Coverage Report

Created: 2026-08-14 06:45

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/wireshark/epan/dissectors/packet-evs.c
Line
Count
Source
1
/* packet-evs.c
2
 * Routines for EVS dissection
3
 * Copyright 2018, Anders Broman <anders.broman[at]ericsson.com>
4
 *
5
 * Wireshark - Network traffic analyzer
6
 * By Gerald Combs <gerald@wireshark.org>
7
 * Copyright 1998 Gerald Combs
8
 *
9
 * SPDX-License-Identifier: GPL-2.0-or-later
10
 *
11
 * References:
12
 * 3GPP TS 26.445 A.2 EVS RTP Payload Format
13
 */
14
15
#include "config.h"
16
17
#include <epan/packet.h>
18
#include <epan/prefs.h>
19
#include <epan/proto_data.h>
20
#include <epan/tfs.h>
21
#include <wsutil/str_util.h>
22
#include <wsutil/utf8_entities.h>
23
#include "packet-rtp.h"
24
25
void proto_register_evs(void);
26
void proto_reg_handoff_evs(void);
27
28
static dissector_handle_t evs_handle;
29
30
static bool evs_hf_only;
31
32
/* Initialize the protocol and registered fields */
33
static int proto_evs;
34
static int proto_rtp;
35
36
static int hf_evs_packet_length;
37
static int hf_evs_voice_data;
38
static int hf_evs_h_bit;
39
static int hf_evs_cmr_t;
40
static int hf_evs_cmr_t0_d;
41
static int hf_evs_cmr_t1_d;
42
static int hf_evs_cmr_t2_d;
43
static int hf_evs_cmr_t3_d;
44
static int hf_evs_cmr_t4_d;
45
static int hf_evs_cmr_t5_d;
46
static int hf_evs_cmr_t6_d;
47
static int hf_evs_cmr_t7_d;
48
static int hf_evs_f_bit;
49
static int hf_evs_mode_bit;
50
static int hf_evs_toc_spare;
51
static int hf_evs_amr_wb_q_bit;
52
static int hf_evs_bit_rate_mode_0;
53
static int hf_evs_bit_rate_mode_1;
54
static int hf_evs_cmr_amr_io;
55
static int hf_evs_bw;
56
static int hf_evs_reserved_1bit;
57
static int hf_evs_celp_switch_to_mdct_core;
58
static int hf_evs_celp_mdct_core;
59
static int hf_evs_tcx_or_hq_mdct_core;
60
static int hf_evs_sid_cng;
61
static int hf_evs_celp_sample_rate;
62
static int hf_evs_core_sample_rate;
63
static int hf_evs_132_bwctrf_idx;
64
static int hf_evs_28_frame_type;
65
static int hf_evs_28_bw_ppp_nelp;
66
static int hf_evs_72_80_bwct_idx;
67
static int hf_evs_320_bwct_idx;
68
static int hf_evs_640_bwct_idx;
69
70
static int ett_evs;
71
static int ett_evs_header;
72
static int ett_evs_speech;
73
static int ett_evs_voice_data;
74
75
static const value_string evs_protected_payload_sizes_value[] = {
76
    {    48, "EVS Primary SID 2.4" },
77
    {    56, "Special case" },
78
    {   136, "EVS AMR-WB IO 6.6" },
79
    {   144, "EVS Primary 7.2" },
80
    {   160, "EVS Primary 8.0" },
81
    {   184, "EVS AMR-WB IO 8.85" },
82
    {   192, "EVS Primary 9.6" },
83
    {   256, "EVS AMR-WB IO 12.65" },
84
    {   264, "EVS Primary 13.2" },
85
    {   288, "EVS AMR-WB IO 14.25" },
86
    {   320, "EVS AMR-WB IO 15.85" },
87
    {   328, "EVS Primary 16.4" },
88
    {   368, "EVS AMR-WB IO 18.25" },
89
    {   400, "EVS AMR-WB IO 19.85" },
90
    {   464, "EVS AMR-WB IO 23.05" },
91
    {   480, "EVS AMR-WB IO 23.85" },
92
    {   488, "EVS Primary 24.4" },
93
    {   640, "EVS Primary 32.0" },
94
    {   960, "EVS Primary 48.0" },
95
    {  1280, "EVS Primary 64.0" },
96
    {  1920, "EVS Primary 96.0" },
97
    {  2560, "EVS Primary 128.0" },
98
    { 0, NULL }
99
};
100
101
static const value_string evs_d_bits_t0_values[] = {
102
    { 0x0, "NB 5.9 kbps (VBR)" },
103
    { 0x1, "NB 7.2 kbps" },
104
    { 0x2, "NB 8.0 kbps" },
105
    { 0x3, "NB 9.6 kbps" },
106
    { 0x4, "NB 13.2 kbps" },
107
    { 0x5, "NB 16.4 kbps" },
108
    { 0x6, "NB 24.4 kbps" },
109
    { 0x7, "Not used" },
110
    { 0x8, "Not used" },
111
    { 0x9, "Not used" },
112
    { 0xa, "Not used" },
113
    { 0xb, "Not used" },
114
    { 0xc, "Not used" },
115
    { 0xd, "Not used" },
116
    { 0xe, "Not used" },
117
    { 0xf, "Not used" },
118
    { 0, NULL }
119
};
120
121
static const value_string evs_d_bits_t1_values[] = {
122
    { 0x0, "AMR-WB IO 6.6 kbps (mode-set 0)" },
123
    { 0x1, "AMR-WB IO 8.8 kbps (mode-set 1)" },
124
    { 0x2, "AMR-WB IO 12.65 kbps (mode-set 2)" },
125
    { 0x3, "AMR-WB IO 14.25 kbps (mode-set 3)" },
126
    { 0x4, "AMR-WB IO 15.85 kbps (mode-set 4)" },
127
    { 0x5, "AMR-WB IO 18.25 kbps (mode-set 5)" },
128
    { 0x6, "AMR-WB IO 19.85 kbps (mode-set 6)" },
129
    { 0x7, "AMR-WB IO 23.05 kbps (mode-set 7)" },
130
    { 0x8, "AMR-WB IO 23.85 kbps (mode-set 8)" },
131
    { 0x9, "Not used" },
132
    { 0xa, "Not used" },
133
    { 0xb, "Not used" },
134
    { 0xc, "Not used" },
135
    { 0xd, "Not used" },
136
    { 0xe, "Not used" },
137
    { 0xf, "Not used" },
138
    { 0, NULL }
139
};
140
141
142
static const value_string evs_d_bits_t2_values[] = {
143
    { 0x0, "WB 5.9 kbps (VBR)" },
144
    { 0x1, "WB 7.2 kbps" },
145
    { 0x2, "WB 8 kbps" },
146
    { 0x3, "WB 9.6 kbps" },
147
    { 0x4,"WB 13.2 kbps" },
148
    { 0x5,"WB 16.4 kbps" },
149
    { 0x6,"WB 24.4 kbps" },
150
    { 0x7,"WB 32 kbps" },
151
    { 0x8,"WB 48 kbps" },
152
    { 0x9,"WB 64 kbps" },
153
    { 0xa,"WB 96 kbps" },
154
    { 0xb,"WB 128 kbps" },
155
    { 0xc, "Not used" },
156
    { 0xd, "Not used" },
157
    { 0xe, "Not used" },
158
    { 0xf, "Not used" },
159
    { 0, NULL }
160
};
161
162
static const value_string evs_d_bits_t3_values[] = {
163
    { 0x0, "Not used" },
164
