */
112static inline uint16_t read_u16le(const uint8_t *p)
113{
114 uint16_t u;
115
116 u = 0;
117 u <<= 8; u |= p[1];
118 u <<= 8; u |= p[0];
119
120 return u;
121}
122#define RL16(x) read_u16le((const uint8_t *)(x))
123
124/**
125 * Read a 16 bits big endian signed integer out of memory.
126 * @param x a pointer to the input memory
127 * @return the corresponding signed integer
128 */
129static inline int16_t read_i16be(const uint8_t *p)
130{
131 uint16_t u;
132 int16_t i;
133
134 u = read_u16be(p);
135 i = (int16_t)u;
136
137 return i;
138}
139#define RB16S(x) read_i16be((const uint8_t *)(x))
140
141/**
142 * Read a 16 bits little endian signed integer out of memory.
143 * @param x a pointer to the input memory
144 * @return the corresponding signed integer
145 */
146static inline int16_t read_i16le(const uint8_t *p)
147{
148 uint16_t u;
149 int16_t i;
150
151 u = read_u16le(p);
152 i = (int16_t)u;
153
154 return i;
155}
156#define RL16S(x) read_i16le((const uint8_t *)(x))
157
158/**
159 * Read a 24 bits little endian unsigned integer out of memory.
160 * @param x a pointer to the input memory
161 * @return the corresponding unsigned integer
162 */
163static inline uint32_t read_u24le(const uint8_t *p)
164{
165 uint32_t u;
166
167 u = 0;
168 u <<= 8; u |= p[2];
169 u <<= 8; u |= p[1];
170 u <<= 8; u |= p[0];
171
172 return u;
173}
174
175/**
176 * Read a 24 bits big endian unsigned integer out of memory.
177 * @param x a pointer to the input memory
178 * @return the corresponding unsigned integer
179 */
180static inline uint32_t read_u24be(const uint8_t *p)
181{
182 uint32_t u;
183
184 u = 0;
185 u <<= 8; u |= p[0];
186 u <<= 8; u |= p[1];
187 u <<= 8; u |= p[2];
188
189 return u;
190}
191
192/**
193 * Read a 32 bits big endian unsigned integer out of memory.
194 * @param x a pointer to the input memory
195 * @return the corresponding unsigned integer
196 */
197static inline uint32_t read_u32be(const uint8_t *p)
198{
199 uint32_t u;
200
201 u = 0;
202 u <<= 8; u |= p[0];
203 u <<= 8; u |= p[1];
204 u <<= 8; u |= p[2];
205 u <<= 8; u |= p[3];
206
207 return u;
208}
209#define RB32(x) read_u32be((const uint8_t *)(x))
210
211/**
212 * Read a 32 bits little endian unsigned integer out of memory.
213 * @param x a pointer to the input memory
214 * @return the corresponding unsigned integer
215 */
216static inline uint32_t read_u32le(const uint8_t *p)
217{
218 uint32_t u;
219
220 u = 0;
221 u <<= 8; u |= p[3];
222 u <<= 8; u |= p[2];
223 u <<= 8; u |= p[1];
224 u <<= 8; u |= p[0];
225
226 return u;
227}
228#define RL32(x) read_u32le((const uint8_t *)(x))
229
230/**
231 * Read a 32 bits big endian signed integer out of memory.
232 * @param x a pointer to the input memory
233 * @return the corresponding signed integer
234 */
235static inline int32_t read_i32be(const uint8_t *p)
236{
237 uint32_t u;
238 int32_t i;
239
240 u = read_u32be(p);
241 i = (int32_t)u;
242
243 return i;
244}
245#define RB32S(x) read_i32be((const uint8_t *)(x))
246
247/**
248 * Read a 32 bits little endian signed integer out of memory.
249 * @param x a pointer to the input memory
250 * @return the corresponding signed integer
251 */
252static inline int32_t read_i32le(const uint8_t *p)
253{
254 uint32_t u;
255 int32_t i;
256
257 u = read_u32le(p);
258 i = (int32_t)u;
259
260 return i;
261}
262#define RL32S(x) read_i32le((const uint8_t *)(x))
263
264/**
265 * Read a 64 bits big endian unsigned integer out of memory.
266 * @param x a pointer to the input memory
267 * @return the corresponding unsigned integer
268 */
269static inline uint64_t read_u64be(const uint8_t *p)
270{
271 uint64_t u;
272
273 u = 0;
274 u <<= 8; u |= p[0];
275 u <<= 8; u |= p[1];
276 u <<= 8; u |= p[2];
277 u <<= 8; u |= p[3];
278 u <<= 8; u |= p[4];
279 u <<= 8; u |= p[5];
280 u <<= 8; u |= p[6];
281 u <<= 8; u |= p[7];
282
283 return u;
284}
285#define RB64(x) read_u64be((const uint8_t *)(x))
286
287/**
288 * Read a 64 bits little endian unsigned integer out of memory.
289 * @param x a pointer to the input memory
290 * @return the corresponding unsigned integer
291 */
292static inline uint64_t read_u64le(const uint8_t *p)
293{
294 uint64_t u;
295
296 u = 0;
297 u <<= 8; u |= p[7];
298 u <<= 8; u |= p[6];
299 u <<= 8; u |= p[5];
300 u <<= 8; u |= p[4];
301 u <<= 8; u |= p[3];
302 u <<= 8; u |= p[2];
303 u <<= 8; u |= p[1];
304 u <<= 8; u |= p[0];
305
306 return u;
307}
308#define RL64(x) read_u64le((const uint8_t *)(x))
309
310/**
311 * Read a 64 bits big endian signed integer out of memory.
312 * @param x a pointer to the input memory
313 * @return the corresponding unsigned integer
314 */
315static inline int64_t read_i64be(const uint8_t *p)
316{
317 uint64_t u;
318 int64_t i;
319
320 u = read_u64be(p);
321 i = (int64_t)u;
322
323 return i;
324}
325#define RB64S(x) read_i64be((const uint8_t *)(x))
326
327/**
328 * Read a 64 bits little endian signed integer out of memory.
329 * @param x a pointer to the input memory
330 * @return the corresponding unsigned integer
331 */
332static inline int64_t read_i64le(const uint8_t *p)
333{
334 uint64_t u;
335 int64_t i;
336
337 u = read_u64le(p);
338 i = (int64_t)u;
339
340 return i;
341}
342#define RL64S(x) read_i64le((const uint8_t *)(x))
343
344/**
345 * Read a 32 bits big endian float out of memory (single precision).
346 * @param x a pointer to the input memory
347 * @return the corresponding float
348 */
349static inline float read_fltbe(const uint8_t *p)
350{
351 /*
352 * Implementor's note: Strictly speaking the "union" trick
353 * is not portable. But this phrase was found to work on the
354 * project's supported platforms, and serve well until a more
355 * appropriate phrase is found.
356 */
357 union { uint32_t u32; float flt; } u;
358 float f;
359
360 u.u32 = read_u32be(p);
361 f = u.flt;
362
363 return f;
364}
365#define RBFL(x) read_fltbe((const uint8_t *)(x))
366
367/**
368 * Read a 32 bits little endian float out of memory (single precision).
369 * @param x a pointer to the input memory
370 * @return the corresponding float
371 */
372static inline float read_fltle(const uint8_t *p)
373{
374 /*
375 * Implementor's note: Strictly speaking the "union" trick
376 * is not portable. But this phrase was found to work on the
377 * project's supported platforms, and serve well until a more
378 * appropriate phrase is found.
379 */
380 union { uint32_t u32; float flt; } u;
381 float f;
382
383 u.u32 = read_u32le(p);
384 f = u.flt;
385
386 return f;
387}
388#define RLFL(x) read_fltle((const uint8_t *)(x))
389
390/**
391 * Read a 64 bits big endian float out of memory (double precision).
392 * @param x a pointer to the input memory
393 * @return the corresponding floating point value
394 */
395static inline double read_dblbe(const uint8_t *p)
396{
397 /*
398 * Implementor's note: Strictly speaking the "union" trick
399 * is not portable. But this phrase was found to work on the
400 * project's supported platforms, and serve well until a more
401 * appropriate phrase is found.
402 */
403 union { uint64_t u64; double flt; } u;
404 double f;
405
406 u.u64 = read_u64be(p);
407 f = u.flt;
408
409 return f;
410}
411
412/**
413 * Read a 64 bits little endian float out of memory (double precision).
414 * @param x a pointer to the input memory
415 * @return the corresponding floating point value
416 */
417static inline double read_dblle(const uint8_t *p)
418{
419 /*
420 * Implementor's note: Strictly speaking the "union" trick
421 * is not portable. But this phrase was found to work on the
422 * project's supported platforms, and serve well until a more
423 * appropriate phrase is found.
424 */
425 union { uint64_t u64; double flt; } u;
426 double f;
427
428 u.u64 = read_u64le(p);
429 f = u.flt;
430
431 return f;
432}
433#define RLDB(x) read_dblle((const uint8_t *)(x))
434
435/**
436 * Write a 8 bits unsigned integer to memory.
437 * @param p a pointer to the output memory
438 * @param x the input unsigned integer
439 */
440static inline void write_u8(uint8_t *p, uint8_t x)
441{
442 p[0] = x;
443}
444#define W8(p, x) write_u8((uint8_t *)(p), (uint8_t)(x))
445
446/**
447 * Write a 16 bits unsigned integer to memory stored as big endian.
448 * @param p a pointer to the output memory
449 * @param x the input unsigned integer
450 */
451static inline void write_u16be(uint8_t *p, uint16_t x)
452{
453 p[1] = x & 0xff; x >>= 8;
454 p[0] = x & 0xff; x >>= 8;
455}
456#define WB16(p, x) write_u16be((uint8_t *)(p), (uint16_t)(x))
457
458/**
459 * Write a 16 bits unsigned integer to memory stored as little endian.
460 * @param p a pointer to the output memory
461 * @param x the input unsigned integer
462 */
463static inline void write_u16le(uint8_t *p, uint16_t x)
464{
465 p[0] = x & 0xff; x >>= 8;
466 p[1] = x & 0xff; x >>= 8;
467}
468#define WL16(p, x) write_u16le((uint8_t *)(p), (uint16_t)(x))
469
470/**
471 * Write a 24 bits unsigned integer to memory stored as little endian.
472 * @param p a pointer to the output memory
473 * @param x the input unsigned integer
474 */
475static inline void write_u24le(uint8_t *p, uint32_t x)
476{
477 p[0] = x & 0xff; x >>= 8;
478 p[1] = x & 0xff; x >>= 8;
479 p[2] = x & 0xff; x >>= 8;
480}
481#define WL24(p, x) write_u24le((uint8_t *)(p), (uint32_t)(x))
482
483/**
484 * Write a 32 bits unsigned integer to memory stored as big endian.
485 * @param p a pointer to the output memory
486 * @param x the input unsigned integer
487 */
488static inline void write_u32be(uint8_t *p, uint32_t x)
489{
490 p[3] = x & 0xff; x >>= 8;
491 p[2] = x & 0xff; x >>= 8;
492 p[1] = x & 0xff; x >>= 8;
493 p[0] = x & 0xff; x >>= 8;
494}
495#define WB32(p, x) write_u32be((uint8_t *)(p), (uint32_t)(x))
496
497/**
498 * Write a 32 bits unsigned integer to memory stored as little endian.
499 * @param p a pointer to the output memory
500 * @param x the input unsigned integer
501 */
502static inline void write_u32le(uint8_t *p, uint32_t x)
503{
504 p[0] = x & 0xff; x >>= 8;
505 p[1] = x & 0xff; x >>= 8;
506 p[2] = x & 0xff; x >>= 8;
507 p[3] = x & 0xff; x >>= 8;
508}
509#define WL32(p, x) write_u32le((uint8_t *)(p), (uint32_t)(x))
510
511/**
512 * Write a 40 bits unsigned integer to memory stored as little endian.
513 * @param p a pointer to the output memory
514 * @param x the input unsigned integer
515 */
516static inline void write_u40le(uint8_t *p, uint64_t x)
517{
518 p[0] = x & 0xff; x >>= 8;
519 p[1] = x & 0xff; x >>= 8;
520 p[2] = x & 0xff; x >>= 8;
521 p[3] = x & 0xff; x >>= 8;
522 p[4] = x & 0xff; x >>= 8;
523}
524#define WL40(p, x) write_u40le((uint8_t *)(p), (uint64_t)(x))
525
526/**
527 * Write a 48 bits unsigned integer to memory stored as little endian.
528 * @param p a pointer to the output memory
529 * @param x the input unsigned integer
530 */
531static inline void write_u48le(uint8_t *p, uint64_t x)
532{
533 p[0] = x & 0xff; x >>= 8;
534 p[1] = x & 0xff; x >>= 8;
535 p[2] = x & 0xff; x >>= 8;
536 p[3] = x & 0xff; x >>= 8;
537 p[4] = x & 0xff; x >>= 8;
538 p[5] = x & 0xff; x >>= 8;
539}
540#define WL48(p, x) write_u48le((uint8_t *)(p), (uint64_t)(x))
541
542/**
543 * Write a 64 bits unsigned integer to memory stored as big endian.
544 * @param p a pointer to the output memory
545 * @param x the input unsigned integer
546 */
547static inline void write_u64be(uint8_t *p, uint64_t x)
548{
549 p[7] = x & 0xff; x >>= 8;
550 p[6] = x & 0xff; x >>= 8;
551 p[5] = x & 0xff; x >>= 8;
552 p[4] = x & 0xff; x >>= 8;
553 p[3] = x & 0xff; x >>= 8;
554 p[2] = x & 0xff; x >>= 8;
555 p[1] = x & 0xff; x >>= 8;
556 p[0] = x & 0xff; x >>= 8;
557}
558
559/**
560 * Write a 64 bits unsigned integer to memory stored as little endian.
561 * @param p a pointer to the output memory
562 * @param x the input unsigned integer
563 */
564static inline void write_u64le(uint8_t *p, uint64_t x)
565{
566 p[0] = x & 0xff; x >>= 8;
567 p[1] = x & 0xff; x >>= 8;
568 p[2] = x & 0xff; x >>= 8;
569 p[3] = x & 0xff; x >>= 8;
570 p[4] = x & 0xff; x >>= 8;
571 p[5] = x & 0xff; x >>= 8;
572 p[6] = x & 0xff; x >>= 8;
573 p[7] = x & 0xff; x >>= 8;
574}
575#define WL64(p, x) write_u64le((uint8_t *)(p), (uint64_t)(x))
576
577/**
578 * Write a 32 bits float to memory stored as big endian.
