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[nageru] / nageru / mixer.cpp
1 #undef Success
2
3 #include "mixer.h"
4
5 #include <assert.h>
6 #include <epoxy/egl.h>
7 #include <movit/effect.h>
8 #include <movit/effect_chain.h>
9 #include <movit/effect_util.h>
10 #include <movit/flat_input.h>
11 #include <movit/image_format.h>
12 #include <movit/init.h>
13 #include <movit/resource_pool.h>
14 #include <pthread.h>
15 #include <stdint.h>
16 #include <stdio.h>
17 #include <stdlib.h>
18 #include <algorithm>
19 #include <chrono>
20 #include <condition_variable>
21 #include <cstddef>
22 #include <cstdint>
23 #include <memory>
24 #include <mutex>
25 #include <ratio>
26 #include <string>
27 #include <thread>
28 #include <utility>
29 #include <vector>
30
31 #include "DeckLinkAPI.h"
32 #include "LinuxCOM.h"
33 #include "alsa_output.h"
34 #include "basic_stats.h"
35 #include "bmusb/bmusb.h"
36 #include "bmusb/fake_capture.h"
37 #ifdef HAVE_CEF
38 #include "cef_capture.h"
39 #endif
40 #include "chroma_subsampler.h"
41 #include "shared/context.h"
42 #include "decklink_capture.h"
43 #include "decklink_output.h"
44 #include "defs.h"
45 #include "shared/disk_space_estimator.h"
46 #include "ffmpeg_capture.h"
47 #include "flags.h"
48 #include "image_input.h"
49 #include "input_mapping.h"
50 #include "shared/metrics.h"
51 #include "shared/va_display.h"
52 #include "mjpeg_encoder.h"
53 #include "pbo_frame_allocator.h"
54 #include "shared/ref_counted_gl_sync.h"
55 #include "resampling_queue.h"
56 #include "shared/timebase.h"
57 #include "timecode_renderer.h"
58 #include "v210_converter.h"
59 #include "video_encoder.h"
60
61 #undef Status
62 #include <google/protobuf/util/json_util.h>
63 #include "json.pb.h"
64
65 #ifdef HAVE_SRT
66 // Must come after CEF, since it includes <syslog.h>, which has #defines
67 // that conflict with CEF logging constants.
68 #include <srt/srt.h>
69 #endif
70
71 class IDeckLink;
72 class QOpenGLContext;
73
74 using namespace movit;
75 using namespace std;
76 using namespace std::chrono;
77 using namespace std::placeholders;
78 using namespace bmusb;
79
80 Mixer *global_mixer = nullptr;
81
82 namespace {
83
84 void insert_new_frame(RefCountedFrame frame, unsigned field_num, bool interlaced, unsigned card_index, InputState *input_state)
85 {
86         if (interlaced) {
87                 for (unsigned frame_num = FRAME_HISTORY_LENGTH; frame_num --> 1; ) {  // :-)
88                         input_state->buffered_frames[card_index][frame_num] =
89                                 input_state->buffered_frames[card_index][frame_num - 1];
90                 }
91                 input_state->buffered_frames[card_index][0] = { frame, field_num };
92         } else {
93                 for (unsigned frame_num = 0; frame_num < FRAME_HISTORY_LENGTH; ++frame_num) {
94                         input_state->buffered_frames[card_index][frame_num] = { frame, field_num };
95                 }
96         }
97 }
98
99 void ensure_texture_resolution(PBOFrameAllocator::Userdata *userdata, unsigned field, unsigned width, unsigned height, unsigned cbcr_width, unsigned cbcr_height, unsigned v210_width)
100 {
101         bool first;
102         switch (userdata->pixel_format) {
103         case PixelFormat_10BitYCbCr:
104                 first = userdata->tex_v210[field] == 0 || userdata->tex_444[field] == 0;
105                 break;
106         case PixelFormat_8BitYCbCr:
107                 first = userdata->tex_y[field] == 0 || userdata->tex_cbcr[field] == 0;
108                 break;
109         case PixelFormat_8BitBGRA:
110                 first = userdata->tex_rgba[field] == 0;
111                 break;
112         case PixelFormat_8BitYCbCrPlanar:
113                 first = userdata->tex_y[field] == 0 || userdata->tex_cb[field] == 0 || userdata->tex_cr[field] == 0;
114                 break;
115         default:
116                 assert(false);
117         }
118
119         const bool recreate_main_texture =
120                 first ||
121                 width != userdata->last_width[field] ||
122                 height != userdata->last_height[field] ||
123                 cbcr_width != userdata->last_cbcr_width[field] ||
124                 cbcr_height != userdata->last_cbcr_height[field];
125         const bool recreate_v210_texture =
126                 global_flags.ten_bit_input &&
127                 (first || v210_width != userdata->last_v210_width[field] || height != userdata->last_height[field]);
128
129         if (recreate_main_texture) {
130                 // We changed resolution since last use of this texture, so we need to create
131                 // a new object. Note that this each card has its own PBOFrameAllocator,
132                 // we don't need to worry about these flip-flopping between resolutions.
133                 switch (userdata->pixel_format) {
134                 case PixelFormat_10BitYCbCr:
135                         glBindTexture(GL_TEXTURE_2D, userdata->tex_444[field]);
136                         check_error();
137                         glTexImage2D(GL_TEXTURE_2D, 0, GL_RGB10_A2, width, height, 0, GL_RGBA, GL_UNSIGNED_INT_2_10_10_10_REV, nullptr);
138                         check_error();
139                         break;
140                 case PixelFormat_8BitYCbCr: {
141                         glBindTexture(GL_TEXTURE_2D, userdata->tex_cbcr[field]);
142                         check_error();
143                         glTexImage2D(GL_TEXTURE_2D, 0, GL_RG8, cbcr_width, height, 0, GL_RG, GL_UNSIGNED_BYTE, nullptr);
144                         check_error();
145                         glBindTexture(GL_TEXTURE_2D, userdata->tex_y[field]);
146                         check_error();
147                         glTexImage2D(GL_TEXTURE_2D, 0, GL_R8, width, height, 0, GL_RED, GL_UNSIGNED_BYTE, nullptr);
148                         check_error();
149                         break;
150                 }
151                 case PixelFormat_8BitYCbCrPlanar: {
152                         glBindTexture(GL_TEXTURE_2D, userdata->tex_y[field]);
153                         check_error();
154                         glTexImage2D(GL_TEXTURE_2D, 0, GL_R8, width, height, 0, GL_RED, GL_UNSIGNED_BYTE, nullptr);
155                         check_error();
156                         glBindTexture(GL_TEXTURE_2D, userdata->tex_cb[field]);
157                         check_error();
158                         glTexImage2D(GL_TEXTURE_2D, 0, GL_R8, cbcr_width, cbcr_height, 0, GL_RED, GL_UNSIGNED_BYTE, nullptr);
159                         check_error();
160                         glBindTexture(GL_TEXTURE_2D, userdata->tex_cr[field]);
161                         check_error();
162                         glTexImage2D(GL_TEXTURE_2D, 0, GL_R8, cbcr_width, cbcr_height, 0, GL_RED, GL_UNSIGNED_BYTE, nullptr);
163                         check_error();
164                         break;
165                 }
166                 case PixelFormat_8BitBGRA:
167                         glBindTexture(GL_TEXTURE_2D, userdata->tex_rgba[field]);
168                         check_error();
169                         // NOTE: sRGB may be disabled by sRGBSwitchingFlatInput.