    { 0x1, "Not used" },
165
    { 0x2, "Not used" },
166
    { 0x3, "SWB 9.6 kbps" },
167
    { 0x4, "SWB 13.2 kbps" },
168
    { 0x5, "SWB 16.4 kbps" },
169
    { 0x6, "SWB 24.4 kbps" },
170
    { 0x7, "SWB 32 kbps" },
171
    { 0x8, "SWB 48 kbps" },
172
    { 0x9, "SWB 64 kbps" },
173
    { 0xa, "SWB 96 kbps" },
174
    { 0xb, "SWB 128 kbps" },
175
    { 0xc, "Not used" },
176
    { 0xd, "Not used" },
177
    { 0xe, "Not used" },
178
    { 0xf, "Not used" },
179
    { 0, NULL }
180
};
181
182
static const value_string evs_d_bits_t4_values[] = {
183
    { 0x0, "Not used" },
184
    { 0x1, "Not used" },
185
    { 0x2, "Not used" },
186
    { 0x3, "Not used" },
187
    { 0x4, "Not used" },
188
    { 0x5, "FB 16.4 kbps" },
189
    { 0x6, "FB 24.4 kbps" },
190
    { 0x7, "FB 32 kbps" },
191
    { 0x8, "FB 48 kbps" },
192
    { 0x9, "FB 64 kbps" },
193
    { 0xa, "FB 96 kbps" },
194
    { 0xb, "FB 128 kbps" },
195
    { 0xc, "Not used" },
196
    { 0xd, "Not used" },
197
    { 0xe, "Not used" },
198
    { 0xf, "Not used" },
199
    { 0, NULL }
200
};
201
202
static const value_string evs_d_bits_t5_values[] = {
203
    { 0x0, "WB 13.2 kbps CA-L-O2" },
204
    { 0x1, "WB 13.2 kbps CA-L-O3" },
205
    { 0x2, "WB 13.2 kbps CA-L-O5" },
206
    { 0x3, "WB 13.2 kbps CA-L-O7" },
207
    { 0x4, "WB 13.2 kbps CA-H-O2" },
208
    { 0x5, "WB 13.2 kbps CA-H-O3" },
209
    { 0x6, "WB 13.2 kbps CA-H-O5" },
210
    { 0x7, "WB 13.2 kbps CA-H-O7" },
211
    { 0x8, "Not used" },
212
    { 0x9, "Not used" },
213
    { 0xa, "Not used" },
214
    { 0xb, "Not used" },
215
    { 0xc, "Not used" },
216
    { 0xd, "Not used" },
217
    { 0xe, "Not used" },
218
    { 0xf, "Not used" },
219
    { 0, NULL }
220
};
221
222
static const value_string evs_d_bits_t6_values[] = {
223
    { 0x0, "SWB 13.2 kbps CA-L-O2" },
224
    { 0x1, "SWB 13.2 kbps CA-L-O3" },
225
    { 0x2, "SWB 13.2 kbps CA-L-O5" },
226
    { 0x3, "SWB 13.2 kbps CA-L-O7" },
227
    { 0x4, "SWB 13.2 kbps CA-H-O2" },
228
    { 0x5, "SWB 13.2 kbps CA-H-O3" },
229
    { 0x6, "SWB 13.2 kbps CA-H-O5" },
230
    { 0x7, "SWB 13.2 kbps CA-H-O7" },
231
    { 0x8, "Not used" },
232
    { 0x9, "Not used" },
233
    { 0xa, "Not used" },
234
    { 0xb, "Not used" },
235
    { 0xc, "Not used" },
236
    { 0xd, "Not used" },
237
    { 0xe, "Not used" },
238
    { 0xf, "Not used" },
239
    { 0, NULL }
240
};
241
242
static const value_string evs_d_bits_t7_values[] = {
243
    { 0x0, "Reserved" },
244
    { 0x1, "Reserved" },
245
    { 0x2, "Reserved" },
246
    { 0x3, "Reserved" },
247
    { 0x4, "Reserved" },
248
    { 0x5, "Reserved" },
249
    { 0x6, "Reserved" },
250
    { 0x7, "Reserved" },
251
    { 0x8, "Reserved" },
252
    { 0x9, "Reserved" },
253
    { 0xa, "Reserved" },
254
    { 0xb, "Reserved" },
255
    { 0xc, "Reserved" },
256
    { 0xd, "Reserved" },
257
    { 0xe, "Reserved" },
258
    { 0xf, "NO_REQ" },
259
    { 0, NULL }
260
};
261
262
static const value_string evs_bit_rate_mode_0_values[] = {
263
    { 0x0, "Primary 2.8 kbps" },
264
    { 0x1, "Primary 7.2 kbps" },
265
    { 0x2, "Primary 8.0 kbps" },
266
    { 0x3, "Primary 9.6 kbps" },
267
    { 0x4, "Primary 13.2 kbps" },
268
    { 0x5, "Primary 16.4 kbps" },
269
    { 0x6, "Primary 24.4 kbps" },
270
    { 0x7, "Primary 32.0 kbps" },
271
    { 0x8, "Primary 48.0 kbps" },
272
    { 0x9, "Primary 64.0 kbps" },
273
    { 0xa, "Primary 96.0 kbps" },
274
    { 0xb, "Primary 128.0 kbps" },
275
    { 0xc, "Primary 2.4 kbps SID" },
276
    { 0xd, "For future use" },
277
    { 0xe, "SPEECH_LOST" },
278
    { 0xf, "NO_DATA" },
279
    { 0, NULL }
280
};
281
282
static const value_string evs_bit_rate_mode_1_values[] = {
283
    { 0x0, "AMR-WB IO 6.6 kbps" },
284
    { 0x1, "AMR-WB IO 8.85 kbps" },
285
    { 0x2, "AMR-WB IO 12.65 kbps" },
286
    { 0x3, "AMR-WB IO 14.24 kbps" },
287
    { 0x4, "AMR-WB IO 15.85 kbps" },
288
    { 0x5, "AMR-WB IO 18.25 kbps" },
289
    { 0x6, "AMR-WB IO 19.85 kbps" },
290
    { 0x7, "AMR-WB IO 23.05 kbps" },
291
    { 0x8, "AMR-WB IO 23.85 kbps" },
292
    { 0x9, "AMR-WB IO 2.0 kbps SID" },
293
    { 0xa, "For future use" },
294
    { 0xb, "For future use" },
295
    { 0xc, "For future use" },
296
    { 0xd, "For future use" },
297
    { 0xe, "SPEECH_LOST" },
298
    { 0xf, "NO_DATA" },
299
    { 0, NULL }
300
};
301
302
303
static const value_string evs_cmr_amr_io_values[] = {
304
    { 0x0, "AMR-WB IO 6.6 kbps" },
305
    { 0x1, "AMR-WB IO 8.85 kbps" },
306
    { 0x2, "AMR-WB IO 12.65 kbps" },
307
    { 0x3, "AMR-WB IO 15.85 kbps" },
308
    { 0x4, "AMR-WB IO 18.25 kbps" },
309
    { 0x5, "AMR-WB IO 23.05 kbps" },
310
    { 0x6, "AMR-WB IO 23.85 kbps" },
311
    { 0x7, "none" },
312
    { 0, NULL }
313
};
314
315
static const true_false_string tfs_evs_h_bit = {
316
    "CMR",
317
    "ToC"
318
};
319
320
static const true_false_string tfs_evs_f_bit = {
321
    "Speech frame follows",
322
    "Last frame in payload"
323
};
324
325
static const true_false_string toc_evs_q_bit_vals = {
326
    "Ok",
327
    "Severely damaged frame"
328
};
329
330
static const value_string evs_bw_values[] = {
331
    { 0x0, "NB" },
332
    { 0x1, "WB" },
333
    { 0x2, "SWB" },
334
    { 0x3, "FB" },
335
    { 0, NULL }
336
};
337
338