579 * @param p a pointer to the output memory
580 * @param x the input float
581 */
582static inline void write_fltbe(uint8_t *p, float x)
583{
584 union { uint32_t u; float f; } u;
585 u.f = x;
586 write_u32be(p, u.u);
587}
588#define WBFL(p, x) write_fltbe((uint8_t *)(p), (x))
589
590/**
591 * Write a 32 bits float to memory stored as little endian.
592 * @param p a pointer to the output memory
593 * @param x the input float
594 */
595static inline void write_fltle(uint8_t *p, float x)
596{
597 union { uint32_t u; float f; } u;
598 u.f = x;
599 write_u32le(p, u.u);
600}
601#define WLFL(p, x) write_fltle((uint8_t *)(p), float (x))
602
603/**
604 * Write a 64 bits float to memory stored as little endian.
605 * @param p a pointer to the output memory
606 * @param x the input floating point value
607 */
608static inline void write_dblle(uint8_t *p, double x)
609{
610 union { uint64_t u; double f; } u;
611 u.f = x;
612 write_u64le(p, u.u);
613}
614#define WLDB(p, x) write_dblle((uint8_t *)(p), float (x))
615
616/* Endianess conversion helpers with read/write position increment. */
617
618/**
619 * Read unsigned 8bit integer from raw memory, increment read position.
620 * @param[in, out] p Pointer into byte stream.
621 * @return Retrieved integer value, unsigned.
622 */
623static inline uint8_t read_u8_inc(const uint8_t **p)
624{
625 uint8_t v;
626
627 if (!p || !*p)
628 return 0;
629 v = read_u8(*p);
630 *p += sizeof(v);
631
632 return v;
633}
634
635/**
636 * Read unsigned 8bit integer, check length, increment read position.
637 * @param[in, out] p Pointer into byte stream.
638 * @param[in, out] l Remaining input payload length.
639 * @return Retrieved integer value, unsigned.
640 */
641static inline uint8_t read_u8_inc_len(const uint8_t **p, size_t *l)
642{
643 uint8_t v;
644
645 if (!p || !*p)
646 return 0;
647 if (l && *l < sizeof(v)) {
648 *l = 0;
649 return 0;
650 }
651 v = read_u8(*p);
652 *p += sizeof(v);
653 if (l)
654 *l -= sizeof(v);
655
656 return v;
657}
658
659/**
660 * Read signed 8bit integer from raw memory, increment read position.
661 * @param[in, out] p Pointer into byte stream.
662 * @return Retrieved integer value, signed.
663 */
664static inline int8_t read_i8_inc(const uint8_t **p)
665{
666 int8_t v;
667
668 if (!p || !*p)
669 return 0;
670 v = read_i8(*p);
671 *p += sizeof(v);
672
673 return v;
674}
675
676/**
677 * Read unsigned 16bit integer from raw memory (big endian format), increment read position.
678 * @param[in, out] p Pointer into byte stream.
679 * @return Retrieved integer value, unsigned.
680 */
681static inline uint16_t read_u16be_inc(const uint8_t **p)
682{
683 uint16_t v;
684
685 if (!p || !*p)
686 return 0;
687 v = read_u16be(*p);
688 *p += sizeof(v);
689
690 return v;
691}
692
693/**
694 * Read unsigned 16bit integer from raw memory (little endian format), increment read position.
695 * @param[in, out] p Pointer into byte stream.
696 * @return Retrieved integer value, unsigned.
697 */
698static inline uint16_t read_u16le_inc(const uint8_t **p)
699{
700 uint16_t v;
701
702 if (!p || !*p)
703 return 0;
704 v = read_u16le(*p);
705 *p += sizeof(v);
706
707 return v;
708}
709
710/**
711 * Read unsigned 16bit integer (LE format), check length, increment position.
712 * @param[in, out] p Pointer into byte stream.
713 * @param[in, out] l Remaining input payload length.
714 * @return Retrieved integer value, unsigned.
715 */
716static inline uint16_t read_u16le_inc_len(const uint8_t **p, size_t *l)
717{
718 uint16_t v;
719
720 if (!p || !*p)
721 return 0;
722 if (l && *l < sizeof(v)) {
723 *l = 0;
724 return 0;
725 }
726 v = read_u16le(*p);
727 *p += sizeof(v);
728 if (l)
729 *l -= sizeof(v);
730
731 return v;
732}
733
734/**
735 * Read signed 16bit integer from raw memory (big endian format), increment read position.
736 * @param[in, out] p Pointer into byte stream.
737 * @return Retrieved integer value, signed.
738 */
739static inline int16_t read_i16be_inc(const uint8_t **p)
740{
741 int16_t v;
742
743 if (!p || !*p)
744 return 0;
745 v = read_i16be(*p);
746 *p += sizeof(v);
747
748 return v;
749}
750
751/**
752 * Read signed 16bit integer from raw memory (little endian format), increment read position.
753 * @param[in, out] p Pointer into byte stream.
754 * @return Retrieved integer value, signed.
755 */
756static inline int16_t read_i16le_inc(const uint8_t **p)
757{
758 int16_t v;
759
760 if (!p || !*p)
761 return 0;
762 v = read_i16le(*p);
763 *p += sizeof(v);
764
765 return v;
766}
767
768/**
769 * Read unsigned 24bit integer from raw memory (little endian format), increment read position.
770 * @param[in, out] p Pointer into byte stream.
771 * @return Retrieved integer value, unsigned.
772 */
773static inline uint32_t read_u24le_inc(const uint8_t **p)
774{
775 uint32_t v;
776
777 if (!p || !*p)
778 return 0;
779 v = read_u24le(*p);
780 *p += 3 * sizeof(uint8_t);
781
782 return v;
783}
784
785/**
786 * Read unsigned 32bit integer from raw memory (big endian format), increment read position.
787 * @param[in, out] p Pointer into byte stream.
788 * @return Retrieved integer value, unsigned.
789 */
790static inline uint32_t read_u32be_inc(const uint8_t **p)
791{
792 uint32_t v;
793
794 if (!p || !*p)
795 return 0;
796 v = read_u32be(*p);
797 *p += sizeof(v);
798
799 return v;
800}
801
802/**
803 * Read unsigned 32bit integer from raw memory (little endian format), increment read position.
804 * @param[in, out] p Pointer into byte stream.
805 * @return Retrieved integer value, unsigned.
806 */
807static inline uint32_t read_u32le_inc(const uint8_t **p)
808{
809 uint32_t v;
810
811 if (!p || !*p)
812 return 0;
813 v = read_u32le(*p);
814 *p += sizeof(v);
815
816 return v;
817}
818
819/**
820 * Read signed 32bit integer from raw memory (big endian format), increment read position.
821 * @param[in, out] p Pointer into byte stream.
822 * @return Retrieved integer value, signed.
823 */
824static inline int32_t read_i32be_inc(const uint8_t **p)
825{
826 int32_t v;
827
828 if (!p || !*p)
829 return 0;
830 v = read_i32be(*p);
831 *p += sizeof(v);
832
833 return v;
834}
835
836/**
837 * Read signed 32bit integer from raw memory (little endian format), increment read position.
838 * @param[in, out] p Pointer into byte stream.
839 * @return Retrieved integer value, signed.
840 */
841static inline int32_t read_i32le_inc(const uint8_t **p)
842{
843 int32_t v;
844
845 if (!p || !*p)
846 return 0;
847 v = read_i32le(*p);
848 *p += sizeof(v);
849
850 return v;
851}
852
853/**
854 * Read unsigned 64bit integer from raw memory (big endian format), increment read position.
855 * @param[in, out] p Pointer into byte stream.
856 * @return Retrieved integer value, unsigned.
857 */
858static inline uint64_t read_u64be_inc(const uint8_t **p)
859{
860 uint64_t v;
861
862 if (!p || !*p)
863 return 0;
864 v = read_u64be(*p);
865 *p += sizeof(v);
866
867 return v;
868}
869
870/**
871 * Read unsigned 64bit integer from raw memory (little endian format), increment read position.
872 * @param[in, out] p Pointer into byte stream.
873 * @return Retrieved integer value, unsigned.
874 */
875static inline uint64_t read_u64le_inc(const uint8_t **p)
876{
877 uint64_t v;
878
879 if (!p || !*p)
880 return 0;
881 v = read_u64le(*p);
882 *p += sizeof(v);
883
884 return v;
885}
886
887/**
888 * Read 32bit float from raw memory (big endian format), increment read position.
889 * @param[in, out] p Pointer into byte stream.
890 * @return Retrieved float value.
891 */
892static inline float read_fltbe_inc(const uint8_t **p)
893{
894 float v;
895
896 if (!p || !*p)
897 return 0;
898 v = read_fltbe(*p);
899 *p += sizeof(v);
900
901 return v;
902}
903
904/**
905 * Read 32bit float from raw memory (little endian format), increment read position.
906 * @param[in, out] p Pointer into byte stream.
907 * @return Retrieved float value.
908 */
909static inline float read_fltle_inc(const uint8_t **p)
910{
911 float v;
912
913 if (!p || !*p)
914 return 0;
915 v = read_fltle(*p);
916 *p += sizeof(v);
917
918 return v;
919}
920
921/**
922 * Read 64bit float from raw memory (big endian format), increment read position.
923 * @param[in, out] p Pointer into byte stream.
924 * @return Retrieved float value.
925 */
926static inline double read_dblbe_inc(const uint8_t **p)
927{
928 double v;
929
930 if (!p || !*p)
931 return 0;
932 v = read_dblbe(*p);
933 *p += sizeof(v);
934
935 return v;
936}
937
938/**
939 * Read 64bit float from raw memory (little endian format), increment read position.
940 * @param[in, out] p Pointer into byte stream.
941 * @return Retrieved float value.
942 */
943static inline double read_dblle_inc(const uint8_t **p)
944{
945 double v;
946
947 if (!p || !*p)
948 return 0;
949 v = read_dblle(*p);
950 *p += sizeof(v);
951
952 return v;
953}
954
955/**
956 * Write unsigned 8bit integer to raw memory, increment write position.
957 * @param[in, out] p Pointer into byte stream.
958 * @param[in] x Value to write.
959 */
960static inline void write_u8_inc(uint8_t **p, uint8_t x)
961{
962 if (!p || !*p)
963 return;
964 write_u8(*p, x);
965 *p += sizeof(x);
966}
967
968/**
969 * Write unsigned 16bit big endian integer to raw memory, increment write position.
970 * @param[in, out] p Pointer into byte stream.
971 * @param[in] x Value to write.
972 */
973static inline void write_u16be_inc(uint8_t **p, uint16_t x)
974{
975 if (!p || !*p)
976 return;
977 write_u16be(*p, x);
978 *p += sizeof(x);
979}
980
981/**
982 * Write unsigned 16bit little endian integer to raw memory, increment write position.
983 * @param[in, out] p Pointer into byte stream.
984 * @param[in] x Value to write.
985 */
986static inline void write_u16le_inc(uint8_t **p, uint16_t x)
987{
988 if (!p || !*p)
989 return;
990 write_u16le(*p, x);
991 *p += sizeof(x);
992}
993
994/**
995 * Write unsigned 24bit liggle endian integer to raw memory, increment write position.
996 * @param[in, out] p Pointer into byte stream.
997 * @param[in] x Value to write.
998 */
999static inline void write_u24le_inc(uint8_t **p, uint32_t x)
1000{
1001 if (!p || !*p)
1002 return;
1003 write_u24le(*p, x);
1004 *p += 3 * sizeof(uint8_t);
1005}
1006
1007/**
1008 * Write unsigned 32bit big endian integer to raw memory, increment write position.
1009 * @param[in, out] p Pointer into byte stream.
1010 * @param[in] x Value to write.
1011 */
1012static inline void write_u32be_inc(uint8_t **p, uint32_t x)
1013{
1014 if (!p || !*p)
1015 return;
1016 write_u32be(*p, x);
1017 *p += sizeof(x);
1018}
1019
1020/**
1021 * Write unsigned 32bit little endian integer to raw memory, increment write position.
1022 * @param[in, out] p Pointer into byte stream.
1023 * @param[in] x Value to write.
1024 */
1025static inline void write_u32le_inc(uint8_t **p, uint32_t x)
1026{
1027 if (!p || !*p)
1028 return;
1029 write_u32le(*p, x);
1030 *p += sizeof(x);
1031}
1032
1033/**
1034 * Write unsigned 40bit little endian integer to raw memory, increment write position.
1035 * @param[in, out] p Pointer into byte stream.
1036 * @param[in] x Value to write.
1037 */
1038static inline void write_u40le_inc(uint8_t **p, uint64_t x)
1039{
1040 if (!p || !*p)
1041 return;
1042 write_u40le(*p, x);
1043 *p += 5 * sizeof(uint8_t);
1044}
1045
1046/**
1047 * Write unsigned 48bit little endian integer to raw memory, increment write position.
1048 * @param[in, out] p Pointer into byte stream.
1049 * @param[in] x Value to write.
1050 */
1051static inline void write_u48le_inc(uint8_t **p, uint64_t x)
1052{
1053 if (!p || !*p)
1054 return;
1055 write_u48le(*p, x);
1056 *p += 48 / 8 * sizeof(uint8_t);
1057}
1058
1059/**
1060 * Write unsigned 64bit little endian integer to raw memory, increment write position.
1061 * @param[in, out] p Pointer into byte stream.
1062 * @param[in] x Value to write.
1063 */
1064static inline void write_u64le_inc(uint8_t **p, uint64_t x)
1065{
1066 if (!p || !*p)
1067 return;
1068 write_u64le(*p, x);
1069 *p += sizeof(x);
1070}
1071
1072/**
1073 * Write single precision little endian float to raw memory, increment write position.
1074 * @param[in, out] p Pointer into byte stream.
1075 * @param[in] x Value to write.
1076 */
1077static inline void write_fltle_inc(uint8_t **p, float x)
1078{
1079 if (!p || !*p)
1080 return;
1081 write_fltle(*p, x);
1082 *p += sizeof(x);
1083}
1084
1085/**
1086 * Write double precision little endian float to raw memory, increment write position.
1087 * @param[in, out] p Pointer into byte stream.
1088 * @param[in] x Value to write.