170                         glTexImage2D(GL_TEXTURE_2D, 0, GL_SRGB8_ALPHA8, width, height, 0, GL_BGRA, GL_UNSIGNED_INT_8_8_8_8_REV, nullptr);
171                         check_error();
172                         break;
173                 default:
174                         assert(false);
175                 }
176                 userdata->last_width[field] = width;
177                 userdata->last_height[field] = height;
178                 userdata->last_cbcr_width[field] = cbcr_width;
179                 userdata->last_cbcr_height[field] = cbcr_height;
180         }
181         if (recreate_v210_texture) {
182                 // Same as above; we need to recreate the texture.
183                 glBindTexture(GL_TEXTURE_2D, userdata->tex_v210[field]);
184                 check_error();
185                 glTexImage2D(GL_TEXTURE_2D, 0, GL_RGB10_A2, v210_width, height, 0, GL_RGBA, GL_UNSIGNED_INT_2_10_10_10_REV, nullptr);
186                 check_error();
187                 userdata->last_v210_width[field] = v210_width;
188                 userdata->last_height[field] = height;
189         }
190 }
191
192 void upload_texture(GLuint tex, GLuint width, GLuint height, GLuint stride, bool interlaced_stride, GLenum format, GLenum type, GLintptr offset)
193 {
194         if (interlaced_stride) {
195                 stride *= 2;
196         }
197         if (global_flags.flush_pbos) {
198                 glFlushMappedBufferRange(GL_PIXEL_UNPACK_BUFFER, offset, stride * height);
199                 check_error();
200         }
201
202         glBindTexture(GL_TEXTURE_2D, tex);
203         check_error();
204         if (interlaced_stride) {
205                 glPixelStorei(GL_UNPACK_ROW_LENGTH, width * 2);
206                 check_error();
207         } else {
208                 glPixelStorei(GL_UNPACK_ROW_LENGTH, 0);
209                 check_error();
210         }
211
212         glTexSubImage2D(GL_TEXTURE_2D, 0, 0, 0, width, height, format, type, BUFFER_OFFSET(offset));
213         check_error();
214         glBindTexture(GL_TEXTURE_2D, 0);
215         check_error();
216         glPixelStorei(GL_UNPACK_ROW_LENGTH, 0);
217         check_error();
218 }
219
220 }  // namespace
221
222 void JitterHistory::register_metrics(const vector<pair<string, string>> &labels)
223 {
224         global_metrics.add("input_underestimated_jitter_frames", labels, &metric_input_underestimated_jitter_frames);
225         global_metrics.add("input_estimated_max_jitter_seconds", labels, &metric_input_estimated_max_jitter_seconds, Metrics::TYPE_GAUGE);
226 }
227
228 void JitterHistory::unregister_metrics(const vector<pair<string, string>> &labels)
229 {
230         global_metrics.remove("input_underestimated_jitter_frames", labels);
231         global_metrics.remove("input_estimated_max_jitter_seconds", labels);
232 }
233
234 void JitterHistory::frame_arrived(steady_clock::time_point now, int64_t frame_duration, size_t dropped_frames)
235 {
236         if (expected_timestamp > steady_clock::time_point::min()) {
237                 expected_timestamp += dropped_frames * nanoseconds(frame_duration * 1000000000 / TIMEBASE);
238                 double jitter_seconds = fabs(duration<double>(expected_timestamp - now).count());
239                 history.push_back(orders.insert(jitter_seconds));
240                 if (jitter_seconds > estimate_max_jitter()) {
241                         ++metric_input_underestimated_jitter_frames;
242                 }
243
244                 metric_input_estimated_max_jitter_seconds = estimate_max_jitter();
245
246                 if (history.size() > history_length) {
247                         orders.erase(history.front());
248                         history.pop_front();
249                 }
250                 assert(history.size() <= history_length);
251         }
252         expected_timestamp = now + nanoseconds(frame_duration * 1000000000 / TIMEBASE);
253 }
254
255 double JitterHistory::estimate_max_jitter() const
256 {
257         if (orders.empty()) {
258                 return 0.0;
259         }
260         size_t elem_idx = lrint((orders.size() - 1) * percentile);
261         if (percentile <= 0.5) {
262                 return *next(orders.begin(), elem_idx) * multiplier;
263         } else {
264                 return *prev(orders.end(), orders.size() - elem_idx) * multiplier;
265         }
266 }
267
268 void QueueLengthPolicy::register_metrics(const vector<pair<string, string>> &labels)
269 {
270         global_metrics.add("input_queue_safe_length_frames", labels, &metric_input_queue_safe_length_frames, Metrics::TYPE_GAUGE);
271 }
272
273 void QueueLengthPolicy::unregister_metrics(const vector<pair<string, string>> &labels)
274 {
275         global_metrics.remove("input_queue_safe_length_frames", labels);
276 }
277
278 void QueueLengthPolicy::update_policy(steady_clock::time_point now,
279                                       steady_clock::time_point expected_next_frame,
280                                       int64_t input_frame_duration,
281                                       int64_t master_frame_duration,
282                                       double max_input_card_jitter_seconds,
283                                       double max_master_card_jitter_seconds)
284 {
285         double input_frame_duration_seconds = input_frame_duration / double(TIMEBASE);
286         double master_frame_duration_seconds = master_frame_duration / double(TIMEBASE);
287
288         // Figure out when we can expect the next frame for this card, assuming
289         // worst-case jitter (ie., the frame is maximally late).
290         double seconds_until_next_frame = max(duration<double>(expected_next_frame - now).count() + max_input_card_jitter_seconds, 0.0);
291
292         // How many times are the master card expected to tick in that time?
293         // We assume the master clock has worst-case jitter but not any rate
294         // discrepancy, ie., it ticks as early as possible every time, but not
295         // cumulatively.
296         double frames_needed = (seconds_until_next_frame + max_master_card_jitter_seconds) / master_frame_duration_seconds;
297
298         // As a special case, if the master card ticks faster than the input card,
299         // we expect the queue to drain by itself even without dropping. But if
300         // the difference is small (e.g. 60 Hz master and 59.94 input), it would
301         // go slowly enough that the effect wouldn't really be appreciable.
302         // We account for this by looking at the situation five frames ahead,
303         // assuming everything else is the same.
304         double frames_allowed;
305         if (master_frame_duration < input_frame_duration) {
306                 frames_allowed = frames_needed + 5 * (input_frame_duration_seconds - master_frame_duration_seconds) / master_frame_duration_seconds;
307         } else {
308                 frames_allowed = frames_needed;
309         }
310
311         safe_queue_length = max<int>(floor(frames_allowed), 0);
312         metric_input_queue_safe_length_frames = safe_queue_length;
313 }
314
315 Mixer::Mixer(const QSurfaceFormat &format, unsigned num_cards)
316         : httpd(),
317           num_cards(num_cards),
318           mixer_surface(create_surface(format)),
319           h264_encoder_surface(create_surface(format)),
320           decklink_output_surface(create_surface(format)),
321           image_update_surface(create_surface(format))
322 {
323         memcpy(ycbcr_interpretation, global_flags.ycbcr_interpretation, sizeof(ycbcr_interpretation));
324         CHECK(init_movit(MOVIT_SHADER_DIR, MOVIT_DEBUG_OFF));
325         check_error();
326
327         if (!epoxy_has_gl_extension("GL_EXT_texture_sRGB_decode") ||
328             !epoxy_has_gl_extension("GL_ARB_sampler_objects")) {
329                 fprintf(stderr, "Nageru requires GL_EXT_texture_sRGB_decode and GL_ARB_sampler_objects to run.\n");
330                 exit(1);
331         }
332
333         // Since we allow non-bouncing 4:2:2 YCbCrInputs, effective subpixel precision
334         // will be halved when sampling them, and we need to compensate here.