static const value_string evs_celp_switch_to_mdct_core_values[] = {
339
    { 0x00,  "False" },
340
    { 0x01,  "True" },
341
    { 0, NULL }
342
};
343
344
static const value_string evs_celp_or_mdct_core_values[] = {
345
    { 0x0, "CELP" },
346
    { 0x1, "MDCT" },
347
    { 0, NULL }
348
};
349
350
static const value_string evs_tcx_or_hq_mdct_core_values[] = {
351
    { 0x0, "HQ-MDCT core" },
352
    { 0x1, "TCX Core" },
353
    { 0, NULL }
354
};
355
356
static const value_string evs_sid_cng_values[] = {
357
    { 0x0, "LP-CNG SID" },
358
    { 0x1, "FD-CNG" },
359
    { 0, NULL }
360
};
361
362
static const value_string evs_sid_celp_sample_rate_values[] = {
363
    { 0x0, "12.8 kHz" },
364
    { 0x1, "16 kHz" },
365
    { 0, NULL }
366
};
367
368
static const value_string evs_132_bwctrf_idx_vals[] = {
369
    { 0x0, "NB generic" },
370
    { 0x1, "NB voiced" },
371
    { 0x2, "NB transition" },
372
    { 0x3, "NB audio" },
373
    { 0x4, "NB inactive" },
374
    { 0x5, "WB generic" },
375
    { 0x6, "WB voiced" },
376
    { 0x7, "WB transition" },
377
    { 0x8, "WB audio" },
378
    { 0x9, "WB inactive" },
379
    { 0xa, "SWB generic" },
380
    { 0xb, "SWB voiced" },
381
    { 0xc, "SWB transition" },
382
    { 0xd, "SWB audio" },
383
    { 0xe, "SWB inactive" },
384
    { 0xf, "NB generic" },
385
    { 0x10, "NB voiced" },
386
    { 0x11, "WB generic" },
387
    { 0x12, "WB voiced" },
388
    { 0x13, "SWB generic" },
389
    { 0x14, "SWB voiced" },
390
    { 0x15, "WB generic" },
391
    { 0x16, "WB unvoiced" },
392
    { 0x17, "WB voiced" },
393
    { 0x18, "WB inactive" },
394
    { 0x19, "SWB generic" },
395
    { 0x1a, "SWB unvoiced" },
396
    { 0x1b, "SWB voiced" },
397
    { 0x1c, "SWB inactive" },
398
    { 0x1d, "NB lrMDCT" },
399
    { 0x1e, "WB lrMDCT" },
400
    { 0x1f, "SWB lrMDCT" },
401
    { 0, NULL }
402
};
403
404
static const value_string evs_28_frame_type_vals[] = {
405
    { 0x0, "Primary PPP/NELP" },
406
    { 0x1, "AMR-WB IO SID" },
407
    { 0, NULL }
408
};
409
410
static const value_string evs_28_bw_ppp_nelp_vals[] = {
411
    { 0x00, "NB PPP" },
412
    { 0x01, "WB PPP" },
413
    { 0x02, "NB NELP" },
414
    { 0x03, "WB NELP" },
415
    { 0, NULL }
416
};
417
418
static const value_string evs_72_80_bwct_idx_vals[] = {
419
    { 0x0, "NB generic" },
420
    { 0x1, "NB unvoiced" },
421
    { 0x2, "NB voiced" },
422
    { 0x3, "NB transition" },
423
    { 0x4, "NB audio" },
424
    { 0x5, "NB inactive" },
425
    { 0x6, "WB generic" },
426
    { 0x7, "WB unvoiced" },
427
    { 0x8, "WB voiced" },
428
    { 0x9, "WB transition" },
429
    { 0xa, "WB audio" },
430
    { 0xb, "WB inactive" },
431
    { 0xc, "NB generic" },
432
    { 0xd, "WB generic" },
433
    { 0xe, "NB lrMDCT" },
434
    { 0, NULL }
435
};
436
437
static const value_string evs_320_bwct_idx_vals[] = {
438
    { 0x0, "WB generic" },
439
    { 0x1, "WB transition" },
440
    { 0x2, "WB inactive" },
441
    { 0x3, "SWB generic" },
442
    { 0x4, "SWB transition" },
443
    { 0x5, "SWB inactive" },
444
    { 0x6, "FB generic" },
445
    { 0x7, "FB transition" },
446
    { 0x8, "FB inactive" },
447
    { 0x9, "WB generic" },
448
    { 0xa, "WB transition" },
449
    { 0xb, "SWB generic" },
450
    { 0xc, "SWB transition" },
451
    { 0xd, "FB generic" },
452
    { 0xe, "FB transition" },
453
    { 0, NULL }
454
};
455
456
static const value_string evs_640_bwct_idx_vals[] = {
457
    { 0x0, "WB generic" },
458
    { 0x1, "WB transition" },
459
    { 0x2, "WB inactive" },
460
    { 0x3, "SWB generic" },
461
    { 0x4, "SWB transition" },
462
    { 0x5, "SWB inactive" },
463
    { 0x6, "FB generic" },
464
    { 0x7, "FB transition" },
465
    { 0x8, "FB inactive" },
466
    { 0x9, "SWB generic" },
467
    { 0xa, "SWB transition" },
468
    { 0xb, "FB generic" },
469
    { 0xc, "FB transition" },
470
    { 0, NULL }
471
};
472
473
static void
474
dissect_evs_cmr(tvbuff_t *tvb, packet_info *pinfo _U_, proto_tree *evs_tree, int offset, uint8_t cmr_oct)
475
0
{
476
0
    proto_tree *tree;
477
0
    proto_item *item;
478
0
    const char *str;
479
0
    uint8_t t_bits = (cmr_oct & 0x70) >> 4;
480
0
    uint8_t d_bits = (cmr_oct & 0x0f);
481
    /* CMR */
482
0
    tree = proto_tree_add_subtree(evs_tree, tvb, offset, 1, ett_evs_header, &item, "CMR");
483
484
485
0
    switch (t_bits) {
486
0
    case 0:
487
0
    {
488
0
        static int * const flags_t0[] = {
489
0
            &hf_evs_h_bit,
490
0
            &hf_evs_cmr_t,
491
0
            &hf_evs_cmr_t0_d,
492
0
            NULL
493
0
        };
494
495
0
        str = val_to_str_const(d_bits, evs_d_bits_t0_values, "Unknown value");
496
0
        proto_item_append_text(item, " %s",str);
497
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t0, ENC_BIG_ENDIAN);
498
0
    }
499
0
    break;
500
0
    case 1:
501
0
    {
502
0
        static int * const flags_t1[] = {
503
0
            &hf_evs_h_bit,
504
0
            &hf_evs_cmr_t,
505
0
            &hf_evs_cmr_t1_d,
506
0
            NULL
507
0
        };
508
509
0
        str = val_to_str_const(d_bits, evs_d_bits_t1_values, "Unknown value");
510
0
        proto_item_append_text(item, " %s",str);
511
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t1, ENC_BIG_ENDIAN);
512
0
    }
513
0