1089 */
1090static inline void write_dblle_inc(uint8_t **p, double x)
1091{
1092 if (!p || !*p)
1093 return;
1094 write_dblle(*p, x);
1095 *p += sizeof(x);
1096}
1097
1098/* Portability fixes for FreeBSD. */
1099#ifdef __FreeBSD__
1100#define LIBUSB_CLASS_APPLICATION 0xfe
1101#define libusb_has_capability(x) 0
1102#define libusb_handle_events_timeout_completed(ctx, tv, c) \
1103 libusb_handle_events_timeout(ctx, tv)
1104#endif
1105
1106/*
1107 * Convenience for FTDI library version dependency.
1108 * - Version 1.5 introduced ftdi_tciflush(), ftdi_tcoflush(), and
1109 * ftdi_tcioflush() all within the same commit, and deprecated
1110 * ftdi_usb_purge_buffers() which suffered from inverse semantics.
1111 * The API is drop-in compatible (arguments count and data types are
1112 * identical). The libsigrok source code always flushes RX and TX at
1113 * the same time, never individually.
1114 */
1115#if defined HAVE_FTDI_TCIOFLUSH && HAVE_FTDI_TCIOFLUSH
1116# define PURGE_FTDI_BOTH ftdi_tcioflush
1117#else
1118# define PURGE_FTDI_BOTH ftdi_usb_purge_buffers
1119#endif
1120
1121/* Static definitions of structs ending with an all-zero entry are a
1122 * problem when compiling with -Wmissing-field-initializers: GCC
1123 * suppresses the warning only with { 0 }, clang wants { } */
1124#ifdef __clang__
1125#define ALL_ZERO { }
1126#else
1127#define ALL_ZERO { 0 }
1128#endif
1129
1130#ifdef __APPLE__
1131#define SR_DRIVER_LIST_SECTION "__DATA,__sr_driver_list"
1132#else
1133#define SR_DRIVER_LIST_SECTION "__sr_driver_list"
1134#endif
1135
1136#if !defined SR_DRIVER_LIST_NOREORDER && defined __has_attribute
1137#if __has_attribute(no_reorder)
1138#define SR_DRIVER_LIST_NOREORDER __attribute__((no_reorder))
1139#endif
1140#endif
1141#if !defined SR_DRIVER_LIST_NOREORDER
1142#define SR_DRIVER_LIST_NOREORDER /* EMPTY */
1143#endif
1144
1145/**
1146 * Register a list of hardware drivers.
1147 *
1148 * This macro can be used to register multiple hardware drivers to the library.
1149 * This is useful when a driver supports multiple similar but slightly
1150 * different devices that require different sr_dev_driver struct definitions.
1151 *
1152 * For registering only a single driver see SR_REGISTER_DEV_DRIVER().
1153 *
1154 * Example:
1155 * @code{c}
1156 * #define MY_DRIVER(_name) \
1157 * &(struct sr_dev_driver){ \
1158 * .name = _name, \
1159 * ...
1160 * };
1161 *
1162 * SR_REGISTER_DEV_DRIVER_LIST(my_driver_infos,
1163 * MY_DRIVER("driver 1"),
1164 * MY_DRIVER("driver 2"),
1165 * ...
1166 * );
1167 * @endcode
1168 *
1169 * @param name Name to use for the driver list identifier.
1170 * @param ... Comma separated list of pointers to sr_dev_driver structs.
1171 */
1172#define SR_REGISTER_DEV_DRIVER_LIST(name, ...) \
1173 static const struct sr_dev_driver *name[] \
1174 SR_DRIVER_LIST_NOREORDER \
1175 __attribute__((section (SR_DRIVER_LIST_SECTION), used, \
1176 aligned(sizeof(struct sr_dev_driver *)))) \
1177 = { \
1178 __VA_ARGS__ \
1179 };
1180
1181/**
1182 * Register a hardware driver.
1183 *
1184 * This macro is used to register a hardware driver with the library. It has
1185 * to be used in order to make the driver accessible to applications using the
1186 * library.
1187 *
1188 * The macro invocation should be placed directly under the struct
1189 * sr_dev_driver definition.
1190 *
1191 * Example:
1192 * @code{c}
1193 * static struct sr_dev_driver driver_info = {
1194 * .name = "driver",
1195 * ....
1196 * };
1197 * SR_REGISTER_DEV_DRIVER(driver_info);
1198 * @endcode
1199 *
1200 * @param name Identifier name of sr_dev_driver struct to register.
1201 */
1202#define SR_REGISTER_DEV_DRIVER(name) \
1203 SR_REGISTER_DEV_DRIVER_LIST(name##_list, &name);
1204
1205SR_API void sr_drivers_init(struct sr_context *context);
1206
1207struct sr_context {
1208 struct sr_dev_driver **driver_list;
1209#ifdef HAVE_LIBUSB_1_0
1210 libusb_context *libusb_ctx;
1211#endif
1212 sr_resource_open_callback resource_open_cb;
1213 sr_resource_close_callback resource_close_cb;
1214 sr_resource_read_callback resource_read_cb;
1215 void *resource_cb_data;
1216};
1217
1218/** Input module metadata keys. */
1219enum sr_input_meta_keys {
1220 /** The input filename, if there is one. */
1221 SR_INPUT_META_FILENAME = 0x01,
1222 /** The input file's size in bytes. */
1223 SR_INPUT_META_FILESIZE = 0x02,
1224 /** The first 128 bytes of the file, provided as a GString. */
1225 SR_INPUT_META_HEADER = 0x04,
1226
1227 /** The module cannot identify a file without this metadata. */
1228 SR_INPUT_META_REQUIRED = 0x80,
1229};
1230
1231/** Input (file) module struct. */
1232struct sr_input {
1233 /**
1234 * A pointer to this input module's 'struct sr_input_module'.
1235 */
1236 const struct sr_input_module *module;
1237 GString *buf;
1238 struct sr_dev_inst *sdi;
1239 gboolean sdi_ready;
1240 void *priv;
1241};
1242
1243/** Input (file) module driver. */
1244struct sr_input_module {
1245 /**
1246 * A unique ID for this input module, suitable for use in command-line
1247 * clients, [a-z0-9-]. Must not be NULL.
1248 */
1249 const char *id;
1250
1251 /**
1252 * A unique name for this input module, suitable for use in GUI
1253 * clients, can contain UTF-8. Must not be NULL.
1254 */
1255 const char *name;
1256
1257 /**
1258 * A short description of the input module. Must not be NULL.
1259 *
1260 * This can be displayed by frontends, e.g. when selecting the input
1261 * module for saving a file.
1262 */
1263 const char *desc;
1264
1265 /**
1266 * A NULL terminated array of strings containing a list of file name
1267 * extensions typical for the input file format, or NULL if there is
1268 * no typical extension for this file format.
1269 */
1270 const char *const *exts;
1271
1272 /**
1273 * Zero-terminated list of metadata items the module needs to be able
1274 * to identify an input stream. Can be all-zero, if the module cannot
1275 * identify streams at all, i.e. has to be forced into use.
1276 *
1277 * Each item is one of:
1278 * SR_INPUT_META_FILENAME
1279 * SR_INPUT_META_FILESIZE
1280 * SR_INPUT_META_HEADER
1281 *
1282 * If the high bit (SR_INPUT META_REQUIRED) is set, the module cannot
1283 * identify a stream without the given metadata.
1284 */
1285 const uint8_t metadata[8];
1286
1287 /**
1288 * Returns a NULL-terminated list of options this module can take.
1289 * Can be NULL, if the module has no options.
1290 */
1291 const struct sr_option *(*options) (void);
1292
1293 /**
1294 * Check if this input module can load and parse the specified stream.
1295 *
1296 * @param[in] metadata Metadata the module can use to identify the stream.
1297 * @param[out] confidence "Strength" of the detection.
1298 * Specialized handlers can take precedence over generic/basic support.
1299 *
1300 * @retval SR_OK This module knows the format.
1301 * @retval SR_ERR_NA There wasn't enough data for this module to
1302 * positively identify the format.
1303 * @retval SR_ERR_DATA This module knows the format, but cannot handle
1304 * it. This means the stream is either corrupt, or indicates a
1305 * feature that the module does not support.
1306 * @retval SR_ERR This module does not know the format.
1307 *
1308 * Lower numeric values of 'confidence' mean that the input module
1309 * stronger believes in its capability to handle this specific format.
1310 * This way, multiple input modules can claim support for a format,
1311 * and the application can pick the best match, or try fallbacks
1312 * in case of errors. This approach also copes with formats that
1313 * are unreliable to detect in the absence of magic signatures.
1314 */
1315 int (*format_match) (GHashTable *metadata, unsigned int *confidence);
1316
1317 /**
1318 * Initialize the input module.
1319 *
1320 * @retval SR_OK Success
1321 * @retval other Negative error code.
1322 */
1323 int (*init) (struct sr_input *in, GHashTable *options);
1324
1325 /**
1326 * Send data to the specified input instance.
1327 *
1328 * When an input module instance is created with sr_input_new(), this
1329 * function is used to feed data to the instance.
1330 *
1331 * As enough data gets fed into this function to completely populate
1332 * the device instance associated with this input instance, this is
1333 * guaranteed to return the moment it's ready. This gives the caller
1334 * the chance to examine the device instance, attach session callbacks
1335 * and so on.
1336 *
1337 * @retval SR_OK Success
1338 * @retval other Negative error code.
1339 */
1340 int (*receive) (struct sr_input *in, GString *buf);
1341
1342 /**
1343 * Signal the input module no more data will come.
1344 *
1345 * This will cause the module to process any data it may have buffered.
1346 * The SR_DF_END packet will also typically be sent at this time.
1347 */
1348 int (*end) (struct sr_input *in);
1349
1350 /**
1351 * Reset the input module's input handling structures.
1352 *
1353 * Causes the input module to reset its internal state so that we can
1354 * re-send the input data from the beginning without having to
1355 * re-create the entire input module.
1356 *
1357 * @retval SR_OK Success.
1358 * @retval other Negative error code.
1359 */
1360 int (*reset) (struct sr_input *in);
1361
1362 /**
1363 * This function is called after the caller is finished using
1364 * the input module, and can be used to free any internal
1365 * resources the module may keep.
1366 *
1367 * This function is optional.
1368 *
1369 * @retval SR_OK Success
1370 * @retval other Negative error code.
1371 */
1372 void (*cleanup) (struct sr_input *in);
1373};
1374
1375/** Output module instance. */
1376struct sr_output {
1377 /** A pointer to this output's module. */
1378 const struct sr_output_module *module;
1379
1380 /**
1381 * The device for which this output module is creating output. This
1382 * can be used by the module to find out channel names and numbers.
1383 */
1384 const struct sr_dev_inst *sdi;
1385
1386 /**
1387 * The name of the file that the data should be written to.
1388 */
1389 const char *filename;
1390
1391 /**
1392 * A generic pointer which can be used by the module to keep internal
1393 * state between calls into its callback functions.
1394 *
1395 * For example, the module might store a pointer to a chunk of output
1396 * there, and only flush it when it reaches a certain size.
1397 */
1398 void *priv;
1399};
1400
1401/** Output module driver. */
1402struct sr_output_module {
1403 /**
1404 * A unique ID for this output module, suitable for use in command-line
1405 * clients, [a-z0-9-]. Must not be NULL.
1406 */
1407 const char *id;
1408
1409 /**
1410 * A unique name for this output module, suitable for use in GUI
1411 * clients, can contain UTF-8. Must not be NULL.
1412 */
1413 const char *name;
1414
1415 /**
1416 * A short description of the output module. Must not be NULL.
1417 *
1418 * This can be displayed by frontends, e.g. when selecting the output
1419 * module for saving a file.
1420 */
1421 const char *desc;
1422
1423 /**
1424 * A NULL terminated array of strings containing a list of file name
1425 * extensions typical for the input file format, or NULL if there is
1426 * no typical extension for this file format.
1427 */
1428 const char *const *exts;
1429
1430 /**
1431 * Bitfield containing flags that describe certain properties
1432 * this output module may or may not have.
1433 * @see sr_output_flags
1434 */
1435 const uint64_t flags;
1436
1437 /**
1438 * Returns a NULL-terminated list of options this module can take.
1439 * Can be NULL, if the module has no options.
1440 */
1441 const struct sr_option *(*options) (void);
1442
1443 /**
1444 * This function is called once, at the beginning of an output stream.
1445 *
1446 * The device struct will be available in the output struct passed in,
1447 * as well as the param field -- which may be NULL or an empty string,
1448 * if no parameter was passed.
1449 *
1450 * The module can use this to initialize itself, create a struct for
1451 * keeping state and storing it in the <code>internal</code> field.
1452 *
1453 * @param o Pointer to the respective 'struct sr_output'.
1454 *
1455 * @retval SR_OK Success
1456 * @retval other Negative error code.
1457 */
1458 int (*init) (struct sr_output *o, GHashTable *options);
1459
1460 /**
1461 * This function is passed a copy of every packet in the data feed.
1462 * Any output generated by the output module in response to the
1463 * packet should be returned in a newly allocated GString
1464 * <code>out</code>, which will be freed by the caller.
1465 *
1466 * Packets not of interest to the output module can just be ignored,
1467 * and the <code>out</code> parameter set to NULL.
1468 *
1469 * @param o Pointer to the respective 'struct sr_output'.
1470 * @param sdi The device instance that generated the packet.
1471 * @param packet The complete packet.
1472 * @param out A pointer where a GString * should be stored if
1473 * the module generates output, or NULL if not.
1474 *
1475 * @retval SR_OK Success
1476 * @retval other Negative error code.
1477 */
1478 int (*receive) (const struct sr_output *o,
1479 const struct sr_datafeed_packet *packet, GString **out);
1480
1481 /**
1482 * This function is called after the caller is finished using
1483 * the output module, and can be used to free any internal
1484 * resources the module may keep.
1485 *
1486 * @retval SR_OK Success
1487 * @retval other Negative error code.
1488 */
1489 int (*cleanup) (struct sr_output *o);
1490};
1491
1492/** Transform module instance. */
1493struct sr_transform {
1494 /** A pointer to this transform's module. */
1495 const struct sr_transform_module *module;
1496
1497 /**
1498 * The device for which this transform module is used. This
1499 * can be used by the module to find out channel names and numbers.
1500 */
1501 const struct sr_dev_inst *sdi;
1502
1503 /**
1504 * A generic pointer which can be used by the module to keep internal
1505 * state between calls into its callback functions.
1506 */
1507 void *priv;
1508};
1509
1510struct sr_transform_module {
1511 /**
1512 * A unique ID for this transform module, suitable for use in
1513 * command-line clients, [a-z0-9-]. Must not be NULL.