335         movit_texel_subpixel_precision /= 2.0;
336
337         resource_pool.reset(new ResourcePool);
338         for (unsigned i = 0; i < NUM_OUTPUTS; ++i) {
339                 output_channel[i].parent = this;
340                 output_channel[i].channel = i;
341         }
342
343         ImageFormat inout_format;
344         inout_format.color_space = COLORSPACE_sRGB;
345         inout_format.gamma_curve = GAMMA_sRGB;
346
347         // Matches the 4:2:0 format created by the main chain.
348         YCbCrFormat ycbcr_format;
349         ycbcr_format.chroma_subsampling_x = 2;
350         ycbcr_format.chroma_subsampling_y = 2;
351         if (global_flags.ycbcr_rec709_coefficients) {
352                 ycbcr_format.luma_coefficients = YCBCR_REC_709;
353         } else {
354                 ycbcr_format.luma_coefficients = YCBCR_REC_601;
355         }
356         ycbcr_format.full_range = false;
357         ycbcr_format.num_levels = 1 << global_flags.x264_bit_depth;
358         ycbcr_format.cb_x_position = 0.0f;
359         ycbcr_format.cr_x_position = 0.0f;
360         ycbcr_format.cb_y_position = 0.5f;
361         ycbcr_format.cr_y_position = 0.5f;
362
363         // Initialize the neutral colors to sane values.
364         for (unsigned i = 0; i < MAX_VIDEO_CARDS; ++i) {
365                 last_received_neutral_color[i] = RGBTriplet(1.0f, 1.0f, 1.0f);
366         }
367
368         // Display chain; shows the live output produced by the main chain (or rather, a copy of it).
369         display_chain.reset(new EffectChain(global_flags.width, global_flags.height, resource_pool.get()));
370         check_error();
371         GLenum type = global_flags.x264_bit_depth > 8 ? GL_UNSIGNED_SHORT : GL_UNSIGNED_BYTE;
372         display_input = new YCbCrInput(inout_format, ycbcr_format, global_flags.width, global_flags.height, YCBCR_INPUT_SPLIT_Y_AND_CBCR, type);
373         display_chain->add_input(display_input);
374         display_chain->add_output(inout_format, OUTPUT_ALPHA_FORMAT_POSTMULTIPLIED);
375         display_chain->set_dither_bits(0);  // Don't bother.
376         display_chain->finalize();
377
378         video_encoder.reset(new VideoEncoder(resource_pool.get(), h264_encoder_surface, global_flags.va_display, global_flags.width, global_flags.height, &httpd, global_disk_space_estimator));
379         if (!global_flags.card_to_mjpeg_stream_export.empty()) {
380                 mjpeg_encoder.reset(new MJPEGEncoder(&httpd, global_flags.va_display));
381         }
382
383         // Must be instantiated after VideoEncoder has initialized global_flags.use_zerocopy.
384         theme.reset(new Theme(global_flags.theme_filename, global_flags.theme_dirs, resource_pool.get(), num_cards));
385
386         // Must be instantiated after the theme, as the theme decides the number of FFmpeg inputs.
387         std::vector<FFmpegCapture *> video_inputs = theme->get_video_inputs();
388         audio_mixer.reset(new AudioMixer(num_cards, video_inputs.size()));
389
390         httpd.add_endpoint("/channels", bind(&Mixer::get_channels_json, this), HTTPD::ALLOW_ALL_ORIGINS);
391         for (int channel_idx = 0; channel_idx < theme->get_num_channels(); ++channel_idx) {
392                 char url[256];
393                 snprintf(url, sizeof(url), "/channels/%d/color", channel_idx + 2);
394                 httpd.add_endpoint(url, bind(&Mixer::get_channel_color_http, this, unsigned(channel_idx + 2)), HTTPD::ALLOW_ALL_ORIGINS);
395         }
396
397         // Start listening for clients only once VideoEncoder has written its header, if any.
398         httpd.start(global_flags.http_port);
399
400         // First try initializing the then PCI devices, then USB, then
401         // fill up with fake cards until we have the desired number of cards.
402         unsigned num_pci_devices = 0;
403         unsigned card_index = 0;
404
405         {
406                 IDeckLinkIterator *decklink_iterator = CreateDeckLinkIteratorInstance();
407                 if (decklink_iterator != nullptr) {
408                         for ( ; card_index < num_cards; ++card_index) {
409                                 IDeckLink *decklink;
410                                 if (decklink_iterator->Next(&decklink) != S_OK) {
411                                         break;
412                                 }
413
414                                 DeckLinkCapture *capture = new DeckLinkCapture(decklink, card_index);
415                                 DeckLinkOutput *output = new DeckLinkOutput(resource_pool.get(), decklink_output_surface, global_flags.width, global_flags.height, card_index);
416                                 if (!output->set_device(decklink)) {
417                                         delete output;
418                                         output = nullptr;
419                                 }
420                                 configure_card(card_index, capture, CardType::LIVE_CARD, output);
421                                 ++num_pci_devices;
422                         }
423                         decklink_iterator->Release();
424                         fprintf(stderr, "Found %u DeckLink PCI card(s).\n", num_pci_devices);
425                 } else {
426                         fprintf(stderr, "DeckLink drivers not found. Probing for USB cards only.\n");
427                 }
428         }
429
430         unsigned num_usb_devices = BMUSBCapture::num_cards();
431         for (unsigned usb_card_index = 0; usb_card_index < num_usb_devices && card_index < num_cards; ++usb_card_index, ++card_index) {
432                 BMUSBCapture *capture = new BMUSBCapture(usb_card_index);
433                 capture->set_card_disconnected_callback(bind(&Mixer::bm_hotplug_remove, this, card_index));
434                 configure_card(card_index, capture, CardType::LIVE_CARD, /*output=*/nullptr);
435         }
436         fprintf(stderr, "Found %u USB card(s).\n", num_usb_devices);
437
438         unsigned num_fake_cards = 0;
439         for ( ; card_index < num_cards; ++card_index, ++num_fake_cards) {
440                 FakeCapture *capture = new FakeCapture(global_flags.width, global_flags.height, FAKE_FPS, OUTPUT_FREQUENCY, card_index, global_flags.fake_cards_audio);
441                 configure_card(card_index, capture, CardType::FAKE_CAPTURE, /*output=*/nullptr);
442         }
443
444         if (num_fake_cards > 0) {
445                 fprintf(stderr, "Initialized %u fake cards.\n", num_fake_cards);
446         }
447
448         // Initialize all video inputs the theme asked for. Note that these are
449         // all put _after_ the regular cards, which stop at <num_cards> - 1.
450         for (unsigned video_card_index = 0; video_card_index < video_inputs.size(); ++card_index, ++video_card_index) {
451                 if (card_index >= MAX_VIDEO_CARDS) {
452                         fprintf(stderr, "ERROR: Not enough card slots available for the videos the theme requested.\n");
453                         abort();
454                 }
455                 configure_card(card_index, video_inputs[video_card_index], CardType::FFMPEG_INPUT, /*output=*/nullptr);
456                 video_inputs[video_card_index]->set_card_index(card_index);
457         }
458         num_video_inputs = video_inputs.size();
459
460 #ifdef HAVE_CEF
461         // Same, for HTML inputs.