    break;
514
0
    case 2:
515
0
    {
516
0
        static int * const flags_t2[] = {
517
0
            &hf_evs_h_bit,
518
0
            &hf_evs_cmr_t,
519
0
            &hf_evs_cmr_t2_d,
520
0
            NULL
521
0
        };
522
523
0
        str = val_to_str_const(d_bits, evs_d_bits_t2_values, "Unknown value");
524
0
        proto_item_append_text(item, " %s",str);
525
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t2, ENC_BIG_ENDIAN);
526
0
    }
527
0
    break;
528
0
    case 3:
529
0
    {
530
0
        static int * const flags_t3[] = {
531
0
            &hf_evs_h_bit,
532
0
            &hf_evs_cmr_t,
533
0
            &hf_evs_cmr_t3_d,
534
0
            NULL
535
0
        };
536
537
0
        str = val_to_str_const(d_bits, evs_d_bits_t3_values, "Unknown value");
538
0
        proto_item_append_text(item, " %s",str);
539
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t3, ENC_BIG_ENDIAN);
540
0
    }
541
0
    break;
542
0
    case 4:
543
0
    {
544
0
        static int * const flags_t4[] = {
545
0
            &hf_evs_h_bit,
546
0
            &hf_evs_cmr_t,
547
0
            &hf_evs_cmr_t4_d,
548
0
            NULL
549
0
        };
550
551
0
        str = val_to_str_const(d_bits, evs_d_bits_t4_values, "Unknown value");
552
0
        proto_item_append_text(item, " %s",str);
553
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t4, ENC_BIG_ENDIAN);
554
0
    }
555
0
    break;
556
0
    case 5:
557
0
    {
558
0
        static int * const flags_t5[] = {
559
0
            &hf_evs_h_bit,
560
0
            &hf_evs_cmr_t,
561
0
            &hf_evs_cmr_t5_d,
562
0
            NULL
563
0
        };
564
565
0
        str = val_to_str_const(d_bits, evs_d_bits_t5_values, "Unknown value");
566
0
        proto_item_append_text(item, " %s",str);
567
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t5, ENC_BIG_ENDIAN);
568
0
    }
569
0
    break;
570
0
    case 6:
571
0
    {
572
0
        static int * const flags_t6[] = {
573
0
            &hf_evs_h_bit,
574
0
            &hf_evs_cmr_t,
575
0
            &hf_evs_cmr_t6_d,
576
0
            NULL
577
0
        };
578
579
0
        str = val_to_str_const(d_bits, evs_d_bits_t6_values, "Unknown value");
580
0
        proto_item_append_text(item, " %s",str);
581
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t6, ENC_BIG_ENDIAN);
582
0
    }
583
0
    break;
584
0
    case 7:
585
0
    {
586
0
        static int * const flags_t7[] = {
587
0
            &hf_evs_h_bit,
588
0
            &hf_evs_cmr_t,
589
0
            &hf_evs_cmr_t7_d,
590
0
            NULL
591
0
        };
592
593
0
        str = val_to_str_const(d_bits, evs_d_bits_t7_values, "Unknown value");
594
0
        proto_item_append_text(item, " %s",str);
595
0
        proto_tree_add_bitmask_list(tree, tvb, offset, 1, flags_t7, ENC_BIG_ENDIAN);
596
0
    }
597
0
    break;
598
0
    default:
599
0
        DISSECTOR_ASSERT_NOT_REACHED();
600
0
        break;
601
602
0
    }
603
0
    col_append_fstr(pinfo->cinfo, COL_INFO, ", %s", str);
604
0
}
605
606
/* Code to actually dissect the packets */
607
static int
608
dissect_evs(tvbuff_t *tvb, packet_info *pinfo, proto_tree *tree, void* data _U_)
609
0
{
610
0
    proto_item *ti;
611
0
    proto_tree *evs_tree, *sub_tree, *vd_tree;
612
0
    int offset = 0 , bit_offset = 0;
613
0
    int packet_len, idx, speech_data_len;
614
0
    uint32_t num_bits;
615
0
    const char *str;
616
0
    uint8_t oct, h_bit, toc_f_bit, evs_mode_b;
617
0
    int num_toc, num_data;
618
0
    uint64_t value;
619
0
    bool is_compact = false;
620
0
    struct _rtp_pkt_info *rtp_pkt_info = p_get_proto_data(pinfo->pool, pinfo, proto_rtp, pinfo->curr_layer_num-1);
621
0
    struct _rtp_info *rtp_info = NULL;
622
0
    bool rtmp_enforce_hf_only = false;
623
624
    /* Make entries in Protocol column and Info column on summary display */
625
0
    col_set_str(pinfo->cinfo, COL_PROTOCOL, "EVS");
626
627
0
    ti = proto_tree_add_item(tree, proto_evs, tvb, 0, -1, ENC_NA);
628
0
    evs_tree = proto_item_add_subtree(ti, ett_evs);
629
0
    packet_len = tvb_reported_length(tvb);
630
631
    /* A.2.3.2 ignore sizes if hf-only=1 */
632
0
    if (data) {
633
0
        rtp_info = (struct _rtp_info*)data;
634
0
        if (rtp_info->info_payload_fmtp_map) {
635
0
            char *tmp = wmem_map_lookup(rtp_info->info_payload_fmtp_map, "hf-only");
636
0
            if (g_strcmp0(tmp, "1") == 0) {
637
0
                rtmp_enforce_hf_only = true;
638
0
            }
639
0
        }
640
0
    }
641
642
    /* Find out if we have one of the reserved packet sizes*/
643
0
    if (!(rtmp_enforce_hf_only || evs_hf_only)) {
644
0
        num_bits = packet_len * 8;
645
0
        if (rtp_pkt_info)
646
0
            num_bits += rtp_pkt_info->padding_len * 8; /* take into account RTP padding if any */
647
0
        if (num_bits == 56) {
648
            /* A.2.1.3 Special case for 56 bit payload size (EVS Primary or EVS AMR-WB IO SID) */
649
            /* The resulting ambiguity between EVS Primary 2.8 kbps and EVS AMR-WB IO SID frames is resolved through the
650
            most significant bit (MSB) of the first byte of the payload. By definition, the first data bit d(0) of the EVS Primary 2.8
651
            kbps is always set to '0'.