1514 */
1515 const char *id;
1516
1517 /**
1518 * A unique name for this transform module, suitable for use in GUI
1519 * clients, can contain UTF-8. Must not be NULL.
1520 */
1521 const char *name;
1522
1523 /**
1524 * A short description of the transform module. Must not be NULL.
1525 *
1526 * This can be displayed by frontends, e.g. when selecting
1527 * which transform module(s) to add.
1528 */
1529 const char *desc;
1530
1531 /**
1532 * Returns a NULL-terminated list of options this transform module
1533 * can take. Can be NULL, if the transform module has no options.
1534 */
1535 const struct sr_option *(*options) (void);
1536
1537 /**
1538 * This function is called once, at the beginning of a stream.
1539 *
1540 * @param t Pointer to the respective 'struct sr_transform'.
1541 * @param options Hash table of options for this transform module.
1542 * Can be NULL if no options are to be used.
1543 *
1544 * @retval SR_OK Success
1545 * @retval other Negative error code.
1546 */
1547 int (*init) (struct sr_transform *t, GHashTable *options);
1548
1549 /**
1550 * This function is passed a pointer to every packet in the data feed.
1551 *
1552 * It can either return (in packet_out) a pointer to another packet
1553 * (possibly the exact same packet it got as input), or NULL.
1554 *
1555 * @param t Pointer to the respective 'struct sr_transform'.
1556 * @param packet_in Pointer to a datafeed packet.
1557 * @param packet_out Pointer to the resulting datafeed packet after
1558 * this function was run. If NULL, the transform
1559 * module intentionally didn't output a new packet.
1560 *
1561 * @retval SR_OK Success
1562 * @retval other Negative error code.
1563 */
1564 int (*receive) (const struct sr_transform *t,
1565 struct sr_datafeed_packet *packet_in,
1566 struct sr_datafeed_packet **packet_out);
1567
1568 /**
1569 * This function is called after the caller is finished using
1570 * the transform module, and can be used to free any internal
1571 * resources the module may keep.
1572 *
1573 * @retval SR_OK Success
1574 * @retval other Negative error code.
1575 */
1576 int (*cleanup) (struct sr_transform *t);
1577};
1578
1579#ifdef HAVE_LIBUSB_1_0
1580/** USB device instance */
1581struct sr_usb_dev_inst {
1582 /** USB bus */
1583 uint8_t bus;
1584 /** Device address on USB bus */
1585 uint8_t address;
1586 /** libusb device handle */
1587 struct libusb_device_handle *devhdl;
1588};
1589#endif
1590
1591/** Raw TCP device instance. */
1592struct sr_tcp_dev_inst {
1593 char *host_addr; /**!< IP address or host name */
1594 char *tcp_port; /**!< TCP port number/name */
1595 int sock_fd; /**!< TCP socket's file descriptor */
1596};
1597
1598struct sr_serial_dev_inst;
1599#ifdef HAVE_SERIAL_COMM
1600struct ser_lib_functions;
1601struct ser_hid_chip_functions;
1602struct sr_bt_desc;
1603typedef void (*serial_rx_chunk_callback)(struct sr_serial_dev_inst *serial,
1604 void *cb_data, const void *buf, size_t count);
1605struct sr_serial_dev_inst {
1606 /** Port name, e.g. '/dev/tty42'. */
1607 char *port;
1608 /** Comm params for serial_set_paramstr(). */
1609 char *serialcomm;
1610 struct ser_lib_functions *lib_funcs;
1611 struct {
1612 int bit_rate;
1613 int data_bits;
1614 int parity_bits;
1615 int stop_bits;
1616 } comm_params;
1617 GString *rcv_buffer;
1618 serial_rx_chunk_callback rx_chunk_cb_func;
1619 void *rx_chunk_cb_data;
1620#ifdef HAVE_LIBSERIALPORT
1621 /** libserialport port handle */
1622 struct sp_port *sp_data;
1623#endif
1624#ifdef HAVE_LIBHIDAPI
1625 enum ser_hid_chip_t {
1626 SER_HID_CHIP_UNKNOWN, /**!< place holder */
1627 SER_HID_CHIP_BTC_BU86X, /**!< Brymen BU86x */
1628 SER_HID_CHIP_SIL_CP2110, /**!< SiLabs CP2110 */
1629 SER_HID_CHIP_VICTOR_DMM, /**!< Victor 70/86 DMM cable */
1630 SER_HID_CHIP_WCH_CH9325, /**!< WCH CH9325 */
1631 SER_HID_CHIP_LAST, /**!< sentinel */
1632 } hid_chip;
1633 struct ser_hid_chip_functions *hid_chip_funcs;
1634 char *usb_path;
1635 char *usb_serno;
1636 const char *hid_path;
1637 hid_device *hid_dev;
1638 GSList *hid_source_args;
1639#endif
1640#ifdef HAVE_BLUETOOTH
1641 enum ser_bt_conn_t {
1642 SER_BT_CONN_UNKNOWN, /**!< place holder */
1643 SER_BT_CONN_RFCOMM, /**!< BT classic, RFCOMM channel */
1644 SER_BT_CONN_BLE122, /**!< BLE, BLE122 module, indications */
1645 SER_BT_CONN_NRF51, /**!< BLE, Nordic nRF51, notifications */
1646 SER_BT_CONN_CC254x, /**!< BLE, TI CC254x, notifications */
1647 SER_BT_CONN_AC6328, /**!< BLE, JL AC6328B, notifications */
1648 SER_BT_CONN_DIALOG, /**!< BLE, dialog DA14580, notifications */
1649 SER_BT_CONN_NOTIFY, /**!< BLE, generic notifications */
1650 SER_BT_CONN_MAX, /**!< sentinel */
1651 } bt_conn_type;
1652 char *bt_addr_local;
1653 char *bt_addr_remote;
1654 size_t bt_rfcomm_channel;
1655 uint16_t bt_notify_handle_read;
1656 uint16_t bt_notify_handle_write;
1657 uint16_t bt_notify_handle_cccd;
1658 uint16_t bt_notify_value_cccd;
1659 uint16_t bt_ble_mtu;
1660 struct sr_bt_desc *bt_desc;
1661 GSList *bt_source_args;
1662#endif
1663 struct sr_tcp_dev_inst *tcp_dev;
1664};
1665#endif
1666
1667struct sr_usbtmc_dev_inst {
1668 char *device;
1669 int fd;
1670};
1671
1672/* Private driver context. */
1673struct drv_context {
1674 /** sigrok context */
1675 struct sr_context *sr_ctx;
1676 GSList *instances;
1677};
1678
1679/*--- log.c -----------------------------------------------------------------*/
1680
1681#if defined(_WIN32) && (__GNUC__ > 4 || (__GNUC__ == 4 && __GNUC_MINOR__ >= 4))
1682/*
1683 * On MinGW, we need to specify the gnu_printf format flavor or GCC
1684 * will assume non-standard Microsoft printf syntax.
1685 */
1686SR_PRIV int sr_log(int loglevel, const char *format, ...)
1687 __attribute__((__format__ (__gnu_printf__, 2, 3)));
1688#else
1689SR_PRIV int sr_log(int loglevel, const char *format, ...) G_GNUC_PRINTF(2, 3);
1690#endif
1691
1692/* Message logging helpers with subsystem-specific prefix string. */
1693#define sr_spew(...) sr_log(SR_LOG_SPEW, LOG_PREFIX ": " __VA_ARGS__)
1694#define sr_dbg(...) sr_log(SR_LOG_DBG, LOG_PREFIX ": " __VA_ARGS__)
1695#define sr_info(...) sr_log(SR_LOG_INFO, LOG_PREFIX ": " __VA_ARGS__)
1696#define sr_warn(...) sr_log(SR_LOG_WARN, LOG_PREFIX ": " __VA_ARGS__)
1697#define sr_err(...) sr_log(SR_LOG_ERR, LOG_PREFIX ": " __VA_ARGS__)
1698
1699/*--- device.c --------------------------------------------------------------*/
1700
1701/** Scan options supported by a driver. */
1702#define SR_CONF_SCAN_OPTIONS 0x7FFF0000
1703
1704/** Device options for a particular device. */
1705#define SR_CONF_DEVICE_OPTIONS 0x7FFF0001
1706
1707/** Mask for separating config keys from capabilities. */
1708#define SR_CONF_MASK 0x1fffffff
1709
1710/** Values for the changes argument of sr_dev_driver.config_channel_set. */
1711enum {
1712 /** The enabled state of the channel has been changed. */
1713 SR_CHANNEL_SET_ENABLED = 1 << 0,
1714};
1715
1716SR_PRIV struct sr_channel *sr_channel_new(struct sr_dev_inst *sdi,
1717 int index, int type, gboolean enabled, const char *name);
1718SR_PRIV void sr_channel_free(struct sr_channel *ch);
1719SR_PRIV void sr_channel_free_cb(void *p);
1720SR_PRIV struct sr_channel *sr_next_enabled_channel(const struct sr_dev_inst *sdi,
1721 struct sr_channel *cur_channel);
1722SR_PRIV gboolean sr_channels_differ(struct sr_channel *ch1, struct sr_channel *ch2);
1723SR_PRIV gboolean sr_channel_lists_differ(GSList *l1, GSList *l2);
1724
1725SR_PRIV struct sr_channel_group *sr_channel_group_new(struct sr_dev_inst *sdi,
1726 const char *name, void *priv);
1727SR_PRIV void sr_channel_group_free(struct sr_channel_group *cg);
1728SR_PRIV void sr_channel_group_free_cb(void *cg);
1729
1730/** Device instance data */
1731struct sr_dev_inst {
1732 /** Device driver. */
1733 struct sr_dev_driver *driver;
1734 /** Device instance status. SR_ST_NOT_FOUND, etc. */
1735 int status;
1736 /** Device instance type. SR_INST_USB, etc. */
1737 int inst_type;
1738 /** Device vendor. */
1739 char *vendor;
1740 /** Device model. */
1741 char *model;
1742 /** Device version. */
1743 char *version;
1744 /** Serial number. */
1745 char *serial_num;
1746 /** Connection string to uniquely identify devices. */
1747 char *connection_id;
1748 /** List of channels. */
1749 GSList *channels;
1750 /** List of sr_channel_group structs */
1751 GSList *channel_groups;
1752 /** Device instance connection data (used?) */
1753 void *conn;
1754 /** Device instance private data (used?) */
1755 void *priv;
1756 /** Session to which this device is currently assigned. */
1757 struct sr_session *session;
1758};
1759
1760/* Generic device instances */
1761SR_PRIV void sr_dev_inst_free(struct sr_dev_inst *sdi);
1762
1763#ifdef HAVE_LIBUSB_1_0
1764/* USB-specific instances */
1765SR_PRIV struct sr_usb_dev_inst *sr_usb_dev_inst_new(uint8_t bus,
1766 uint8_t address, struct libusb_device_handle *hdl);
1767SR_PRIV void sr_usb_dev_inst_free(struct sr_usb_dev_inst *usb);
1768SR_PRIV void sr_usb_dev_inst_free_cb(gpointer p); /* Glib wrapper. */
1769#endif
1770
1771#ifdef HAVE_SERIAL_COMM
1772#ifndef HAVE_LIBSERIALPORT
1773/*
1774 * Some identifiers which initially got provided by libserialport are
1775 * used internally within the libsigrok serial layer's implementation,
1776 * while libserialport no longer is the exclusive provider of serial
1777 * communication support. Declare the identifiers here so they remain
1778 * available across all build configurations.