462         std::vector<CEFCapture *> html_inputs = theme->get_html_inputs();
463         for (unsigned html_card_index = 0; html_card_index < html_inputs.size(); ++card_index, ++html_card_index) {
464                 if (card_index >= MAX_VIDEO_CARDS) {
465                         fprintf(stderr, "ERROR: Not enough card slots available for the HTML inputs the theme requested.\n");
466                         abort();
467                 }
468                 configure_card(card_index, html_inputs[html_card_index], CardType::CEF_INPUT, /*output=*/nullptr);
469                 html_inputs[html_card_index]->set_card_index(card_index);
470         }
471         num_html_inputs = html_inputs.size();
472 #endif
473
474         BMUSBCapture::set_card_connected_callback(bind(&Mixer::bm_hotplug_add, this, _1));
475         BMUSBCapture::start_bm_thread();
476
477 #ifdef HAVE_SRT
478         if (global_flags.srt_port >= 0) {
479                 start_srt();
480         }
481 #endif
482
483         for (unsigned card_index = 0; card_index < num_cards + num_video_inputs + num_html_inputs; ++card_index) {
484                 cards[card_index].queue_length_policy.reset(card_index);
485         }
486
487         chroma_subsampler.reset(new ChromaSubsampler(resource_pool.get()));
488
489         if (global_flags.ten_bit_input) {
490                 if (!v210Converter::has_hardware_support()) {
491                         fprintf(stderr, "ERROR: --ten-bit-input requires support for OpenGL compute shaders\n");
492                         fprintf(stderr, "       (OpenGL 4.3, or GL_ARB_compute_shader + GL_ARB_shader_image_load_store).\n");
493                         abort();
494                 }
495                 v210_converter.reset(new v210Converter());
496
497                 // These are all the widths listed in the Blackmagic SDK documentation
498                 // (section 2.7.3, “Display Modes”).
499                 v210_converter->precompile_shader(720);
500                 v210_converter->precompile_shader(1280);
501                 v210_converter->precompile_shader(1920);
502                 v210_converter->precompile_shader(2048);
503                 v210_converter->precompile_shader(3840);
504                 v210_converter->precompile_shader(4096);
505         }
506         if (global_flags.ten_bit_output) {
507                 if (!v210Converter::has_hardware_support()) {
508                         fprintf(stderr, "ERROR: --ten-bit-output requires support for OpenGL compute shaders\n");
509                         fprintf(stderr, "       (OpenGL 4.3, or GL_ARB_compute_shader + GL_ARB_shader_image_load_store).\n");
510                         abort();
511                 }
512         }
513
514         timecode_renderer.reset(new TimecodeRenderer(resource_pool.get(), global_flags.width, global_flags.height));
515         display_timecode_in_stream = global_flags.display_timecode_in_stream;
516         display_timecode_on_stdout = global_flags.display_timecode_on_stdout;
517
518         if (global_flags.enable_alsa_output) {
519                 alsa.reset(new ALSAOutput(OUTPUT_FREQUENCY, /*num_channels=*/2));
520         }
521         if (global_flags.output_card != -1) {
522                 desired_output_card_index = global_flags.output_card;
523                 set_output_card_internal(global_flags.output_card);
524         }
525
526         output_jitter_history.register_metrics({{ "card", "output" }});
527
528         ImageInput::start_update_thread(image_update_surface);
529 }
530
531 Mixer::~Mixer()
532 {
533         ImageInput::end_update_thread();
534
535         if (mjpeg_encoder != nullptr) {
536                 mjpeg_encoder->stop();
537         }
538         httpd.stop();
539         BMUSBCapture::stop_bm_thread();
540
541         for (unsigned card_index = 0; card_index < num_cards + num_video_inputs + num_html_inputs; ++card_index) {
542                 cards[card_index].capture->stop_dequeue_thread();
543                 if (cards[card_index].output) {
544                         cards[card_index].output->end_output();
545                         cards[card_index].output.reset();
546                 }
547         }
548
549         video_encoder.reset(nullptr);
550 }
551
552 void Mixer::configure_card(unsigned card_index, CaptureInterface *capture, CardType card_type, DeckLinkOutput *output, bool is_srt_card)
553 {
554         printf("Configuring card %d...\n", card_index);
555
556         CaptureCard *card = &cards[card_index];
557         if (card->capture != nullptr) {
558                 card->capture->stop_dequeue_thread();
559         }
560         card->capture.reset(capture);
561         card->is_fake_capture = (card_type == CardType::FAKE_CAPTURE);
562         if (card->is_fake_capture) {
563                 card->fake_capture_counter = fake_capture_counter++;
564         }
565         card->is_cef_capture = (card_type == CardType::CEF_INPUT);
566         card->may_have_dropped_last_frame = false;
567         card->type = card_type;
568         if (card->output.get() != output) {
569                 card->output.reset(output);
570         }
571
572         PixelFormat pixel_format;
573         if (card_type == CardType::FFMPEG_INPUT) {
574                 pixel_format = capture->get_current_pixel_format();
575         } else if (card_type == CardType::CEF_INPUT) {
576                 pixel_format = PixelFormat_8BitBGRA;
577         } else if (global_flags.ten_bit_input) {
578                 pixel_format = PixelFormat_10BitYCbCr;
579         } else {
580                 pixel_format = PixelFormat_8BitYCbCr;
581         }
582
583         card->capture->set_frame_callback(bind(&Mixer::bm_frame, this, card_index, _1, _2, _3, _4, _5, _6, _7));
584         if (card->frame_allocator == nullptr) {
585                 card->frame_allocator.reset(new PBOFrameAllocator(pixel_format, 8 << 20, global_flags.width, global_flags.height, card_index, mjpeg_encoder.get()));  // 8 MB.
586         } else {
587                 // The format could have changed, but we cannot reset the allocator
588                 // and create a new one from scratch, since there may be allocated
589                 // frames from it that expect to call release_frame() on it.
590                 // Instead, ask the allocator to create new frames for us and discard
591                 // any old ones as they come back. This takes the mutex while
592                 // allocating, but nothing should really be sending frames in there
593                 // right now anyway (start_bm_capture() has not been called yet).
594                 card->frame_allocator->reconfigure(pixel_format, 8 << 20, global_flags.width, global_flags.height, card_index, mjpeg_encoder.get());
595         }
596         card->capture->set_video_frame_allocator(card->frame_allocator.get());
597         if (card->surface == nullptr) {
598                 card->surface = create_surface_with_same_format(mixer_surface);
599         }
600         while (!card->new_frames.empty()) card->new_frames.pop_front();
601         card->last_timecode = -1;
602         card->capture->set_pixel_format(pixel_format);
603         card->capture->configure_card();
604
605         // NOTE: start_bm_capture() happens in thread_func().
606
607         if (is_srt_card) {
608                 assert(card_type == CardType::FFMPEG_INPUT);
609         }
610
611         DeviceSpec device;
612         if (card_type == CardType::FFMPEG_INPUT && !is_srt_card) {
613                 device = DeviceSpec{InputSourceType::FFMPEG_VIDEO_INPUT, card_index - num_cards};
614         } else {
615                 device = DeviceSpec{InputSourceType::CAPTURE_CARD, card_index};
616         }
617         audio_mixer->reset_resampler(device);
618         audio_mixer->set_display_name(device, card->capture->get_description());
619         audio_mixer->trigger_state_changed_callback();
620
621         // Unregister old metrics, if any.