652
            */
653
0
            oct = tvb_get_bits8(tvb, bit_offset, 1);
654
0
            if (oct == 0) {
655
                /* EVS Primary 2.8 kbps */
656
0
                str = "EVS Primary 2.8";
657
0
                is_compact = true;
658
0
            } else {
659
                /* EVS AMR-WB IO SID */
660
0
                str = "EVS AMR-WB IO SID";
661
0
            }
662
0
        } else {
663
0
            str = try_val_to_str_idx(num_bits, evs_protected_payload_sizes_value, &idx);
664
0
            if (str) {
665
0
                is_compact = true;
666
0
            }
667
0
        }
668
0
    }
669
670
0
    if (is_compact) {
671
        /* A.2.1 EVS codec Compact Format */
672
0
        proto_tree_add_subtree(evs_tree, tvb, offset, -1, ett_evs_header, &ti, "Framing Mode: Compact");
673
0
        proto_item_set_generated(ti);
674
675
        /* One of the protected payload sizes, no further dissection currently.*/
676
0
        col_append_fstr(pinfo->cinfo, COL_INFO, ", %s", str);
677
0
        proto_tree_add_int_format(evs_tree, hf_evs_packet_length, tvb, offset, 1, packet_len * 8, " %s, packet_len %i bits", str, packet_len * 8);
678
0
        if (strncmp(str, "EVS A", 5) == 0) {
679
            /* A.2.1.2  Compact format for EVS AMR-WB IO mode */
680
            /* CMR */
681
0
            proto_tree_add_item(evs_tree, hf_evs_cmr_amr_io, tvb, offset, 1, ENC_BIG_ENDIAN);
682
0
        }
683
684
0
        vd_tree = proto_tree_add_subtree(evs_tree, tvb, offset, -1, ett_evs_voice_data, NULL, "Voice Data");
685
0
        switch (packet_len) {
686
0
        case 17: /* 136 EVS AMR-WB IO 6.6 */
687
0
        case 23: /* 184 EVS AMR-WB IO 8.85 */
688
0
        case 32: /* 256 EVS AMR-WB IO 12.65 */
689
0
        case 36: /* 288 EVS AMR-WB IO 14.25 */
690
0
        case 40: /* 320 EVS AMR-WB IO 15.85 */
691
0
        case 46: /* 368 EVS AMR-WB IO 18.25 */
692
0
        case 50: /* 400 EVS AMR-WB IO 19.85 */
693
0
        case 58: /* 464 EVS AMR-WB IO 23.05 */
694
0
        case 60: /* 480 EVS AMR-WB IO 23.85 */
695
            /* A.2.1.2 Compact format for EVS AMR-WB IO mode (except SID)
696
             * In the Compact format for EVS AMR-WB IO mode, except SID, the RTP payload consists of one 3-bit CMR field,
697
             * one coded frame, and zero-padding bits if necessary.
698
             */
699
            /* CMR */
700
0
            proto_tree_add_item(evs_tree, hf_evs_cmr_amr_io, tvb, offset, 1, ENC_BIG_ENDIAN);
701
0
            break;
702
0
        case 6: /* 48 EVS Primary SID 2.4 */
703
            /* 7.2  Bit allocation for SID frames in the DTX operation */
704
            /* CNG type flag 1 bit */
705
0
            proto_tree_add_bits_ret_val(vd_tree, hf_evs_sid_cng, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
706
0
            bit_offset++;
707
0
            if (value == 1) {
708
                /* FD-CNG SID frame */
709
                /* Bandwidth indicator 2 bits */
710
0
                proto_tree_add_bits_item(vd_tree, hf_evs_bw, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
711
0
                bit_offset += 2;
712
                /* CELP sample rate 1 bit*/
713
0
                proto_tree_add_bits_item(vd_tree, hf_evs_celp_sample_rate, tvb, bit_offset, 1, ENC_BIG_ENDIAN);
714
                /* Global gain 7 bits */
715
                /* Spectral band and energy 37 bits */
716
0
            } else {
717
                /* LP-CNG SID frame */
718
                /* Bandwidth indicator 1 bit */
719
0
                oct = tvb_get_bits8(tvb, bit_offset, 1);
720
0
                proto_tree_add_uint_bits_format_value(vd_tree, hf_evs_bw, tvb, bit_offset, 1, 1, ENC_BIG_ENDIAN, "%s (%u)",
721
0
                    val_to_str_const(1 << oct, evs_bw_values, "Unknown value"), oct);
722
0
                bit_offset++;
723
                /* Core sampling rate indicator */
724
0
                proto_tree_add_bits_item(vd_tree, hf_evs_core_sample_rate, tvb, bit_offset, 1, ENC_BIG_ENDIAN);
725
0
            }
726
0
            break;
727
0
        case 7: /*  56 EVS Primary SID 2.8 */
728
            /* A.2.1.3 Special case for 56 bit payload size (EVS Primary or EVS AMR-WB IO SID) */
729
            /* The resulting ambiguity between EVS Primary 2.8 kbps and EVS AMR-WB IO SID frames is resolved through the
730
               most significant bit (MSB) of the first byte of the payload. By definition, the first data bit d(0) of the EVS Primary 2.8
731
               kbps is always set to '0'.
732
             */
733
0
            proto_tree_add_bits_ret_val(vd_tree, hf_evs_28_frame_type, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
734
0
            bit_offset++;
735
0
            if (value == 0) {
736
                /* Primary PPP/NELP frame */
737
0
                proto_tree_add_bits_item(vd_tree, hf_evs_28_bw_ppp_nelp, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
738
0
            }
739
0
            break;
740
0
        case 18: /* 144 EVS Primary 7.2 */
741
0
        case 20: /* 160 EVS Primary 8.0 */
742
            /* 7.1.1 Bit allocation at VBR 5.9, 7.2 – 9.6 kbps
743
             * Note that the BW and CT parameters are combined together to form a single index at 7.2 and 8.0 kbps. This index
744
             * conveys the information whether CELP core or HQ-MDCT core is used.