1779 */
1780enum libsp_parity {
1781 SP_PARITY_NONE = 0,
1782 SP_PARITY_ODD = 1,
1783 SP_PARITY_EVEN = 2,
1784 SP_PARITY_MARK = 3,
1785 SP_PARITY_SPACE = 4,
1786};
1787
1788enum libsp_flowcontrol {
1789 SP_FLOWCONTROL_NONE = 0,
1790 SP_FLOWCONTROL_XONXOFF = 1,
1791 SP_FLOWCONTROL_RTSCTS = 2,
1792 SP_FLOWCONTROL_DTRDSR = 3,
1793};
1794#endif
1795
1796/* Serial-specific instances */
1797SR_PRIV struct sr_serial_dev_inst *sr_serial_dev_inst_new(const char *port,
1798 const char *serialcomm);
1799SR_PRIV void sr_serial_dev_inst_free(struct sr_serial_dev_inst *serial);
1800#endif
1801
1802/* USBTMC-specific instances */
1803SR_PRIV struct sr_usbtmc_dev_inst *sr_usbtmc_dev_inst_new(const char *device);
1804SR_PRIV void sr_usbtmc_dev_inst_free(struct sr_usbtmc_dev_inst *usbtmc);
1805
1806/*--- hwdriver.c ------------------------------------------------------------*/
1807
1808SR_PRIV const GVariantType *sr_variant_type_get(int datatype);
1809SR_PRIV int sr_variant_type_check(uint32_t key, GVariant *data);
1810SR_PRIV void sr_hw_cleanup_all(const struct sr_context *ctx);
1811SR_PRIV struct sr_config *sr_config_new(uint32_t key, GVariant *data);
1812SR_PRIV void sr_config_free(struct sr_config *src);
1813SR_PRIV int sr_dev_acquisition_start(struct sr_dev_inst *sdi);
1814SR_PRIV int sr_dev_acquisition_stop(struct sr_dev_inst *sdi);
1815
1816/*--- session.c -------------------------------------------------------------*/
1817
1818struct sr_session {
1819 /** Context this session exists in. */
1820 struct sr_context *ctx;
1821 /** List of struct sr_dev_inst pointers. */
1822 GSList *devs;
1823 /** List of struct sr_dev_inst pointers owned by this session. */
1824 GSList *owned_devs;
1825 /** List of struct datafeed_callback pointers. */
1826 GSList *datafeed_callbacks;
1827 GSList *transforms;
1828 struct sr_trigger *trigger;
1829
1830 /** Callback to invoke on session stop. */
1831 sr_session_stopped_callback stopped_callback;
1832 /** User data to be passed to the session stop callback. */
1833 void *stopped_cb_data;
1834
1835 /** Mutex protecting the main context pointer. */
1836 GMutex main_mutex;
1837 /** Context of the session main loop. */
1838 GMainContext *main_context;
1839
1840 /** Registered event sources for this session. */
1841 GHashTable *event_sources;
1842 /** Session main loop. */
1843 GMainLoop *main_loop;
1844 /** ID of idle source for dispatching the session stop notification. */
1845 unsigned int stop_check_id;
1846 /** Whether the session has been started. */
1847 gboolean running;
1848};
1849
1850SR_PRIV int sr_session_source_add_internal(struct sr_session *session,
1851 void *key, GSource *source);
1852SR_PRIV int sr_session_source_remove_internal(struct sr_session *session,
1853 void *key);
1854SR_PRIV int sr_session_source_destroyed(struct sr_session *session,
1855 void *key, GSource *source);
1856SR_PRIV int sr_session_fd_source_add(struct sr_session *session,
1857 void *key, gintptr fd, int events, int timeout,
1858 sr_receive_data_callback cb, void *cb_data);
1859
1860SR_PRIV int sr_session_source_add(struct sr_session *session, int fd,
1861 int events, int timeout, sr_receive_data_callback cb, void *cb_data);
1862SR_PRIV int sr_session_source_add_pollfd(struct sr_session *session,
1863 GPollFD *pollfd, int timeout, sr_receive_data_callback cb,
1864 void *cb_data);
1865SR_PRIV int sr_session_source_add_channel(struct sr_session *session,
1866 GIOChannel *channel, int events, int timeout,
1867 sr_receive_data_callback cb, void *cb_data);
1868SR_PRIV int sr_session_source_remove(struct sr_session *session, int fd);
1869SR_PRIV int sr_session_source_remove_pollfd(struct sr_session *session,
1870 GPollFD *pollfd);
1871SR_PRIV int sr_session_source_remove_channel(struct sr_session *session,
1872 GIOChannel *channel);
1873
1874SR_PRIV int sr_session_send_meta(const struct sr_dev_inst *sdi,
1875 uint32_t key, GVariant *var);
1876SR_PRIV int sr_session_send(const struct sr_dev_inst *sdi,
1877 const struct sr_datafeed_packet *packet);
1878SR_PRIV int sr_sessionfile_check(const char *filename);
1879SR_PRIV struct sr_dev_inst *sr_session_prepare_sdi(const char *filename,
1880 struct sr_session **session);
1881
1882/*--- session_file.c --------------------------------------------------------*/
1883
1884#if !HAVE_ZIP_DISCARD
1885/* Replace zip_discard() if not available. */
1886#define zip_discard(zip) sr_zip_discard(zip)
1887SR_PRIV void sr_zip_discard(struct zip *archive);
1888#endif
1889
1890SR_PRIV GKeyFile *sr_sessionfile_read_metadata(struct zip *archive,
1891 const struct zip_stat *entry);
1892
1893/*--- analog.c --------------------------------------------------------------*/
1894
1895SR_PRIV int sr_analog_init(struct sr_datafeed_analog *analog,
1896 struct sr_analog_encoding *encoding,
1897 struct sr_analog_meaning *meaning,
1898 struct sr_analog_spec *spec,
1899 int digits);
1900
1901/*--- std.c -----------------------------------------------------------------*/
1902
1903typedef int (*dev_close_callback)(struct sr_dev_inst *sdi);
1904typedef void (*std_dev_clear_callback)(void *priv);
1905
1906SR_PRIV int std_init(struct sr_dev_driver *di, struct sr_context *sr_ctx);
1907SR_PRIV int std_cleanup(const struct sr_dev_driver *di);
1908SR_PRIV int std_dummy_dev_open(struct sr_dev_inst *sdi);
1909SR_PRIV int std_dummy_dev_close(struct sr_dev_inst *sdi);
1910SR_PRIV int std_dummy_dev_acquisition_start(const struct sr_dev_inst *sdi);
1911SR_PRIV int std_dummy_dev_acquisition_stop(struct sr_dev_inst *sdi);
1912#ifdef HAVE_SERIAL_COMM
1913SR_PRIV int std_serial_dev_open(struct sr_dev_inst *sdi);
1914SR_PRIV int std_serial_dev_acquisition_stop(struct sr_dev_inst *sdi);
1915#endif
1916SR_PRIV int std_session_send_df_header(const struct sr_dev_inst *sdi);
1917SR_PRIV int std_session_send_df_end(const struct sr_dev_inst *sdi);
1918SR_PRIV int std_session_send_df_trigger(const struct sr_dev_inst *sdi);
1919SR_PRIV int std_session_send_df_frame_begin(const struct sr_dev_inst *sdi);
1920SR_PRIV int std_session_send_df_frame_end(const struct sr_dev_inst *sdi);
1921SR_PRIV int std_dev_clear_with_callback(const struct sr_dev_driver *driver,
1922 std_dev_clear_callback clear_private);
1923SR_PRIV int std_dev_clear(const struct sr_dev_driver *driver);
1924SR_PRIV GSList *std_dev_list(const struct sr_dev_driver *di);
1925SR_PRIV int std_serial_dev_close(struct sr_dev_inst *sdi);
1926SR_PRIV GSList *std_scan_complete(struct sr_dev_driver *di, GSList *devices);
1927
1928SR_PRIV int std_opts_config_list(uint32_t key, GVariant **data,
1929 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg,
1930 const uint32_t scanopts[], size_t scansize, const uint32_t drvopts[],
1931 size_t drvsize, const uint32_t devopts[], size_t devsize);
1932
1933extern SR_PRIV const uint32_t NO_OPTS[1];
1934
1935#define STD_CONFIG_LIST(key, data, sdi, cg, scanopts, drvopts, devopts) \
1936 std_opts_config_list(key, data, sdi, cg, ARRAY_AND_SIZE(scanopts), \
1937 ARRAY_AND_SIZE(drvopts), ARRAY_AND_SIZE(devopts))
1938
1939SR_PRIV GVariant *std_gvar_tuple_array(const uint64_t a[][2], unsigned int n);
1940SR_PRIV GVariant *std_gvar_tuple_rational(const struct sr_rational *r, unsigned int n);
1941SR_PRIV GVariant *std_gvar_samplerates(const uint64_t samplerates[], unsigned int n);
1942SR_PRIV GVariant *std_gvar_samplerates_steps(const uint64_t samplerates[], unsigned int n);
1943SR_PRIV GVariant *std_gvar_min_max_step(double min, double max, double step);
1944SR_PRIV GVariant *std_gvar_min_max_step_array(const double a[3]);
1945SR_PRIV GVariant *std_gvar_min_max_step_thresholds(const double dmin, const double dmax, const double dstep);
1946
1947SR_PRIV GVariant *std_gvar_tuple_u64(uint64_t low, uint64_t high);
1948SR_PRIV GVariant *std_gvar_tuple_double(double low, double high);
1949
1950SR_PRIV GVariant *std_gvar_array_i32(const int32_t a[], unsigned int n);
1951SR_PRIV GVariant *std_gvar_array_u32(const uint32_t a[], unsigned int n);
1952SR_PRIV GVariant *std_gvar_array_u64(const uint64_t a[], unsigned int n);
1953SR_PRIV GVariant *std_gvar_array_str(const char *a[], unsigned int n);
1954
1955SR_PRIV GVariant *std_gvar_thresholds(const double a[][2], unsigned int n);
1956
1957SR_PRIV int std_str_idx(GVariant *data, const char *a[], unsigned int n);
1958SR_PRIV int std_u64_idx(GVariant *data, const uint64_t a[], unsigned int n);
1959SR_PRIV int std_u8_idx(GVariant *data, const uint8_t a[], unsigned int n);
1960
1961SR_PRIV int std_str_idx_s(const char *s, const char *a[], unsigned int n);
1962SR_PRIV int std_u8_idx_s(uint8_t b, const uint8_t a[], unsigned int n);
1963
1964SR_PRIV int std_u64_tuple_idx(GVariant *data, const uint64_t a[][2], unsigned int n);
1965SR_PRIV int std_double_tuple_idx(GVariant *data, const double a[][2], unsigned int n);
1966SR_PRIV int std_double_tuple_idx_d0(const double d, const double a[][2], unsigned int n);
1967
1968SR_PRIV int std_cg_idx(const struct sr_channel_group *cg, struct sr_channel_group *a[], unsigned int n);
1969
1970SR_PRIV int std_dummy_set_params(struct sr_serial_dev_inst *serial,
1971 int baudrate, int bits, int parity, int stopbits,
1972 int flowcontrol, int rts, int dtr);
1973SR_PRIV int std_dummy_set_handshake(struct sr_serial_dev_inst *serial,
1974 int rts, int dtr);
1975
1976/*--- resource.c ------------------------------------------------------------*/
1977
1978SR_PRIV int64_t sr_file_get_size(FILE *file);
1979
1980SR_PRIV int sr_resource_open(struct sr_context *ctx,
1981 struct sr_resource *res, int type, const char *name)
1982 G_GNUC_WARN_UNUSED_RESULT;
1983SR_PRIV int sr_resource_close(struct sr_context *ctx,
1984 struct sr_resource *res);
1985SR_PRIV gssize sr_resource_read(struct sr_context *ctx,
1986 const struct sr_resource *res, void *buf, size_t count)
1987 G_GNUC_WARN_UNUSED_RESULT;
1988SR_PRIV void *sr_resource_load(struct sr_context *ctx, int type,
1989 const char *name, size_t *size, size_t max_size)
1990 G_GNUC_MALLOC G_GNUC_WARN_UNUSED_RESULT;
1991
1992/*--- strutil.c -------------------------------------------------------------*/
1993
1994SR_PRIV int sr_atol(const char *str, long *ret);
1995SR_PRIV int sr_atol_base(const char *str, long *ret, char **end, int base);
1996SR_PRIV int sr_atoul_base(const char *str, unsigned long *ret, char **end, int base);
1997SR_PRIV int sr_atoi(const char *str, int *ret);
1998SR_PRIV int sr_atod(const char *str, double *ret);
1999SR_PRIV int sr_atof(const char *str, float *ret);
2000SR_PRIV int sr_atod_ascii(const char *str, double *ret);
2001SR_PRIV int sr_atod_ascii_digits(const char *str, double *ret, int *digits);
2002SR_PRIV int sr_atof_ascii(const char *str, float *ret);
2003
2004SR_PRIV GString *sr_hexdump_new(const uint8_t *data, const size_t len);
2005SR_PRIV void sr_hexdump_free(GString *s);
2006
2007/*--- soft-trigger.c --------------------------------------------------------*/
2008
2009struct soft_trigger_logic {
2010 const struct sr_dev_inst *sdi;
2011 const struct sr_trigger *trigger;
2012 int count;
2013 int unitsize;
2014 int cur_stage;
2015 uint8_t *prev_sample;
2016 uint8_t *pre_trigger_buffer;
2017 uint8_t *pre_trigger_head;
2018 int pre_trigger_size;
2019 int pre_trigger_fill;
2020};
2021
2022SR_PRIV int logic_channel_unitsize(GSList *channels);
2023SR_PRIV struct soft_trigger_logic *soft_trigger_logic_new(
2024 const struct sr_dev_inst *sdi, struct sr_trigger *trigger,
2025 int pre_trigger_samples);
2026SR_PRIV void soft_trigger_logic_free(struct soft_trigger_logic *st);
2027SR_PRIV int soft_trigger_logic_check(struct soft_trigger_logic *st, uint8_t *buf,
2028 int len, int *pre_trigger_samples);
2029
2030/*--- serial.c --------------------------------------------------------------*/
2031
2032#ifdef HAVE_SERIAL_COMM
2033enum {
2034 SERIAL_RDWR = 1,
2035 SERIAL_RDONLY = 2,
2036};
2037
2038typedef gboolean (*packet_valid_callback)(const uint8_t *buf);
2039typedef int (*packet_valid_len_callback)(void *st,
2040 const uint8_t *p, size_t l, size_t *pl);
2041
2042typedef GSList *(*sr_ser_list_append_t)(GSList *devs, const char *name,
2043 const char *desc);
2044typedef GSList *(*sr_ser_find_append_t)(GSList *devs, const char *name);
2045
2046SR_PRIV int serial_open(struct sr_serial_dev_inst *serial, int flags);
2047SR_PRIV int serial_close(struct sr_serial_dev_inst *serial);
2048SR_PRIV int serial_flush(struct sr_serial_dev_inst *serial);
2049SR_PRIV int serial_drain(struct sr_serial_dev_inst *serial);
2050SR_PRIV size_t serial_has_receive_data(struct sr_serial_dev_inst *serial);
2051SR_PRIV int serial_write_blocking(struct sr_serial_dev_inst *serial,
2052 const void *buf, size_t count, unsigned int timeout_ms);
2053SR_PRIV int serial_write_nonblocking(struct sr_serial_dev_inst *serial,
2054 const void *buf, size_t count);
2055SR_PRIV int serial_read_blocking(struct sr_serial_dev_inst *serial, void *buf,
2056 size_t count, unsigned int timeout_ms);
2057SR_PRIV int serial_read_nonblocking(struct sr_serial_dev_inst *serial, void *buf,
2058 size_t count);
2059SR_PRIV int serial_set_read_chunk_cb(struct sr_serial_dev_inst *serial,
2060 serial_rx_chunk_callback cb, void *cb_data);
2061SR_PRIV int serial_set_params(struct sr_serial_dev_inst *serial, int baudrate,
2062 int bits, int parity, int stopbits, int flowcontrol, int rts, int dtr);
2063SR_PRIV int serial_set_handshake(struct sr_serial_dev_inst *serial,
2064 int rts, int dtr);
2065SR_PRIV int serial_set_paramstr(struct sr_serial_dev_inst *serial,