622         if (!card->labels.empty()) {
623                 const vector<pair<string, string>> &labels = card->labels;
624                 card->jitter_history.unregister_metrics(labels);
625                 card->queue_length_policy.unregister_metrics(labels);
626                 global_metrics.remove_if_exists("input_received_frames", labels);
627                 global_metrics.remove_if_exists("input_dropped_frames_jitter", labels);
628                 global_metrics.remove_if_exists("input_dropped_frames_error", labels);
629                 global_metrics.remove_if_exists("input_dropped_frames_resets", labels);
630                 global_metrics.remove_if_exists("input_queue_length_frames", labels);
631                 global_metrics.remove_if_exists("input_queue_duped_frames", labels);
632
633                 global_metrics.remove_if_exists("input_has_signal_bool", labels);
634                 global_metrics.remove_if_exists("input_is_connected_bool", labels);
635                 global_metrics.remove_if_exists("input_interlaced_bool", labels);
636                 global_metrics.remove_if_exists("input_width_pixels", labels);
637                 global_metrics.remove_if_exists("input_height_pixels", labels);
638                 global_metrics.remove_if_exists("input_frame_rate_nom", labels);
639                 global_metrics.remove_if_exists("input_frame_rate_den", labels);
640                 global_metrics.remove_if_exists("input_sample_rate_hz", labels);
641
642                 // SRT metrics.
643
644                 // Global measurements (counters).
645                 global_metrics.remove_if_exists("srt_uptime_seconds", labels);
646                 global_metrics.remove_if_exists("srt_send_duration_seconds", labels);
647                 global_metrics.remove_if_exists("srt_sent_bytes", labels);
648                 global_metrics.remove_if_exists("srt_received_bytes", labels);
649
650                 vector<pair<string, string>> packet_labels = card->labels;
651                 packet_labels.emplace_back("type", "normal");
652                 global_metrics.remove_if_exists("srt_sent_packets", packet_labels);
653                 global_metrics.remove_if_exists("srt_received_packets", packet_labels);
654
655                 packet_labels.back().second = "lost";
656                 global_metrics.remove_if_exists("srt_sent_packets", packet_labels);
657                 global_metrics.remove_if_exists("srt_received_packets", packet_labels);
658
659                 packet_labels.back().second = "retransmitted";
660                 global_metrics.remove_if_exists("srt_sent_packets", packet_labels);
661                 global_metrics.remove_if_exists("srt_sent_bytes", packet_labels);
662
663                 packet_labels.back().second = "ack";
664                 global_metrics.remove_if_exists("srt_sent_packets", packet_labels);
665                 global_metrics.remove_if_exists("srt_received_packets", packet_labels);
666
667                 packet_labels.back().second = "nak";
668                 global_metrics.remove_if_exists("srt_sent_packets", packet_labels);
669                 global_metrics.remove_if_exists("srt_received_packets", packet_labels);
670
671                 packet_labels.back().second = "dropped";
672                 global_metrics.remove_if_exists("srt_sent_packets", packet_labels);
673                 global_metrics.remove_if_exists("srt_received_packets", packet_labels);
674                 global_metrics.remove_if_exists("srt_sent_bytes", packet_labels);
675                 global_metrics.remove_if_exists("srt_received_bytes", packet_labels);
676
677                 packet_labels.back().second = "undecryptable";
678                 global_metrics.remove_if_exists("srt_received_packets", packet_labels);
679                 global_metrics.remove_if_exists("srt_received_bytes", packet_labels);
680
681                 global_metrics.remove_if_exists("srt_filter_sent_extra_packets", labels);
682                 global_metrics.remove_if_exists("srt_filter_received_extra_packets", labels);
683                 global_metrics.remove_if_exists("srt_filter_received_rebuilt_packets", labels);
684                 global_metrics.remove_if_exists("srt_filter_received_lost_packets", labels);
685
686                 // Instant measurements (gauges).
687                 global_metrics.remove_if_exists("srt_packet_sending_period_seconds", labels);
688                 global_metrics.remove_if_exists("srt_flow_window_packets", labels);
689                 global_metrics.remove_if_exists("srt_congestion_window_packets", labels);
690                 global_metrics.remove_if_exists("srt_flight_size_packets", labels);
691                 global_metrics.remove_if_exists("srt_rtt_seconds", labels);
692                 global_metrics.remove_if_exists("srt_estimated_bandwidth_bits_per_second", labels);
693                 global_metrics.remove_if_exists("srt_bandwidth_ceiling_bits_per_second", labels);
694                 global_metrics.remove_if_exists("srt_send_buffer_available_bytes", labels);
695                 global_metrics.remove_if_exists("srt_receive_buffer_available_bytes", labels);
696                 global_metrics.remove_if_exists("srt_mss_bytes", labels);
697
698                 global_metrics.remove_if_exists("srt_sender_unacked_packets", labels);
699                 global_metrics.remove_if_exists("srt_sender_unacked_bytes", labels);
700                 global_metrics.remove_if_exists("srt_sender_unacked_timespan_seconds", labels);
701                 global_metrics.remove_if_exists("srt_sender_delivery_delay_seconds", labels);
702
703                 global_metrics.remove_if_exists("srt_receiver_unacked_packets", labels);
704                 global_metrics.remove_if_exists("srt_receiver_unacked_bytes", labels);
705                 global_metrics.remove_if_exists("srt_receiver_unacked_timespan_seconds", labels);
706                 global_metrics.remove_if_exists("srt_receiver_delivery_delay_seconds", labels);
707         }
708
709         // Register metrics.
710         vector<pair<string, string>> labels;
711         char card_name[64];
712         snprintf(card_name, sizeof(card_name), "%d", card_index);
713         labels.emplace_back("card", card_name);
714
715         switch (card_type) {
716         case CardType::LIVE_CARD:
717                 labels.emplace_back("cardtype", "live");
718                 break;
719         case CardType::FAKE_CAPTURE:
720                 labels.emplace_back("cardtype", "fake");
721                 break;
722         case CardType::FFMPEG_INPUT:
723                 if (is_srt_card) {
724                         labels.emplace_back("cardtype", "srt");
725                 } else {
726                         labels.emplace_back("cardtype", "ffmpeg");
727                 }
728                 break;
729         case CardType::CEF_INPUT:
730                 labels.emplace_back("cardtype", "cef");
731                 break;
732         default:
733                 assert(false);
734         }
735         card->jitter_history.register_metrics(labels);
736         card->queue_length_policy.register_metrics(labels);
737         global_metrics.add("input_received_frames", labels, &card->metric_input_received_frames);
738         global_metrics.add("input_dropped_frames_jitter", labels, &card->metric_input_dropped_frames_jitter);
739         global_metrics.add("input_dropped_frames_error", labels, &card->metric_input_dropped_frames_error);
740         global_metrics.add("input_dropped_frames_resets", labels, &card->metric_input_resets);
741         global_metrics.add("input_queue_length_frames", labels, &card->metric_input_queue_length_frames, Metrics::TYPE_GAUGE);
742         global_metrics.add("input_queue_duped_frames", labels, &card->metric_input_duped_frames);
743
744         global_metrics.add("input_has_signal_bool", labels, &card->metric_input_has_signal_bool, Metrics::TYPE_GAUGE);
745         global_metrics.add("input_is_connected_bool", labels, &card->metric_input_is_connected_bool, Metrics::TYPE_GAUGE);
746         global_metrics.add("input_interlaced_bool", labels, &card->metric_input_interlaced_bool, Metrics::TYPE_GAUGE);
747         global_metrics.add("input_width_pixels", labels, &card->metric_input_width_pixels, Metrics::TYPE_GAUGE);
748         global_metrics.add("input_height_pixels", labels, &card->metric_input_height_pixels, Metrics::TYPE_GAUGE);
749         global_metrics.add("input_frame_rate_nom", labels, &card->metric_input_frame_rate_nom, Metrics::TYPE_GAUGE);
750         global_metrics.add("input_frame_rate_den", labels, &card->metric_input_frame_rate_den, Metrics::TYPE_GAUGE);
751         global_metrics.add("input_sample_rate_hz", labels, &card->metric_input_sample_rate_hz, Metrics::TYPE_GAUGE);
752
753         if (is_srt_card) {
754                 // Global measurements (counters).