745
             */
746
            /* BW, CT, 4*/
747
0
            proto_tree_add_bits_item(vd_tree, hf_evs_72_80_bwct_idx, tvb, bit_offset, 4, ENC_BIG_ENDIAN);
748
0
            break;
749
0
        case 24: /* 192 EVS Primary 9.6 */
750
            /* 7.1.1 Bit allocation at VBR 5.9, 7.2 – 9.6 kbps */
751
            /* BW 2 bits */
752
0
            proto_tree_add_bits_item(vd_tree, hf_evs_bw, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
753
0
            break;
754
0
        case 33: /* 264 EVS Primary 13.2 */
755
            /* 7.1.2 Bit allocation at 13.2 kbps
756
             * The EVS codec encodes NB, WB and SWB content at 13.2 kbps with CELP core, HQ-MDCT core, or TCX core.
757
             * For WB signals, the CELP core uses TBE or FD extension layer. For SWB signals, the CELP core uses TBE or FD extension layer,
758
             * and the TCX core uses IGF extension layer
759
             */
760
            /* BW, CT, RF 5*/
761
0
            proto_tree_add_bits_item(vd_tree, hf_evs_132_bwctrf_idx, tvb, bit_offset, 5, ENC_BIG_ENDIAN);
762
0
            break;
763
0
        case 41: /* 328 EVS Primary 16.4 */
764
            /* 7.1.3  Bit allocation at 16.4 and 24.4 kbps */
765
            /* BW 2 bits*/
766
0
            proto_tree_add_bits_item(vd_tree, hf_evs_bw, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
767
0
            bit_offset+=2;
768
            /* Reserved 1 bit */
769
0
            proto_tree_add_bits_item(vd_tree, hf_evs_reserved_1bit, tvb, bit_offset, 1, ENC_BIG_ENDIAN);
770
0
            break;
771
0
        case 61: /* 488 EVS Primary 24.4 */
772
            /* 7.1.3  Bit allocation at 16.4 and 24.4 kbps */
773
            /* BW 2 bits*/
774
0
            proto_tree_add_bits_item(vd_tree, hf_evs_bw, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
775
0
            bit_offset+=2;
776
            /* Reserved 1 bit */
777
0
            proto_tree_add_bits_item(vd_tree, hf_evs_reserved_1bit, tvb, bit_offset, 1, ENC_BIG_ENDIAN);
778
0
            bit_offset++;
779
            /* CELP/MDCT core flag  1 */
780
0
            proto_tree_add_bits_ret_val(vd_tree, hf_evs_celp_mdct_core, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
781
0
            bit_offset++;
782
            /* In the case of MDCT-based core, the next bit decides whether HQ-MDCT core or TCX core is used */
783
0
            if (value == 1) {
784
                /* MDCT-based core*/
785
0
                proto_tree_add_bits_ret_val(vd_tree, hf_evs_tcx_or_hq_mdct_core, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
786
0
            }
787
0
            break;
788
0
        case 80: /* 640 EVS Primary 32 */
789
            /* 7.1.4 Bit allocation at 32 kbps */
790
            /* CELP/MDCT core flag  1 */
791
0
            proto_tree_add_bits_ret_val(vd_tree, hf_evs_celp_mdct_core, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
792
0
            bit_offset++;
793
            /* In the case of MDCT-based core, the next bit decides whether HQ-MDCT core or TCX core is used */
794
0
            if (value == 1) {
795
                /* MDCT-based core*/
796
0
                proto_tree_add_bits_ret_val(vd_tree, hf_evs_tcx_or_hq_mdct_core, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
797
0
                bit_offset++;
798
0
                if (value == 1) {
799
                    /* TCX core */
800
                    /* BW 2 bits */
801
0
                    proto_tree_add_bits_item(vd_tree, hf_evs_bw, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
802
0
                }
803
0
            } else {
804
                /* BW, CT, 4*/
805
0
                proto_tree_add_bits_item(vd_tree, hf_evs_320_bwct_idx, tvb, bit_offset, 4, ENC_BIG_ENDIAN);
806
0
            }
807
0
            break;
808
0
        case 160: /* 1280 EVS Primary 64 */
809
            /* 7.1.5 Bit allocation at 48, 64, 96 and 128 kbps */
810
            /* CELP/MDCT core flag  1 */
811
0
            proto_tree_add_bits_ret_val(vd_tree, hf_evs_celp_mdct_core, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
812
0
            bit_offset++;
813
0
            if (value == 1) {
814
                /* MDCT-based core*/
815
0
                proto_tree_add_bits_ret_val(vd_tree, hf_evs_celp_switch_to_mdct_core, tvb, bit_offset, 1, &value, ENC_BIG_ENDIAN);
816
0
                bit_offset++;
817
0
                if (value == 1) {
818
                    /* CELP sample rate 1 bit*/
819
0
                    proto_tree_add_bits_item(vd_tree, hf_evs_celp_sample_rate, tvb, bit_offset, 1, ENC_BIG_ENDIAN);
820
0
                    bit_offset++;
821
0
                }
822
                /* BW 2 bits*/
823
0
                proto_tree_add_bits_item(vd_tree, hf_evs_bw, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
824
0
            } else {
825
                /* BW, CT, 4*/
826
0
                proto_tree_add_bits_item(vd_tree, hf_evs_640_bwct_idx, tvb, bit_offset, 4, ENC_BIG_ENDIAN);
827
0
            }
828
0
            break;
829
0
        case 120: /* 960 EVS Primary 48 */
830
0
        case 240: /* 1920 EVS Primary 96 */
831
0
        case 320: /* 2560 EVS Primary 128 */
832
            /* 7.1.5 Bit allocation at 48, 64, 96 and 128 kbps */
833
            /* BW 2 bits*/
834
0
            proto_tree_add_bits_item(vd_tree, hf_evs_bw, tvb, bit_offset, 2, ENC_BIG_ENDIAN);
835
0
            bit_offset+=2;
836
            /* Reserved 1 bit */
837
0
            proto_tree_add_bits_item(vd_tree, hf_evs_reserved_1bit, tvb, bit_offset, 1, ENC_BIG_ENDIAN);
838
0
            break;
839
0
        default:
840
0
            break;
841
0
        }
842
843
0
        return packet_len;
844
0
    }
845
846
    /* A.2.2 EVS codec Header-Full format */