2066 const char *paramstr);
2067SR_PRIV int serial_readline(struct sr_serial_dev_inst *serial, char **buf,
2068 int *buflen, gint64 timeout_ms);
2069SR_PRIV int serial_stream_detect(struct sr_serial_dev_inst *serial,
2070 uint8_t *buf, size_t *buflen,
2071 size_t packet_size, packet_valid_callback is_valid,
2072 packet_valid_len_callback is_valid_len, size_t *return_size,
2073 uint64_t timeout_ms);
2074SR_PRIV int serial_source_add(struct sr_session *session,
2075 struct sr_serial_dev_inst *serial, int events, int timeout,
2076 sr_receive_data_callback cb, void *cb_data);
2077SR_PRIV int serial_source_remove(struct sr_session *session,
2078 struct sr_serial_dev_inst *serial);
2079SR_PRIV GSList *sr_serial_find_usb(uint16_t vendor_id, uint16_t product_id);
2080SR_PRIV int serial_timeout(struct sr_serial_dev_inst *port, int num_bytes);
2081
2082SR_PRIV void sr_ser_discard_queued_data(struct sr_serial_dev_inst *serial);
2083SR_PRIV size_t sr_ser_has_queued_data(struct sr_serial_dev_inst *serial);
2084SR_PRIV void sr_ser_queue_rx_data(struct sr_serial_dev_inst *serial,
2085 const uint8_t *data, size_t len);
2086SR_PRIV size_t sr_ser_unqueue_rx_data(struct sr_serial_dev_inst *serial,
2087 uint8_t *data, size_t len);
2088
2089struct ser_lib_functions {
2090 int (*open)(struct sr_serial_dev_inst *serial, int flags);
2091 int (*close)(struct sr_serial_dev_inst *serial);
2092 int (*flush)(struct sr_serial_dev_inst *serial);
2093 int (*drain)(struct sr_serial_dev_inst *serial);
2094 int (*write)(struct sr_serial_dev_inst *serial,
2095 const void *buf, size_t count,
2096 int nonblocking, unsigned int timeout_ms);
2097 int (*read)(struct sr_serial_dev_inst *serial,
2098 void *buf, size_t count,
2099 int nonblocking, unsigned int timeout_ms);
2100 int (*set_params)(struct sr_serial_dev_inst *serial,
2101 int baudrate, int bits, int parity, int stopbits,
2102 int flowcontrol, int rts, int dtr);
2103 int (*set_handshake)(struct sr_serial_dev_inst *serial,
2104 int rts, int dtr);
2105 int (*setup_source_add)(struct sr_session *session,
2106 struct sr_serial_dev_inst *serial,
2107 int events, int timeout,
2108 sr_receive_data_callback cb, void *cb_data);
2109 int (*setup_source_remove)(struct sr_session *session,
2110 struct sr_serial_dev_inst *serial);
2111 GSList *(*list)(GSList *list, sr_ser_list_append_t append);
2112 GSList *(*find_usb)(GSList *list, sr_ser_find_append_t append,
2113 uint16_t vendor_id, uint16_t product_id);
2114 int (*get_frame_format)(struct sr_serial_dev_inst *serial,
2115 int *baud, int *bits);
2116 size_t (*get_rx_avail)(struct sr_serial_dev_inst *serial);
2117};
2118extern SR_PRIV struct ser_lib_functions *ser_lib_funcs_libsp;
2119SR_PRIV int ser_name_is_hid(struct sr_serial_dev_inst *serial);
2120extern SR_PRIV struct ser_lib_functions *ser_lib_funcs_hid;
2121SR_PRIV int ser_name_is_bt(struct sr_serial_dev_inst *serial);
2122extern SR_PRIV struct ser_lib_functions *ser_lib_funcs_bt;
2123SR_PRIV int ser_name_is_tcpraw(struct sr_serial_dev_inst *serial);
2124extern SR_PRIV struct ser_lib_functions *ser_lib_funcs_tcpraw;
2125
2126#ifdef HAVE_LIBHIDAPI
2127struct vid_pid_item {
2128 uint16_t vid, pid;
2129};
2130
2131struct ser_hid_chip_functions {
2132 const char *chipname;
2133 const char *chipdesc;
2134 const struct vid_pid_item *vid_pid_items;
2135 const int max_bytes_per_request;
2136 int (*set_params)(struct sr_serial_dev_inst *serial,
2137 int baudrate, int bits, int parity, int stopbits,
2138 int flowcontrol, int rts, int dtr);
2139 int (*read_bytes)(struct sr_serial_dev_inst *serial,
2140 uint8_t *data, int space, unsigned int timeout);
2141 int (*write_bytes)(struct sr_serial_dev_inst *serial,
2142 const uint8_t *data, int space);
2143 int (*flush)(struct sr_serial_dev_inst *serial);
2144 int (*drain)(struct sr_serial_dev_inst *serial);
2145};
2146extern SR_PRIV struct ser_hid_chip_functions *ser_hid_chip_funcs_bu86x;
2147extern SR_PRIV struct ser_hid_chip_functions *ser_hid_chip_funcs_ch9325;
2148extern SR_PRIV struct ser_hid_chip_functions *ser_hid_chip_funcs_cp2110;
2149extern SR_PRIV struct ser_hid_chip_functions *ser_hid_chip_funcs_victor;
2150SR_PRIV const char *ser_hid_chip_find_name_vid_pid(uint16_t vid, uint16_t pid);
2151#endif
2152#endif
2153
2154SR_PRIV int sr_serial_extract_options(GSList *options,
2155 const char **serial_device, const char **serial_options);
2156
2157/*--- bt/ API ---------------------------------------------------------------*/
2158
2159#ifdef HAVE_BLUETOOTH
2160SR_PRIV const char *sr_bt_adapter_get_address(size_t idx);
2161
2162struct sr_bt_desc;
2163typedef void (*sr_bt_scan_cb)(void *cb_data, const char *addr, const char *name);
2164typedef int (*sr_bt_data_cb)(void *cb_data, uint8_t *data, size_t dlen);
2165
2166SR_PRIV struct sr_bt_desc *sr_bt_desc_new(void);
2167SR_PRIV void sr_bt_desc_free(struct sr_bt_desc *desc);
2168
2169SR_PRIV int sr_bt_config_cb_scan(struct sr_bt_desc *desc,
2170 sr_bt_scan_cb cb, void *cb_data);
2171SR_PRIV int sr_bt_config_cb_data(struct sr_bt_desc *desc,
2172 sr_bt_data_cb cb, void *cb_data);
2173SR_PRIV int sr_bt_config_addr_local(struct sr_bt_desc *desc, const char *addr);
2174SR_PRIV int sr_bt_config_addr_remote(struct sr_bt_desc *desc, const char *addr);
2175SR_PRIV int sr_bt_config_rfcomm(struct sr_bt_desc *desc, size_t channel);
2176SR_PRIV int sr_bt_config_notify(struct sr_bt_desc *desc,
2177 uint16_t read_handle, uint16_t write_handle,
2178 uint16_t cccd_handle, uint16_t cccd_value,
2179 uint16_t ble_mtu);
2180
2181SR_PRIV int sr_bt_scan_le(struct sr_bt_desc *desc, int duration);
2182SR_PRIV int sr_bt_scan_bt(struct sr_bt_desc *desc, int duration);
2183
2184SR_PRIV int sr_bt_connect_ble(struct sr_bt_desc *desc);
2185SR_PRIV int sr_bt_connect_rfcomm(struct sr_bt_desc *desc);
2186SR_PRIV void sr_bt_disconnect(struct sr_bt_desc *desc);
2187
2188SR_PRIV ssize_t sr_bt_read(struct sr_bt_desc *desc,
2189 void *data, size_t len);
2190SR_PRIV ssize_t sr_bt_write(struct sr_bt_desc *desc,
2191 const void *data, size_t len);
2192
2193SR_PRIV int sr_bt_start_notify(struct sr_bt_desc *desc);
2194SR_PRIV int sr_bt_check_notify(struct sr_bt_desc *desc);
2195#endif
2196
2197/*--- ezusb.c ---------------------------------------------------------------*/
2198
2199#ifdef HAVE_LIBUSB_1_0
2200SR_PRIV int ezusb_reset(struct libusb_device_handle *hdl, int set_clear);
2201SR_PRIV int ezusb_install_firmware(struct sr_context *ctx, libusb_device_handle *hdl,
2202 const char *name);
2203SR_PRIV int ezusb_upload_firmware(struct sr_context *ctx, libusb_device *dev,
2204 int configuration, const char *name);
2205#endif
2206
2207/*--- usb.c -----------------------------------------------------------------*/
2208
2209SR_PRIV int sr_usb_split_conn(const char *conn,
2210 uint16_t *vid, uint16_t *pid, uint8_t *bus, uint8_t *addr);
2211#ifdef HAVE_LIBUSB_1_0
2212SR_PRIV GSList *sr_usb_find(libusb_context *usb_ctx, const char *conn);
2213SR_PRIV int sr_usb_open(libusb_context *usb_ctx, struct sr_usb_dev_inst *usb);
2214SR_PRIV void sr_usb_close(struct sr_usb_dev_inst *usb);
2215SR_PRIV int usb_source_add(struct sr_session *session, struct sr_context *ctx,
2216 int timeout, sr_receive_data_callback cb, void *cb_data);
2217SR_PRIV int usb_source_remove(struct sr_session *session, struct sr_context *ctx);
2218SR_PRIV int usb_get_port_path(libusb_device *dev, char *path, int path_len);
2219SR_PRIV gboolean usb_match_manuf_prod(libusb_device *dev,
2220 const char *manufacturer, const char *product);
2221#endif
2222
2223/*--- tcp.c -----------------------------------------------------------------*/
2224
2225SR_PRIV gboolean sr_fd_is_readable(int fd);
2226
2227SR_PRIV struct sr_tcp_dev_inst *sr_tcp_dev_inst_new(
2228 const char *host_addr, const char *tcp_port);
2229SR_PRIV void sr_tcp_dev_inst_free(struct sr_tcp_dev_inst *tcp);
2230SR_PRIV int sr_tcp_get_port_path(struct sr_tcp_dev_inst *tcp,
2231 const char *prefix, char separator, char *path, size_t path_len);
2232SR_PRIV int sr_tcp_connect(struct sr_tcp_dev_inst *tcp);
2233SR_PRIV int sr_tcp_disconnect(struct sr_tcp_dev_inst *tcp);
2234SR_PRIV int sr_tcp_write_bytes(struct sr_tcp_dev_inst *tcp,
2235 const uint8_t *data, size_t dlen);
2236SR_PRIV int sr_tcp_read_bytes(struct sr_tcp_dev_inst *tcp,
2237 uint8_t *data, size_t dlen, gboolean nonblocking);
2238SR_PRIV int sr_tcp_source_add(struct sr_session *session,
2239 struct sr_tcp_dev_inst *tcp, int events, int timeout,
2240 sr_receive_data_callback cb, void *cb_data);
2241SR_PRIV int sr_tcp_source_remove(struct sr_session *session,
2242 struct sr_tcp_dev_inst *tcp);
2243
2244/*--- binary_helpers.c ------------------------------------------------------*/
2245
2246/** Binary value type */
2247enum binary_value_type {
2248 BVT_INVALID,
2249
2250 BVT_UINT8,
2251
2252 BVT_BE_UINT16,
2253 BVT_BE_UINT24,
2254 BVT_BE_UINT32,
2255
2256 BVT_LE_UINT16,
2257 BVT_LE_UINT24,
2258 BVT_LE_UINT32,
2259};
2260
2261/** Binary value specification */
2262struct binary_value_spec {
2263 size_t offset; /**!< Offset into binary image */
2264 enum binary_value_type type; /**!< Data type to decode */
2265};
2266
2267/**
2268 * Read extract a value from a binary data image, ensuring no out-of-bounds
2269 * read happens.
2270 *
2271 * @param[out] out Pointer to output buffer (conversion result)
2272 * @param[in] spec Binary value specification
2273 * @param[in] data Pointer to binary input data
2274 * @param[in] length Size of binary input data
2275 *
2276 * @return SR_OK on success, SR_ERR_* error code on failure.
2277 */
2278SR_PRIV int bv_get_value_len(float *out, const struct binary_value_spec *spec,
2279 const uint8_t *data, size_t length);
2280
2281/**
2282 * Read extract a value from a binary data image, without bound check.
2283 *
2284 * @param[out] out Pointer to output buffer (conversion result)
2285 * @param[in] spec Binary value specification
2286 * @param[in] data Pointer to binary input data
2287 *
2288 * @return SR_OK on success, SR_ERR_* error code on failure.
2289 */
2290SR_PRIV int bv_get_value(float *out, const struct binary_value_spec *spec,
2291 const uint8_t *data);
2292
2293/*--- crc.c -----------------------------------------------------------------*/
2294
2295#define SR_CRC16_DEFAULT_INIT 0xffffU
2296
2297/**
2298 * Calculate a CRC16 checksum using the 0x8005 polynomial.
2299 *
2300 * This CRC16 flavor is also known as CRC16-ANSI or CRC16-MODBUS.
2301 *
2302 * @param crc Initial value (typically 0xffff)
2303 * @param buffer Input buffer
2304 * @param len Buffer length
2305 * @return Checksum
2306 */
2307SR_PRIV uint16_t sr_crc16(uint16_t crc, const uint8_t *buffer, int len);
2308
2309/*--- modbus/modbus.c -------------------------------------------------------*/
2310
2311struct sr_modbus_dev_inst {
2312 const char *name;
2313 const char *prefix;
2314 int priv_size;
2315 GSList *(*scan)(int modbusaddr);
2316 int (*dev_inst_new)(void *priv, const char *resource,
2317 char **params, const char *serialcomm, int modbusaddr);
2318 int (*open)(void *priv);
2319 int (*source_add)(struct sr_session *session, void *priv, int events,
2320 int timeout, sr_receive_data_callback cb, void *cb_data);
2321 int (*source_remove)(struct sr_session *session, void *priv);
2322 int (*send)(void *priv, const uint8_t *buffer, int buffer_size);
2323 int (*read_begin)(void *priv, uint8_t *function_code);
2324 int (*read_data)(void *priv, uint8_t *buf, int maxlen);
2325 int (*read_end)(void *priv);
2326 int (*close)(void *priv);
2327 void (*free)(void *priv);
2328 unsigned int read_timeout_ms;
2329 void *priv;
2330};
2331
2332SR_PRIV GSList *sr_modbus_scan(struct drv_context *drvc, GSList *options,
2333 struct sr_dev_inst *(*probe_device)(struct sr_modbus_dev_inst *modbus));
2334SR_PRIV struct sr_modbus_dev_inst *modbus_dev_inst_new(const char *resource,
2335 const char *serialcomm, int modbusaddr);
2336SR_PRIV int sr_modbus_open(struct sr_modbus_dev_inst *modbus);
2337SR_PRIV int sr_modbus_source_add(struct sr_session *session,
2338 struct sr_modbus_dev_inst *modbus, int events, int timeout,
2339 sr_receive_data_callback cb, void *cb_data);
2340SR_PRIV int sr_modbus_source_remove(struct sr_session *session,
2341 struct sr_modbus_dev_inst *modbus);
2342SR_PRIV int sr_modbus_request(struct sr_modbus_dev_inst *modbus,
2343 uint8_t *request, int request_size);
2344SR_PRIV int sr_modbus_reply(struct sr_modbus_dev_inst *modbus,
2345 uint8_t *reply, int reply_size);
2346SR_PRIV int sr_modbus_request_reply(struct sr_modbus_dev_inst *modbus,
2347 uint8_t *request, int request_size,
2348 uint8_t *reply, int reply_size);
2349SR_PRIV int sr_modbus_read_coils(struct sr_modbus_dev_inst *modbus,
2350 int address, int nb_coils, uint8_t *coils);
2351SR_PRIV int sr_modbus_read_holding_registers(struct sr_modbus_dev_inst *modbus,
2352 int address, int nb_registers,
2353 uint16_t *registers);
2354SR_PRIV int sr_modbus_write_coil(struct sr_modbus_dev_inst *modbus,
2355 int address, int value);
2356SR_PRIV int sr_modbus_write_multiple_registers(struct sr_modbus_dev_inst*modbus,
2357 int address, int nb_registers,
2358 uint16_t *registers);
2359SR_PRIV int sr_modbus_close(struct sr_modbus_dev_inst *modbus);
2360SR_PRIV void sr_modbus_free(struct sr_modbus_dev_inst *modbus);
2361
2362/*--- dmm/es519xx.c ---------------------------------------------------------*/
2363
2364/**
2365 * All 11-byte es519xx chips repeat each block twice for each conversion cycle
2366 * so always read 2 blocks at a time.