755                 global_metrics.add("srt_uptime_seconds", labels, &card->metric_srt_uptime_seconds);
756                 global_metrics.add("srt_send_duration_seconds", labels, &card->metric_srt_send_duration_seconds);
757                 global_metrics.add("srt_sent_bytes", labels, &card->metric_srt_sent_bytes);
758                 global_metrics.add("srt_received_bytes", labels, &card->metric_srt_received_bytes);
759
760                 vector<pair<string, string>> packet_labels = labels;
761                 packet_labels.emplace_back("type", "normal");
762                 global_metrics.add("srt_sent_packets", packet_labels, &card->metric_srt_sent_packets_normal);
763                 global_metrics.add("srt_received_packets", packet_labels, &card->metric_srt_received_packets_normal);
764
765                 packet_labels.back().second = "lost";
766                 global_metrics.add("srt_sent_packets", packet_labels, &card->metric_srt_sent_packets_lost);
767                 global_metrics.add("srt_received_packets", packet_labels, &card->metric_srt_received_packets_lost);
768
769                 packet_labels.back().second = "retransmitted";
770                 global_metrics.add("srt_sent_packets", packet_labels, &card->metric_srt_sent_packets_retransmitted);
771                 global_metrics.add("srt_sent_bytes", packet_labels, &card->metric_srt_sent_bytes_retransmitted);
772
773                 packet_labels.back().second = "ack";
774                 global_metrics.add("srt_sent_packets", packet_labels, &card->metric_srt_sent_packets_ack);
775                 global_metrics.add("srt_received_packets", packet_labels, &card->metric_srt_received_packets_ack);
776
777                 packet_labels.back().second = "nak";
778                 global_metrics.add("srt_sent_packets", packet_labels, &card->metric_srt_sent_packets_nak);
779                 global_metrics.add("srt_received_packets", packet_labels, &card->metric_srt_received_packets_nak);
780
781                 packet_labels.back().second = "dropped";
782                 global_metrics.add("srt_sent_packets", packet_labels, &card->metric_srt_sent_packets_dropped);
783                 global_metrics.add("srt_received_packets", packet_labels, &card->metric_srt_received_packets_dropped);
784                 global_metrics.add("srt_sent_bytes", packet_labels, &card->metric_srt_sent_bytes_dropped);
785                 global_metrics.add("srt_received_bytes", packet_labels, &card->metric_srt_received_bytes_dropped);
786
787                 packet_labels.back().second = "undecryptable";
788                 global_metrics.add("srt_received_packets", packet_labels, &card->metric_srt_received_packets_undecryptable);
789                 global_metrics.add("srt_received_bytes", packet_labels, &card->metric_srt_received_bytes_undecryptable);
790
791                 global_metrics.add("srt_filter_sent_extra_packets", labels, &card->metric_srt_filter_sent_packets);
792                 global_metrics.add("srt_filter_received_extra_packets", labels, &card->metric_srt_filter_received_extra_packets);
793                 global_metrics.add("srt_filter_received_rebuilt_packets", labels, &card->metric_srt_filter_received_rebuilt_packets);
794                 global_metrics.add("srt_filter_received_lost_packets", labels, &card->metric_srt_filter_received_lost_packets);
795
796                 // Instant measurements (gauges).
797                 global_metrics.add("srt_packet_sending_period_seconds", labels, &card->metric_srt_packet_sending_period_seconds, Metrics::TYPE_GAUGE);
798                 global_metrics.add("srt_flow_window_packets", labels, &card->metric_srt_flow_window_packets, Metrics::TYPE_GAUGE);
799                 global_metrics.add("srt_congestion_window_packets", labels, &card->metric_srt_congestion_window_packets, Metrics::TYPE_GAUGE);
800                 global_metrics.add("srt_flight_size_packets", labels, &card->metric_srt_flight_size_packets, Metrics::TYPE_GAUGE);
801                 global_metrics.add("srt_rtt_seconds", labels, &card->metric_srt_rtt_seconds, Metrics::TYPE_GAUGE);
802                 global_metrics.add("srt_estimated_bandwidth_bits_per_second", labels, &card->metric_srt_estimated_bandwidth_bits_per_second, Metrics::TYPE_GAUGE);
803                 global_metrics.add("srt_bandwidth_ceiling_bits_per_second", labels, &card->metric_srt_bandwidth_ceiling_bits_per_second, Metrics::TYPE_GAUGE);
804                 global_metrics.add("srt_send_buffer_available_bytes", labels, &card->metric_srt_send_buffer_available_bytes, Metrics::TYPE_GAUGE);
805                 global_metrics.add("srt_receive_buffer_available_bytes", labels, &card->metric_srt_receive_buffer_available_bytes, Metrics::TYPE_GAUGE);
806                 global_metrics.add("srt_mss_bytes", labels, &card->metric_srt_mss_bytes, Metrics::TYPE_GAUGE);
807
808                 global_metrics.add("srt_sender_unacked_packets", labels, &card->metric_srt_sender_unacked_packets, Metrics::TYPE_GAUGE);
809                 global_metrics.add("srt_sender_unacked_bytes", labels, &card->metric_srt_sender_unacked_bytes, Metrics::TYPE_GAUGE);
810                 global_metrics.add("srt_sender_unacked_timespan_seconds", labels, &card->metric_srt_sender_unacked_timespan_seconds, Metrics::TYPE_GAUGE);
811                 global_metrics.add("srt_sender_delivery_delay_seconds", labels, &card->metric_srt_sender_delivery_delay_seconds, Metrics::TYPE_GAUGE);
812
813                 global_metrics.add("srt_receiver_unacked_packets", labels, &card->metric_srt_receiver_unacked_packets, Metrics::TYPE_GAUGE);
814                 global_metrics.add("srt_receiver_unacked_bytes", labels, &card->metric_srt_receiver_unacked_bytes, Metrics::TYPE_GAUGE);
815                 global_metrics.add("srt_receiver_unacked_timespan_seconds", labels, &card->metric_srt_receiver_unacked_timespan_seconds, Metrics::TYPE_GAUGE);
816                 global_metrics.add("srt_receiver_delivery_delay_seconds", labels, &card->metric_srt_receiver_delivery_delay_seconds, Metrics::TYPE_GAUGE);
817         }
818
819         card->labels = labels;
820 }
821
822 void Mixer::set_output_card_internal(int card_index)
823 {
824         // We don't really need to take card_mutex, since we're in the mixer
825         // thread and don't mess with any queues (which is the only thing that happens
826         // from other threads), but it's probably the safest in the long run.
827         unique_lock<mutex> lock(card_mutex);
828         if (output_card_index != -1) {
829                 // Switch the old card from output to input.
830                 CaptureCard *old_card = &cards[output_card_index];
831                 old_card->output->end_output();
832
833                 // Stop the fake card that we put into place.
834                 // This needs to _not_ happen under the mutex, to avoid deadlock
835                 // (delivering the last frame needs to take the mutex).