847
0
    proto_tree_add_subtree(evs_tree, tvb, offset, -1, ett_evs_header, &ti, "Framing Mode: Header-full");
848
0
    proto_item_set_generated(ti);
849
850
    /*proto_tree_add_int_format(evs_tree, hf_evs_packet_length, tvb, offset, 1, packet_len * 8, "packet_len %i bits", packet_len * 8);*/
851
0
    oct = tvb_get_uint8(tvb, offset);
852
0
    h_bit = oct >> 7;
853
854
0
    if (h_bit == 1) {
855
        /* CMR */
856
0
        dissect_evs_cmr(tvb, pinfo, evs_tree, offset, oct);
857
0
        offset++;
858
0
    }
859
    /* ToC */
860
0
    num_toc = 0;
861
0
    do {
862
0
        oct = tvb_get_uint8(tvb, offset);
863
0
        toc_f_bit = (oct & 0x40) >> 6;
864
0
        evs_mode_b = (oct & 0x20) >> 5;
865
0
        num_toc++;
866
867
0
        sub_tree = proto_tree_add_subtree_format(evs_tree, tvb, offset, 1, ett_evs_header, NULL, " TOC # %u",
868
0
            num_toc);
869
870
0
        if (evs_mode_b == 0) {
871
0
            static int * const flags_toc_mode_0[] = {
872
0
                &hf_evs_h_bit,
873
0
                &hf_evs_f_bit,
874
0
                &hf_evs_mode_bit,
875
0
                &hf_evs_toc_spare,
876
0
                &hf_evs_bit_rate_mode_0,
877
0
                NULL
878
0
            };
879
880
0
            proto_tree_add_bitmask_list(sub_tree, tvb, offset, 1, flags_toc_mode_0, ENC_BIG_ENDIAN);
881
0
            str = val_to_str_const((oct & 0x0f), evs_bit_rate_mode_0_values, "Unknown value");
882
0
        } else {
883
0
            static int * const flags_toc_mode_1[] = {
884
0
            &hf_evs_h_bit,
885
0
            &hf_evs_f_bit,
886
0
            &hf_evs_mode_bit,
887
0
            &hf_evs_amr_wb_q_bit,
888
0
            &hf_evs_bit_rate_mode_1,
889
0
            NULL
890
0
            };
891
0
            proto_tree_add_bitmask_list(sub_tree, tvb, offset, 1, flags_toc_mode_1, ENC_BIG_ENDIAN);
892
0
            str = val_to_str_const((oct & 0x0f), evs_bit_rate_mode_1_values, "Unknown value");
893
0
        }
894
0
        col_append_fstr(pinfo->cinfo, COL_INFO, ", %s", str);
895
0
        offset++;
896
0
    } while (toc_f_bit == 1);
897
898
0
    speech_data_len = (packet_len - offset) / num_toc;
899
900
0
    num_data = num_toc;
901
0
    num_toc = 1;
902
0
    col_append_fstr(pinfo->cinfo, COL_INFO, "%s (%u frame%s in packet)", UTF8_HORIZONTAL_ELLIPSIS, num_data, plurality(num_data, "", "s"));
903
0
    while (num_data > 0) {
904
0
        proto_tree *speech_tree;
905
906
0
        speech_tree = proto_tree_add_subtree_format(evs_tree, tvb, offset, speech_data_len, ett_evs_speech, NULL, "Speech frame for TOC # %u",
907
0
            num_toc);
908
0
        proto_tree_add_item(speech_tree, hf_evs_voice_data, tvb, offset, speech_data_len, ENC_NA);
909
0
        offset += speech_data_len;
910
0
        num_toc++;
911
0
        num_data--;
912
0
    }
913
914
0
    return packet_len;
915
0
}
916
917
void
918
proto_register_evs(void)
919
16
{
920
16
    module_t *evs_module;
921
    /*expert_module_t* expert_evs;*/
922
923
16
    static hf_register_info hf[] = {
924
16
        { &hf_evs_packet_length,
925
16
        { "Packet length", "evs.packet_length",
926
16
        FT_INT32, BASE_DEC, NULL, 0x0,
927
16
        NULL, HFILL }
928
16
        },
929
16
        { &hf_evs_voice_data,
930
16
        { "Voice data", "evs.voice_data",
931
16
        FT_BYTES, BASE_NONE, NULL, 0x0,
932
16
        NULL, HFILL }
933
16
        },
934
16
        { &hf_evs_h_bit,
935
16
        { "Header Type identification bit (H)", "evs.h_bit",
936
16
        FT_BOOLEAN, 8, TFS(&tfs_evs_h_bit), 0x80,
937
16
        NULL, HFILL }
938
16
        },
939
16
        { &hf_evs_cmr_t,
940
16
        { "Type of Request(T)", "evs.cmr_t",
941
16
        FT_UINT8, BASE_DEC, NULL, 0x70,
942
16
        NULL, HFILL }
943
16
        },
944
16
        { &hf_evs_cmr_t0_d,
945
16
        { "D", "evs.cmr_t0_d",
946
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t0_values), 0x0f,
947
16
        NULL, HFILL }
948
16
        },
949
16
        { &hf_evs_cmr_t1_d,
950
16
        { "D", "evs.cmr_t1_d",
951
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t1_values), 0x0f,
952
16
        NULL, HFILL }
953
16
        },
954
16
        { &hf_evs_cmr_t2_d,
955
16
        { "D", "evs.cmr_t3_d",
956
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t2_values), 0x0f,
957
16
        NULL, HFILL }
958
16
        },
959
16
        { &hf_evs_cmr_t3_d,
960
16
        { "D", "evs.cmr_t3_d",
961
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t3_values), 0x0f,
962
16
        NULL, HFILL }
963
16
        },
964
16
        { &hf_evs_cmr_t4_d,
965
16
        { "D", "evs.cmr_t4_d",
966
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t4_values), 0x0f,
967
16
        NULL, HFILL }
968
16
        },
969
16
        { &hf_evs_cmr_t5_d,
970
16
        { "D", "evs.cmr_t5_d",
971
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t5_values), 0x0f,
972
16
        NULL, HFILL }
973
16
        },
974
16
        { &hf_evs_cmr_t6_d,
975
16
        { "D", "evs.cmr_t6_d",
976
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t6_values), 0x0f,
977
16
        NULL, HFILL }
978
16
        },
979
16
        { &hf_evs_cmr_t7_d,
980
16
        { "D", "evs.cmr_t7_d",
981
16
        FT_UINT8, BASE_DEC, VALS(evs_d_bits_t7_values), 0x0f,
982
16
        NULL, HFILL }
983
16
        },
984
16
        { &hf_evs_mode_bit,
985
16
        { "EVS Mode", "evs.mode_bit",
986
16
        FT_UINT8, BASE_DEC, NULL, 0x20,
987
16
        NULL, HFILL }
988
16
        },
989
16
        { &hf_evs_toc_spare,
990
16
        { "Unused", "evs.toc_spare",
991
16
        FT_UINT8, BASE_DEC, NULL, 0x10,
992
16
        NULL, HFILL }
993
16
        },