2367 */
2368#define ES519XX_11B_PACKET_SIZE (11 * 2)
2369#define ES519XX_14B_PACKET_SIZE 14
2370
2371struct es519xx_info {
2372 gboolean is_judge, is_voltage, is_auto, is_micro, is_current;
2373 gboolean is_milli, is_resistance, is_continuity, is_diode;
2374 gboolean is_frequency, is_rpm, is_capacitance, is_duty_cycle;
2375 gboolean is_temperature, is_celsius, is_fahrenheit;
2376 gboolean is_adp0, is_adp1, is_adp2, is_adp3;
2377 gboolean is_sign, is_batt, is_ol, is_pmax, is_pmin, is_apo;
2378 gboolean is_dc, is_ac, is_vahz, is_min, is_max, is_rel, is_hold;
2379 gboolean is_digit4, is_ul, is_vasel, is_vbar, is_lpf1, is_lpf0, is_rmr;
2380 uint32_t baudrate;
2381 int packet_size;
2382 gboolean alt_functions, fivedigits, clampmeter, selectable_lpf;
2383 int digits;
2384};
2385
2386SR_PRIV gboolean sr_es519xx_2400_11b_packet_valid(const uint8_t *buf);
2387SR_PRIV int sr_es519xx_2400_11b_parse(const uint8_t *buf, float *floatval,
2388 struct sr_datafeed_analog *analog, void *info);
2389SR_PRIV gboolean sr_es519xx_2400_11b_altfn_packet_valid(const uint8_t *buf);
2390SR_PRIV int sr_es519xx_2400_11b_altfn_parse(const uint8_t *buf,
2391 float *floatval, struct sr_datafeed_analog *analog, void *info);
2392SR_PRIV gboolean sr_es519xx_19200_11b_5digits_packet_valid(const uint8_t *buf);
2393SR_PRIV int sr_es519xx_19200_11b_5digits_parse(const uint8_t *buf,
2394 float *floatval, struct sr_datafeed_analog *analog, void *info);
2395SR_PRIV gboolean sr_es519xx_19200_11b_clamp_packet_valid(const uint8_t *buf);
2396SR_PRIV int sr_es519xx_19200_11b_clamp_parse(const uint8_t *buf,
2397 float *floatval, struct sr_datafeed_analog *analog, void *info);
2398SR_PRIV gboolean sr_es519xx_19200_11b_packet_valid(const uint8_t *buf);
2399SR_PRIV int sr_es519xx_19200_11b_parse(const uint8_t *buf, float *floatval,
2400 struct sr_datafeed_analog *analog, void *info);
2401SR_PRIV gboolean sr_es519xx_19200_14b_packet_valid(const uint8_t *buf);
2402SR_PRIV int sr_es519xx_19200_14b_parse(const uint8_t *buf, float *floatval,
2403 struct sr_datafeed_analog *analog, void *info);
2404SR_PRIV gboolean sr_es519xx_19200_14b_sel_lpf_packet_valid(const uint8_t *buf);
2405SR_PRIV int sr_es519xx_19200_14b_sel_lpf_parse(const uint8_t *buf,
2406 float *floatval, struct sr_datafeed_analog *analog, void *info);
2407
2408/*--- dmm/fs9922.c ----------------------------------------------------------*/
2409
2410#define FS9922_PACKET_SIZE 14
2411
2412struct fs9922_info {
2413 gboolean is_auto, is_dc, is_ac, is_rel, is_hold, is_bpn, is_z1, is_z2;
2414 gboolean is_max, is_min, is_apo, is_bat, is_nano, is_z3, is_micro;
2415 gboolean is_milli, is_kilo, is_mega, is_beep, is_diode, is_percent;
2416 gboolean is_z4, is_volt, is_ampere, is_ohm, is_hfe, is_hertz, is_farad;
2417 gboolean is_celsius, is_fahrenheit;
2418 int bargraph_sign, bargraph_value;
2419};
2420
2421SR_PRIV gboolean sr_fs9922_packet_valid(const uint8_t *buf);
2422SR_PRIV int sr_fs9922_parse(const uint8_t *buf, float *floatval,
2423 struct sr_datafeed_analog *analog, void *info);
2424SR_PRIV void sr_fs9922_z1_diode(struct sr_datafeed_analog *analog, void *info);
2425
2426/*--- dmm/fs9721.c ----------------------------------------------------------*/
2427
2428#define FS9721_PACKET_SIZE 14
2429
2430struct fs9721_info {
2431 gboolean is_ac, is_dc, is_auto, is_rs232, is_micro, is_nano, is_kilo;
2432 gboolean is_diode, is_milli, is_percent, is_mega, is_beep, is_farad;
2433 gboolean is_ohm, is_rel, is_hold, is_ampere, is_volt, is_hz, is_bat;
2434 gboolean is_c2c1_11, is_c2c1_10, is_c2c1_01, is_c2c1_00, is_sign;
2435};
2436
2437SR_PRIV gboolean sr_fs9721_packet_valid(const uint8_t *buf);
2438SR_PRIV int sr_fs9721_parse(const uint8_t *buf, float *floatval,
2439 struct sr_datafeed_analog *analog, void *info);
2440SR_PRIV void sr_fs9721_00_temp_c(struct sr_datafeed_analog *analog, void *info);
2441SR_PRIV void sr_fs9721_01_temp_c(struct sr_datafeed_analog *analog, void *info);
2442SR_PRIV void sr_fs9721_10_temp_c(struct sr_datafeed_analog *analog, void *info);
2443SR_PRIV void sr_fs9721_01_10_temp_f_c(struct sr_datafeed_analog *analog, void *info);
2444SR_PRIV void sr_fs9721_max_c_min(struct sr_datafeed_analog *analog, void *info);
2445
2446/*--- dmm/mm38xr.c ---------------------------------------------------------*/
2447
2448#define METERMAN_38XR_PACKET_SIZE 15
2449
2450struct meterman_38xr_info { int dummy; };
2451
2452SR_PRIV gboolean meterman_38xr_packet_valid(const uint8_t *buf);
2453SR_PRIV int meterman_38xr_parse(const uint8_t *buf, float *floatval,
2454 struct sr_datafeed_analog *analog, void *info);
2455
2456/*--- dmm/ms2115b.c ---------------------------------------------------------*/
2457
2458#define MS2115B_PACKET_SIZE 9
2459
2460enum ms2115b_display {
2461 MS2115B_DISPLAY_MAIN,
2462 MS2115B_DISPLAY_SUB,
2463 MS2115B_DISPLAY_COUNT,
2464};
2465
2466struct ms2115b_info {
2467 /* Selected channel. */
2468 size_t ch_idx;
2469 gboolean is_ac, is_dc, is_auto;
2470 gboolean is_diode, is_beep, is_farad;
2471 gboolean is_ohm, is_ampere, is_volt, is_hz;
2472 gboolean is_duty_cycle, is_percent;
2473};
2474
2475extern SR_PRIV const char *ms2115b_channel_formats[];
2476SR_PRIV gboolean sr_ms2115b_packet_valid(const uint8_t *buf);
2477SR_PRIV int sr_ms2115b_parse(const uint8_t *buf, float *floatval,
2478 struct sr_datafeed_analog *analog, void *info);
2479
2480/*--- dmm/ms8250d.c ---------------------------------------------------------*/
2481
2482#define MS8250D_PACKET_SIZE 18
2483
2484struct ms8250d_info {
2485 gboolean is_ac, is_dc, is_auto, is_rs232, is_micro, is_nano, is_kilo;
2486 gboolean is_diode, is_milli, is_percent, is_mega, is_beep, is_farad;
2487 gboolean is_ohm, is_rel, is_hold, is_ampere, is_volt, is_hz, is_bat;
2488 gboolean is_ncv, is_min, is_max, is_sign, is_autotimer;
2489};
2490
2491SR_PRIV gboolean sr_ms8250d_packet_valid(const uint8_t *buf);
2492SR_PRIV int sr_ms8250d_parse(const uint8_t *buf, float *floatval,
2493 struct sr_datafeed_analog *analog, void *info);
2494
2495/*--- dmm/dtm0660.c ---------------------------------------------------------*/
2496
2497#define DTM0660_PACKET_SIZE 15
2498
2499struct dtm0660_info {
2500 gboolean is_ac, is_dc, is_auto, is_rs232, is_micro, is_nano, is_kilo;
2501 gboolean is_diode, is_milli, is_percent, is_mega, is_beep, is_farad;
2502 gboolean is_ohm, is_rel, is_hold, is_ampere, is_volt, is_hz, is_bat;
2503 gboolean is_degf, is_degc, is_c2c1_01, is_c2c1_00, is_apo, is_min;
2504 gboolean is_minmax, is_max, is_sign;
2505};
2506
2507SR_PRIV gboolean sr_dtm0660_packet_valid(const uint8_t *buf);
2508SR_PRIV int sr_dtm0660_parse(const uint8_t *buf, float *floatval,
2509 struct sr_datafeed_analog *analog, void *info);
2510
2511/*--- dmm/m2110.c -----------------------------------------------------------*/
2512
2513#define BBCGM_M2110_PACKET_SIZE 9
2514
2515/* Dummy info struct. The parser does not use it. */
2516struct m2110_info { int dummy; };
2517
2518SR_PRIV gboolean sr_m2110_packet_valid(const uint8_t *buf);
2519SR_PRIV int sr_m2110_parse(const uint8_t *buf, float *floatval,
2520 struct sr_datafeed_analog *analog, void *info);
2521
2522/*--- dmm/metex14.c ---------------------------------------------------------*/
2523
2524#define METEX14_PACKET_SIZE 14
2525
2526struct metex14_info {
2527 size_t ch_idx;
2528 gboolean is_ac, is_dc, is_resistance, is_capacity, is_temperature;
2529 gboolean is_diode, is_frequency, is_ampere, is_volt, is_farad;
2530 gboolean is_hertz, is_ohm, is_celsius, is_fahrenheit, is_watt;
2531 gboolean is_pico, is_nano, is_micro, is_milli, is_kilo, is_mega;
2532 gboolean is_gain, is_decibel, is_power, is_decibel_mw, is_power_factor;
2533 gboolean is_hfe, is_unitless, is_logic, is_min, is_max, is_avg;
2534};
2535
2536#ifdef HAVE_SERIAL_COMM
2537SR_PRIV int sr_metex14_packet_request(struct sr_serial_dev_inst *serial);
2538#endif
2539SR_PRIV gboolean sr_metex14_packet_valid(const uint8_t *buf);
2540SR_PRIV int sr_metex14_parse(const uint8_t *buf, float *floatval,
2541 struct sr_datafeed_analog *analog, void *info);
2542SR_PRIV gboolean sr_metex14_4packets_valid(const uint8_t *buf);
2543SR_PRIV int sr_metex14_4packets_parse(const uint8_t *buf, float *floatval,
2544 struct sr_datafeed_analog *analog, void *info);
2545
2546/*--- dmm/rs9lcd.c ----------------------------------------------------------*/
2547
2548#define RS9LCD_PACKET_SIZE 9
2549
2550/* Dummy info struct. The parser does not use it. */
2551struct rs9lcd_info { int dummy; };
2552
2553SR_PRIV gboolean sr_rs9lcd_packet_valid(const uint8_t *buf);
2554SR_PRIV int sr_rs9lcd_parse(const uint8_t *buf, float *floatval,
2555 struct sr_datafeed_analog *analog, void *info);
2556
2557/*--- dmm/bm25x.c -----------------------------------------------------------*/
2558
2559#define BRYMEN_BM25X_PACKET_SIZE 15
2560
2561/* Dummy info struct. The parser does not use it. */
2562struct bm25x_info { int dummy; };
2563
2564SR_PRIV gboolean sr_brymen_bm25x_packet_valid(const uint8_t *buf);
2565SR_PRIV int sr_brymen_bm25x_parse(const uint8_t *buf, float *floatval,
2566 struct sr_datafeed_analog *analog, void *info);
2567
2568/*--- dmm/bm52x.c -----------------------------------------------------------*/
2569
2570#define BRYMEN_BM52X_PACKET_SIZE 24
2571#define BRYMEN_BM52X_DISPLAY_COUNT 2
2572
2573struct brymen_bm52x_info { size_t ch_idx; };
2574
2575#ifdef HAVE_SERIAL_COMM
2576SR_PRIV int sr_brymen_bm52x_packet_request(struct sr_serial_dev_inst *serial);
2577SR_PRIV int sr_brymen_bm82x_packet_request(struct sr_serial_dev_inst *serial);
2578#endif
2579SR_PRIV gboolean sr_brymen_bm52x_packet_valid(const uint8_t *buf);
2580SR_PRIV gboolean sr_brymen_bm82x_packet_valid(const uint8_t *buf);
2581/* BM520s and BM820s protocols are similar, the parse routine is shared. */
2582SR_PRIV int sr_brymen_bm52x_parse(const uint8_t *buf, float *floatval,
2583 struct sr_datafeed_analog *analog, void *info);
2584
2585struct brymen_bm52x_state;
2586
2587SR_PRIV void *brymen_bm52x_state_init(void);
2588SR_PRIV void brymen_bm52x_state_free(void *state);
2589SR_PRIV int brymen_bm52x_config_get(void *state, uint32_t key, GVariant **data,
2590 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg);
2591SR_PRIV int brymen_bm52x_config_set(void *state, uint32_t key, GVariant *data,
2592 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg);
2593SR_PRIV int brymen_bm52x_config_list(void *state, uint32_t key, GVariant **data,
2594 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg);
2595SR_PRIV int brymen_bm52x_acquire_start(void *state,
2596 const struct sr_dev_inst *sdi,
2597 sr_receive_data_callback *cb, void **cb_data);
2598
2599/*--- dmm/bm85x.c -----------------------------------------------------------*/
2600
2601#define BRYMEN_BM85x_PACKET_SIZE_MIN 4
2602
2603struct brymen_bm85x_info { int dummy; };
2604
2605#ifdef HAVE_SERIAL_COMM
2606SR_PRIV int brymen_bm85x_after_open(struct sr_serial_dev_inst *serial);
2607SR_PRIV int brymen_bm85x_packet_request(struct sr_serial_dev_inst *serial);