836                 CaptureInterface *fake_capture = old_card->capture.get();
837                 lock.unlock();
838                 fake_capture->stop_dequeue_thread();
839                 lock.lock();
840                 old_card->capture = move(old_card->parked_capture);  // TODO: reset the metrics
841                 old_card->is_fake_capture = false;
842                 old_card->capture->start_bm_capture();
843         }
844         if (card_index != -1) {
845                 CaptureCard *card = &cards[card_index];
846                 CaptureInterface *capture = card->capture.get();
847                 // TODO: DeckLinkCapture::stop_dequeue_thread can actually take
848                 // several seconds to complete (blocking on DisableVideoInput);
849                 // see if we can maybe do it asynchronously.
850                 lock.unlock();
851                 capture->stop_dequeue_thread();
852                 lock.lock();
853                 card->parked_capture = move(card->capture);
854                 CaptureInterface *fake_capture = new FakeCapture(global_flags.width, global_flags.height, FAKE_FPS, OUTPUT_FREQUENCY, card_index, global_flags.fake_cards_audio);
855                 configure_card(card_index, fake_capture, CardType::FAKE_CAPTURE, card->output.release());
856                 card->queue_length_policy.reset(card_index);
857                 card->capture->start_bm_capture();
858                 desired_output_video_mode = output_video_mode = card->output->pick_video_mode(desired_output_video_mode);
859                 card->output->start_output(desired_output_video_mode, pts_int);
860         }
861         output_card_index = card_index;
862         output_jitter_history.clear();
863 }
864
865 namespace {
866
867 int unwrap_timecode(uint16_t current_wrapped, int last)
868 {
869         uint16_t last_wrapped = last & 0xffff;
870         if (current_wrapped > last_wrapped) {
871                 return (last & ~0xffff) | current_wrapped;
872         } else {
873                 return 0x10000 + ((last & ~0xffff) | current_wrapped);
874         }
875 }
876
877 DeviceSpec card_index_to_device(unsigned card_index, unsigned num_cards)
878 {
879         if (card_index >= num_cards) {
880                 return DeviceSpec{InputSourceType::FFMPEG_VIDEO_INPUT, card_index - num_cards};
881         } else {
882                 return DeviceSpec{InputSourceType::CAPTURE_CARD, card_index};
883         }
884 }
885
886 }  // namespace
887
888 void Mixer::bm_frame(unsigned card_index, uint16_t timecode,
889                      FrameAllocator::Frame video_frame, size_t video_offset, VideoFormat video_format,
890                      FrameAllocator::Frame audio_frame, size_t audio_offset, AudioFormat audio_format)
891 {
892         DeviceSpec device = card_index_to_device(card_index, num_cards);
893         CaptureCard *card = &cards[card_index];
894
895         ++card->metric_input_received_frames;
896         card->metric_input_has_signal_bool = video_format.has_signal;
897         card->metric_input_is_connected_bool = video_format.is_connected;
898         card->metric_input_interlaced_bool = video_format.interlaced;
899         card->metric_input_width_pixels = video_format.width;
900         card->metric_input_height_pixels = video_format.height;
901         card->metric_input_frame_rate_nom = video_format.frame_rate_nom;
902         card->metric_input_frame_rate_den = video_format.frame_rate_den;
903         card->metric_input_sample_rate_hz = audio_format.sample_rate;
904
905         if (is_mode_scanning[card_index]) {
906                 if (video_format.has_signal) {
907                         // Found a stable signal, so stop scanning.
908                         is_mode_scanning[card_index] = false;
909                 } else {
910                         static constexpr double switch_time_s = 0.1;  // Should be enough time for the signal to stabilize.
911                         steady_clock::time_point now = steady_clock::now();
912                         double sec_since_last_switch = duration<double>(steady_clock::now() - last_mode_scan_change[card_index]).count();
913                         if (sec_since_last_switch > switch_time_s) {
914                                 // It isn't this mode; try the next one.
915                                 mode_scanlist_index[card_index]++;
916                                 mode_scanlist_index[card_index] %= mode_scanlist[card_index].size();
917                                 cards[card_index].capture->set_video_mode(mode_scanlist[card_index][mode_scanlist_index[card_index]]);
918                                 last_mode_scan_change[card_index] = now;
919                         }
920                 }
921         }
922
923         int64_t frame_length = int64_t(TIMEBASE) * video_format.frame_rate_den / video_format.frame_rate_nom;
924         assert(frame_length > 0);
925
926         size_t num_samples = (audio_frame.len > audio_offset) ? (audio_frame.len - audio_offset) / audio_format.num_channels / (audio_format.bits_per_sample / 8) : 0;
927         if (num_samples > OUTPUT_FREQUENCY / 10 && card->type != CardType::FFMPEG_INPUT) {
928                 printf("%s: Dropping frame with implausible audio length (len=%d, offset=%d) [timecode=0x%04x video_len=%d video_offset=%d video_format=%x)\n",
929                         spec_to_string(device).c_str(), int(audio_frame.len), int(audio_offset),
930                         timecode, int(video_frame.len), int(video_offset), video_format.id);
931                 if (video_frame.owner) {
932                         video_frame.owner->release_frame(video_frame);
933                 }
934                 if (audio_frame.owner) {
935                         audio_frame.owner->release_frame(audio_frame);
936                 }
937                 return;
938         }
939
940         int dropped_frames = 0;
941         if (card->last_timecode != -1) {
942                 dropped_frames = unwrap_timecode(timecode, card->last_timecode) - card->last_timecode - 1;
943         }
944
945         // Number of samples per frame if we need to insert silence.
946         // (Could be nonintegral, but resampling will save us then.)
947         const int silence_samples = OUTPUT_FREQUENCY * video_format.frame_rate_den / video_format.frame_rate_nom;
948
949         if (dropped_frames > MAX_FPS * 2) {
950                 fprintf(stderr, "%s lost more than two seconds (or time code jumping around; from 0x%04x to 0x%04x), resetting resampler\n",
951                         spec_to_string(device).c_str(), card->last_timecode, timecode);
952                 audio_mixer->reset_resampler(device);
953                 dropped_frames = 0;
954                 ++card->metric_input_resets;
955         } else if (dropped_frames > 0) {
956                 // Insert silence as needed.
957                 fprintf(stderr, "%s dropped %d frame(s) (before timecode 0x%04x), inserting silence.\n",
958                         spec_to_string(device).c_str(), dropped_frames, timecode);
959                 card->metric_input_dropped_frames_error += dropped_frames;
960
961                 bool success;
962                 do {
963                         success = audio_mixer->add_silence(device, silence_samples, dropped_frames);
964                 } while (!success);
965         }
966
967         if (num_samples > 0) {
968                 audio_mixer->add_audio(device, audio_frame.data + audio_offset, num_samples, audio_format, audio_frame.received_timestamp);
969
970                 // Audio for the MJPEG stream. We don't resample; audio that's not in 48 kHz
971                 // just gets dropped for now.
972                 //
973                 // Only bother doing MJPEG encoding if there are any connected clients
974                 // that want the stream.
975                 if (httpd.get_num_connected_multicam_clients() > 0 ||
976                     httpd.get_num_connected_siphon_clients(card_index) > 0) {
977                         vector<int32_t> converted_samples = convert_audio_to_fixed32(audio_frame.data + audio_offset, num_samples, audio_format, 2);
978                         lock_guard<mutex> lock(card_mutex);
979                         if (card->new_raw_audio.empty()) {
980                                 card->new_raw_audio = move(converted_samples);
981                         } else {
982                                 // For raw audio, we don't really synchronize audio and video;
983                                 // we just put the audio in frame by frame, and if a video frame is
984                                 // dropped, we still keep the audio, which means it will be added
985                                 // to the beginning of the next frame. It would probably be better
986                                 // to move the audio pts earlier to show this, but most players can
987                                 // live with some jitter, and in a lot of ways, it's much nicer for
988                                 // Futatabi to have all audio locked to a video frame.