994
16
        { &hf_evs_amr_wb_q_bit,
995
16
        { "AMR WB Q bit", "evs.amr_wb_q_bit",
996
16
        FT_BOOLEAN, 8, TFS(&toc_evs_q_bit_vals), 0x10,
997
16
        NULL, HFILL }
998
16
        },
999
1000
16
        { &hf_evs_bit_rate_mode_0,
1001
16
        { "EVS mode and bit rate", "evs.bit_rate_mode_0",
1002
16
        FT_UINT8, BASE_DEC, VALS(evs_bit_rate_mode_0_values), 0x0f,
1003
16
        NULL, HFILL }
1004
16
        },
1005
16
        { &hf_evs_bit_rate_mode_1,
1006
16
        { "EVS mode and bit rate", "evs.bit_rate_mode_1",
1007
16
        FT_UINT8, BASE_DEC, VALS(evs_bit_rate_mode_1_values), 0x0f,
1008
16
        NULL, HFILL }
1009
16
        },
1010
16
        { &hf_evs_f_bit,
1011
16
        { "F", "evs.f_bit",
1012
16
        FT_BOOLEAN, 8, TFS(&tfs_evs_f_bit), 0x40,
1013
16
        NULL, HFILL }
1014
16
        },
1015
16
    { &hf_evs_cmr_amr_io,
1016
16
    { "CMR", "evs.cmr_amr_io",
1017
16
        FT_UINT8, BASE_DEC, VALS(evs_cmr_amr_io_values), 0xe0,
1018
16
        NULL, HFILL }
1019
16
    },
1020
16
    { &hf_evs_bw,
1021
16
    { "BW", "evs.bw",
1022
16
        FT_UINT8, BASE_DEC, VALS(evs_bw_values), 0x0,
1023
16
        NULL, HFILL }
1024
16
    },
1025
16
    { &hf_evs_reserved_1bit,
1026
16
    { "Reserved", "evs.reserved_1bit",
1027
16
        FT_UINT8, BASE_DEC, NULL, 0x0,
1028
16
        NULL, HFILL }
1029
16
    },
1030
16
    { &hf_evs_celp_switch_to_mdct_core,
1031
16
    { "CELP->HQ-MDCT core", "evs.celp_switch_to_mdct_core",
1032
16
        FT_UINT8, BASE_DEC, VALS(evs_celp_switch_to_mdct_core_values), 0x0,
1033
16
        NULL, HFILL }
1034
16
    },
1035
16
    { &hf_evs_celp_mdct_core,
1036
16
    { "CELP/MDCT core", "evs.celp_mdct_core",
1037
16
        FT_UINT8, BASE_DEC, VALS(evs_celp_or_mdct_core_values), 0x0,
1038
16
        NULL, HFILL }
1039
16
    },
1040
16
    { &hf_evs_tcx_or_hq_mdct_core,
1041
16
    { "TCX/HQ-MDCT core", "evs.tcx_hq_mdct_core",
1042
16
        FT_UINT8, BASE_DEC, VALS(evs_tcx_or_hq_mdct_core_values), 0x0,
1043
16
        NULL, HFILL }
1044
16
    },
1045
16
    { &hf_evs_sid_cng,
1046
16
    { "CNG type", "evs.sid.cng",
1047
16
        FT_UINT8, BASE_DEC, VALS(evs_sid_cng_values), 0x0,
1048
16
        NULL, HFILL }
1049
16
    },
1050
16
    { &hf_evs_celp_sample_rate,
1051
16
    { "CELP Sample Rate", "evs.sid.celp_sample_rate",
1052
16
        FT_UINT8, BASE_DEC, VALS(evs_sid_celp_sample_rate_values), 0x0,
1053
16
        NULL, HFILL }
1054
16
    },
1055
16
    { &hf_evs_core_sample_rate,
1056
16
    { "Core sampling rate indicator", "evs.sid.core_sample_rate",
1057
16
        FT_UINT8, BASE_DEC, VALS(evs_sid_celp_sample_rate_values), 0x0,
1058
16
        NULL, HFILL }
1059
16
    },
1060
16
    { &hf_evs_132_bwctrf_idx,
1061
16
    { "BW CT RF Index", "evs.132.bwctrf_idx",
1062
16
        FT_UINT8, BASE_DEC, VALS(evs_132_bwctrf_idx_vals), 0x0,
1063
16
        NULL, HFILL }
1064
16
    },
1065
16
    { &hf_evs_28_frame_type,
1066
16
    { "Frame type", "evs.28.frame_type",
1067
16
        FT_UINT8, BASE_DEC, VALS(evs_28_frame_type_vals), 0x0,
1068
16
        NULL, HFILL }
1069
16
    },
1070
16
    { &hf_evs_28_bw_ppp_nelp,
1071
16
    { "BW PPP/NELP", "evs.28.bw_ppp_nelp",
1072
16
        FT_UINT8, BASE_DEC, VALS(evs_28_bw_ppp_nelp_vals), 0x0,
1073
16
        NULL, HFILL }
1074
16
    },
1075
16
    { &hf_evs_72_80_bwct_idx,
1076
16
    { "BW CT Index", "evs.72.80.bwct_idx",
1077
16
        FT_UINT8, BASE_DEC, VALS(evs_72_80_bwct_idx_vals), 0x0,
1078
16
        NULL, HFILL }
1079
16
    },
1080
16
    { &hf_evs_320_bwct_idx,
1081
16
    { "BW CT Index", "evs.320.bwct_idx",
1082
16
        FT_UINT8, BASE_DEC, VALS(evs_320_bwct_idx_vals), 0x0,
1083
16
        NULL, HFILL }
1084
16
    },
1085
16
    { &hf_evs_640_bwct_idx,
1086
16
    { "BW CT Index", "evs.640.bwct_idx",
1087
16
        FT_UINT8, BASE_DEC, VALS(evs_640_bwct_idx_vals), 0x0,
1088
16
        NULL, HFILL }
1089
16
    },
1090
16
};
1091
1092
1093
    /* Setup protocol subtree array */
1094
16
    static int *ett[] = {
1095
16
        &ett_evs,
1096
16
        &ett_evs_header,
1097
16
        &ett_evs_speech,
1098
16
        &ett_evs_voice_data,
1099
16
    };
1100
1101
1102
    /* Register the protocol name and description */
1103
16
    proto_evs = proto_register_protocol("Enhanced Voice Services", "EVS", "evs");
1104
1105
    /* Required function calls to register the header fields and subtrees used */
1106
16
    proto_register_field_array(proto_evs, hf, array_length(hf));
1107
16
    proto_register_subtree_array(ett, array_length(ett));
1108
1109
16
    evs_module = prefs_register_protocol(proto_evs, NULL);
1110
1111
16
    prefs_register_obsolete_preference(evs_module, "dynamic.payload.type");
1112
16
    prefs_register_bool_preference(evs_module, "hf_only",
1113
16
                                   "Header-Full format only",
1114
16
                                   "Decode payload assuming that Header-Full format only is used",
1115
16
                                   &evs_hf_only);
1116
1117
16
    evs_handle = register_dissector("evs", dissect_evs, proto_evs);
1118
16
}
1119
1120
void
1121
proto_reg_handoff_evs(void)
1122
16
{
1123
16
    dissector_add_string("rtp_dyn_payload_type", "EVS", evs_handle);
1124
16
    dissector_add_uint_range_with_preference("rtp.pt", "", evs_handle);
1125
16
    proto_rtp = proto_get_id_by_filter_name("rtp");
1126
16
}
1127
1128
/*
1129
 * Editor modelines  -  https://www.wireshark.org/tools/modelines.html
1130
 *
1131
 * Local variables:
1132
 * c-basic-offset: 4
1133
 * tab-width: 8
1134
 * indent-tabs-mode: nil
1135
 * End:
1136
 *
1137
 * vi: set shiftwidth=4 tabstop=8 expandtab:
1138
 * :indentSize=4:tabSize=8:noTabs=true:
1139
 */
1140