2608#endif
2609SR_PRIV gboolean brymen_bm85x_packet_valid(void *state,
2610 const uint8_t *buf, size_t len, size_t *pkt_len);
2611SR_PRIV int brymen_bm85x_parse(void *state, const uint8_t *buf, size_t len,
2612 double *floatval, struct sr_datafeed_analog *analog, void *info);
2613
2614/*--- dmm/bm86x.c -----------------------------------------------------------*/
2615
2616#define BRYMEN_BM86X_PACKET_SIZE 24
2617#define BRYMEN_BM86X_DISPLAY_COUNT 2
2618
2619struct brymen_bm86x_info { size_t ch_idx; };
2620
2621#ifdef HAVE_SERIAL_COMM
2622SR_PRIV int sr_brymen_bm86x_packet_request(struct sr_serial_dev_inst *serial);
2623#endif
2624SR_PRIV gboolean sr_brymen_bm86x_packet_valid(const uint8_t *buf);
2625SR_PRIV int sr_brymen_bm86x_parse(const uint8_t *buf, float *floatval,
2626 struct sr_datafeed_analog *analog, void *info);
2627
2628/*--- dmm/ut71x.c -----------------------------------------------------------*/
2629
2630#define UT71X_PACKET_SIZE 11
2631
2632struct ut71x_info {
2633 gboolean is_voltage, is_resistance, is_capacitance, is_temperature;
2634 gboolean is_celsius, is_fahrenheit, is_current, is_continuity;
2635 gboolean is_diode, is_frequency, is_duty_cycle, is_dc, is_ac;
2636 gboolean is_auto, is_manual, is_sign, is_power, is_loop_current;
2637};
2638
2639SR_PRIV gboolean sr_ut71x_packet_valid(const uint8_t *buf);
2640SR_PRIV int sr_ut71x_parse(const uint8_t *buf, float *floatval,
2641 struct sr_datafeed_analog *analog, void *info);
2642
2643/*--- dmm/vc870.c -----------------------------------------------------------*/
2644
2645#define VC870_PACKET_SIZE 23
2646
2647struct vc870_info {
2648 gboolean is_voltage, is_dc, is_ac, is_temperature, is_resistance;
2649 gboolean is_continuity, is_capacitance, is_diode, is_loop_current;
2650 gboolean is_current, is_micro, is_milli, is_power;
2651 gboolean is_power_factor_freq, is_power_apparent_power, is_v_a_rms_value;
2652 gboolean is_sign2, is_sign1, is_batt, is_ol1, is_max, is_min;
2653 gboolean is_maxmin, is_rel, is_ol2, is_open, is_manu, is_hold;
2654 gboolean is_light, is_usb, is_warning, is_auto_power, is_misplug_warn;
2655 gboolean is_lo, is_hi, is_open2;
2656
2657 gboolean is_frequency, is_dual_display, is_auto;
2658};
2659
2660SR_PRIV gboolean sr_vc870_packet_valid(const uint8_t *buf);
2661SR_PRIV int sr_vc870_parse(const uint8_t *buf, float *floatval,
2662 struct sr_datafeed_analog *analog, void *info);
2663
2664/*--- dmm/vc96.c ------------------------------------------------------------*/
2665
2666#define VC96_PACKET_SIZE 13
2667
2668struct vc96_info {
2669 size_t ch_idx;
2670 gboolean is_ac, is_dc, is_resistance, is_diode, is_ampere, is_volt;
2671 gboolean is_ohm, is_micro, is_milli, is_kilo, is_mega, is_hfe;
2672 gboolean is_unitless;
2673};
2674
2675SR_PRIV gboolean sr_vc96_packet_valid(const uint8_t *buf);
2676SR_PRIV int sr_vc96_parse(const uint8_t *buf, float *floatval,
2677 struct sr_datafeed_analog *analog, void *info);
2678
2679/*--- lcr/es51919.c ---------------------------------------------------------*/
2680
2681/* Acquisition details which apply to all supported serial-lcr devices. */
2682struct lcr_parse_info {
2683 size_t ch_idx;
2684 uint64_t output_freq;
2685 const char *circuit_model;
2686};
2687
2688#define ES51919_PACKET_SIZE 17
2689#define ES51919_CHANNEL_COUNT 2
2690#define ES51919_COMM_PARAM "9600/8n1/rts=1/dtr=1"
2691
2692SR_PRIV int es51919_config_get(uint32_t key, GVariant **data,
2693 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg);
2694SR_PRIV int es51919_config_set(uint32_t key, GVariant *data,
2695 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg);
2696SR_PRIV int es51919_config_list(uint32_t key, GVariant **data,
2697 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg);
2698SR_PRIV gboolean es51919_packet_valid(const uint8_t *pkt);
2699SR_PRIV int es51919_packet_parse(const uint8_t *pkt, float *floatval,
2700 struct sr_datafeed_analog *analog, void *info);
2701
2702/*--- lcr/vc4080.c ----------------------------------------------------------*/
2703
2704/* Note: Also uses 'struct lcr_parse_info' from es51919 above. */
2705
2706#define VC4080_PACKET_SIZE 39
2707#define VC4080_COMM_PARAM "1200/8n1"
2708#define VC4080_WITH_DQ_CHANS 0 /* Enable separate D/Q channels? */
2709
2710enum vc4080_display {
2711 VC4080_DISPLAY_PRIMARY,
2712 VC4080_DISPLAY_SECONDARY,
2713#if VC4080_WITH_DQ_CHANS
2714 VC4080_DISPLAY_D_VALUE,
2715 VC4080_DISPLAY_Q_VALUE,
2716#endif
2717 VC4080_CHANNEL_COUNT,
2718};
2719
2720extern SR_PRIV const char *vc4080_channel_formats[VC4080_CHANNEL_COUNT];
2721
2722SR_PRIV int vc4080_config_list(uint32_t key, GVariant **data,
2723 const struct sr_dev_inst *sdi, const struct sr_channel_group *cg);
2724SR_PRIV int vc4080_packet_request(struct sr_serial_dev_inst *serial);
2725SR_PRIV gboolean vc4080_packet_valid(const uint8_t *pkt);
2726SR_PRIV int vc4080_packet_parse(const uint8_t *pkt, float *floatval,
2727 struct sr_datafeed_analog *analog, void *info);
2728
2729/*--- dmm/ut372.c -----------------------------------------------------------*/
2730
2731#define UT372_PACKET_SIZE 27
2732
2733struct ut372_info {
2734 int dummy;
2735};
2736
2737SR_PRIV gboolean sr_ut372_packet_valid(const uint8_t *buf);
2738SR_PRIV int sr_ut372_parse(const uint8_t *buf, float *floatval,
2739 struct sr_datafeed_analog *analog, void *info);
2740
2741/*--- dmm/asycii.c ----------------------------------------------------------*/
2742
2743#define ASYCII_PACKET_SIZE 16
2744
2745struct asycii_info {
2746 gboolean is_ac, is_dc, is_ac_and_dc;
2747 gboolean is_resistance, is_capacitance, is_diode, is_gain;
2748 gboolean is_frequency, is_duty_cycle, is_duty_pos, is_duty_neg;
2749 gboolean is_pulse_width, is_period_pos, is_period_neg;
2750 gboolean is_pulse_count, is_count_pos, is_count_neg;
2751 gboolean is_ampere, is_volt, is_volt_ampere, is_farad, is_ohm;
2752 gboolean is_hertz, is_percent, is_seconds, is_decibel;
2753 gboolean is_pico, is_nano, is_micro, is_milli, is_kilo, is_mega;
2754 gboolean is_unitless;
2755 gboolean is_peak_min, is_peak_max;
2756 gboolean is_invalid;
2757};
2758
2759#ifdef HAVE_SERIAL_COMM
2760SR_PRIV int sr_asycii_packet_request(struct sr_serial_dev_inst *serial);
2761#endif
2762SR_PRIV gboolean sr_asycii_packet_valid(const uint8_t *buf);
2763SR_PRIV int sr_asycii_parse(const uint8_t *buf, float *floatval,
2764 struct sr_datafeed_analog *analog, void *info);
2765
2766/*--- dmm/eev121gw.c --------------------------------------------------------*/
2767
2768#define EEV121GW_PACKET_SIZE 19
2769
2770enum eev121gw_display {
2771 EEV121GW_DISPLAY_MAIN,
2772 EEV121GW_DISPLAY_SUB,
2773 EEV121GW_DISPLAY_BAR,
2774 EEV121GW_DISPLAY_COUNT,
2775};
2776
2777struct eev121gw_info {
2778 /* Selected channel. */
2779 size_t ch_idx;
2780 /*
2781 * Measured value, number and sign/overflow flags, scale factor
2782 * and significant digits.
2783 */
2784 uint32_t uint_value;
2785 gboolean is_ofl, is_neg;
2786 int factor, digits;
2787 /* Currently active mode (meter's function). */
2788 gboolean is_ac, is_dc, is_voltage, is_current, is_power, is_gain;
2789 gboolean is_resistance, is_capacitance, is_diode, is_temperature;
2790 gboolean is_continuity, is_frequency, is_period, is_duty_cycle;
2791 /* Quantities associated with mode/function. */
2792 gboolean is_ampere, is_volt, is_volt_ampere, is_dbm;
2793 gboolean is_ohm, is_farad, is_celsius, is_fahrenheit;
2794 gboolean is_hertz, is_seconds, is_percent, is_loop_current;
2795 gboolean is_unitless, is_logic;
2796 /* Other indicators. */
2797 gboolean is_min, is_max, is_avg, is_1ms_peak, is_rel, is_hold;
2798 gboolean is_low_pass, is_mem, is_bt, is_auto_range, is_test;
2799 gboolean is_auto_poweroff, is_low_batt;
2800};
2801
2802extern SR_PRIV const char *eev121gw_channel_formats[];
2803SR_PRIV gboolean sr_eev121gw_packet_valid(const uint8_t *buf);
2804SR_PRIV int sr_eev121gw_3displays_parse(const uint8_t *buf, float *floatval,
2805 struct sr_datafeed_analog *analog, void *info);
2806
2807/*--- scale/kern.c ----------------------------------------------------------*/
2808
2809struct kern_info {
2810 gboolean is_gram, is_carat, is_ounce, is_pound, is_troy_ounce;
2811 gboolean is_pennyweight, is_grain, is_tael, is_momme, is_tola;
2812 gboolean is_percentage, is_piece, is_unstable, is_stable, is_error;
2813 int buflen;
2814};
2815
2816SR_PRIV gboolean sr_kern_packet_valid(const uint8_t *buf);
2817SR_PRIV int sr_kern_parse(const uint8_t *buf, float *floatval,
2818 struct sr_datafeed_analog *analog, void *info);
2819
2820/*--- sw_limits.c -----------------------------------------------------------*/
2821
2822struct sr_sw_limits {
2823 uint64_t limit_samples;
2824 uint64_t limit_frames;
2825 uint64_t limit_msec;
2826 uint64_t samples_read;
2827 uint64_t frames_read;
2828 uint64_t start_time;
2829};
2830
2831SR_PRIV int sr_sw_limits_config_get(const struct sr_sw_limits *limits, uint32_t key,
2832 GVariant **data);
2833SR_PRIV int sr_sw_limits_config_set(struct sr_sw_limits *limits, uint32_t key,
2834 GVariant *data);
2835SR_PRIV void sr_sw_limits_acquisition_start(struct sr_sw_limits *limits);
2836SR_PRIV gboolean sr_sw_limits_check(struct sr_sw_limits *limits);
2837SR_PRIV int sr_sw_limits_get_remain(const struct sr_sw_limits *limits,
2838 uint64_t *samples, uint64_t *frames, uint64_t *msecs,
2839 gboolean *exceeded);
2840SR_PRIV void sr_sw_limits_update_samples_read(struct sr_sw_limits *limits,
2841 uint64_t samples_read);
2842SR_PRIV void sr_sw_limits_update_frames_read(struct sr_sw_limits *limits,
2843 uint64_t frames_read);
2844SR_PRIV void sr_sw_limits_init(struct sr_sw_limits *limits);
2845
2846/*--- feed_queue.h ----------------------------------------------------------*/
2847
2848struct feed_queue_logic;
2849struct feed_queue_analog;
2850
2851SR_API struct feed_queue_logic *feed_queue_logic_alloc(
2852 const struct sr_dev_inst *sdi,
2853 size_t sample_count, size_t unit_size);
2854SR_API int feed_queue_logic_submit(struct feed_queue_logic *q,
2855 const uint8_t *data, size_t count);
2856SR_API int feed_queue_logic_flush(struct feed_queue_logic *q);
2857SR_API int feed_queue_logic_send_trigger(struct feed_queue_logic *q);
2858SR_API void feed_queue_logic_free(struct feed_queue_logic *q);
2859
2860SR_API struct feed_queue_analog *feed_queue_analog_alloc(
2861 const struct sr_dev_inst *sdi,
2862 size_t sample_count, int digits, struct sr_channel *ch);
2863SR_API int feed_queue_analog_mq_unit(struct feed_queue_analog *q,
2864 enum sr_mq mq, enum sr_mqflag mq_flag, enum sr_unit unit);
2865SR_API int feed_queue_analog_scale_offset(struct feed_queue_analog *q,
2866 const struct sr_rational *scale, const struct sr_rational *offset);
2867SR_API int feed_queue_analog_submit(struct feed_queue_analog *q,
2868 float data, size_t count);
2869SR_API int feed_queue_analog_flush(struct feed_queue_analog *q);
2870SR_API void feed_queue_analog_free(struct feed_queue_analog *q);
2871
2872#endif