989                                 card->new_raw_audio.insert(card->new_raw_audio.end(), converted_samples.begin(), converted_samples.end());
990
991                                 // Truncate to one second, just to be sure we don't have infinite buildup in case of weirdness.
992                                 if (card->new_raw_audio.size() > OUTPUT_FREQUENCY * 2) {
993                                         size_t excess_samples = card->new_raw_audio.size() - OUTPUT_FREQUENCY * 2;
994                                         card->new_raw_audio.erase(card->new_raw_audio.begin(), card->new_raw_audio.begin() + excess_samples);
995                                 }
996                         }
997                 }
998         }
999
1000         // Done with the audio, so release it.
1001         if (audio_frame.owner) {
1002                 audio_frame.owner->release_frame(audio_frame);
1003         }
1004
1005         card->last_timecode = timecode;
1006
1007         PBOFrameAllocator::Userdata *userdata = (PBOFrameAllocator::Userdata *)video_frame.userdata;
1008         if (card->type == CardType::FFMPEG_INPUT && userdata != nullptr) {
1009                 FFmpegCapture *ffmpeg_capture = static_cast<FFmpegCapture *>(card->capture.get());
1010                 userdata->has_last_subtitle = ffmpeg_capture->get_has_last_subtitle();
1011                 userdata->last_subtitle = ffmpeg_capture->get_last_subtitle();
1012         }
1013 #ifdef HAVE_SRT
1014         if (card->type == CardType::FFMPEG_INPUT) {
1015                 int srt_sock = static_cast<FFmpegCapture *>(card->capture.get())->get_srt_sock();
1016                 if (srt_sock != -1) {
1017                         update_srt_stats(srt_sock, card);
1018                 }
1019         }
1020 #endif
1021
1022         size_t cbcr_width, cbcr_height, cbcr_offset, y_offset;
1023         size_t expected_length = video_format.stride * (video_format.height + video_format.extra_lines_top + video_format.extra_lines_bottom);
1024         if (userdata != nullptr && userdata->pixel_format == PixelFormat_8BitYCbCrPlanar) {
1025                 // The calculation above is wrong for planar Y'CbCr, so just override it.
1026                 assert(card->type == CardType::FFMPEG_INPUT);
1027                 assert(video_offset == 0);
1028                 expected_length = video_frame.len;
1029
1030                 userdata->ycbcr_format = (static_cast<FFmpegCapture *>(card->capture.get()))->get_current_frame_ycbcr_format();
1031                 cbcr_width = video_format.width / userdata->ycbcr_format.chroma_subsampling_x;
1032                 cbcr_height = video_format.height / userdata->ycbcr_format.chroma_subsampling_y;
1033                 cbcr_offset = video_format.width * video_format.height;
1034                 y_offset = 0;
1035         } else {
1036                 // All the other Y'CbCr formats are 4:2:2.
1037                 cbcr_width = video_format.width / 2;
1038                 cbcr_height = video_format.height;
1039                 cbcr_offset = video_offset / 2;
1040                 y_offset = video_frame.size / 2 + video_offset / 2;
1041         }
1042         if (video_frame.len - video_offset == 0 ||
1043             video_frame.len - video_offset != expected_length) {
1044                 if (video_frame.len != 0) {
1045                         printf("%s: Dropping video frame with wrong length (%zu; expected %zu)\n",
1046                                 spec_to_string(device).c_str(), video_frame.len - video_offset, expected_length);
1047                 }
1048                 if (video_frame.owner) {
1049                         video_frame.owner->release_frame(video_frame);
1050                 }
1051
1052                 // Still send on the information that we _had_ a frame, even though it's corrupted,
1053                 // so that pts can go up accordingly.
1054                 {
1055                         lock_guard<mutex> lock(card_mutex);
1056                         CaptureCard::NewFrame new_frame;
1057                         new_frame.frame = RefCountedFrame(FrameAllocator::Frame());
1058                         new_frame.length = frame_length;
1059                         new_frame.interlaced = false;
1060                         new_frame.dropped_frames = dropped_frames;
1061                         new_frame.received_timestamp = video_frame.received_timestamp;
1062                         card->new_frames.push_back(move(new_frame));
1063                         card->jitter_history.frame_arrived(video_frame.received_timestamp, frame_length, dropped_frames);
1064                 }
1065                 card->new_frames_changed.notify_all();
1066                 return;
1067         }
1068
1069         unsigned num_fields = video_format.interlaced ? 2 : 1;
1070         steady_clock::time_point frame_upload_start;
1071         bool interlaced_stride = false;
1072         if (video_format.interlaced) {
1073                 // Send the two fields along as separate frames; the other side will need to add
1074                 // a deinterlacer to actually get this right.
1075                 assert(video_format.height % 2 == 0);
1076                 video_format.height /= 2;
1077                 cbcr_height /= 2;
1078                 assert(frame_length % 2 == 0);
1079                 frame_length /= 2;
1080                 num_fields = 2;
1081                 if (video_format.second_field_start == 1) {
1082                         interlaced_stride = true;
1083                 }
1084                 frame_upload_start = steady_clock::now();
1085         }
1086         assert(userdata != nullptr);
1087         userdata->last_interlaced = video_format.interlaced;
1088         userdata->last_has_signal = video_format.has_signal;
1089         userdata->last_is_connected = video_format.is_connected;
1090         userdata->last_frame_rate_nom = video_format.frame_rate_nom;
1091         userdata->last_frame_rate_den = video_format.frame_rate_den;
1092         RefCountedFrame frame(video_frame);
1093
1094         // Upload the textures.
1095         for (unsigned field = 0; field < num_fields; ++field) {
1096                 // Put the actual texture upload in a lambda that is executed in the main thread.
1097                 // It is entirely possible to do this in the same thread (and it might even be
1098                 // faster, depending on the GPU and driver), but it appears to be trickling
1099                 // driver bugs very easily.
1100                 //
1101                 // Note that this means we must hold on to the actual frame data in <userdata>
1102                 // until the upload command is run, but we hold on to <frame> much longer than that
1103                 // (in fact, all the way until we no longer use the texture in rendering).
1104                 auto upload_func = [this, field, video_format, y_offset, video_offset, cbcr_offset, cbcr_width, cbcr_height, interlaced_stride, userdata]() {
1105                         unsigned field_start_line;
1106                         if (field == 1) {
1107                                 field_start_line = video_format.second_field_start;
1108                         } else {
1109                                 field_start_line = video_format.extra_lines_top;
1110                         }
1111
1112                         // For anything not FRAME_FORMAT_YCBCR_10BIT, v210_width will be nonsensical but not used.
1113                         size_t v210_width = video_format.stride / sizeof(uint32_t);
1114                         ensure_texture_resolution(userdata, field, video_format.width, video_format.height, cbcr_width, cbcr_height, v210_width);
1115
1116                         glBindBuffer(GL_PIXEL_UNPACK_BUFFER, userdata->pbo);
1117                         check_error();
1118
1119                         switch (userdata->pixel_format) {
1120                         case PixelFormat_10BitYCbCr: {
1121                                 size_t field_start = video_offset + video_format.stride * field_start_line;
1122                                 upload_texture(userdata->tex_v210[field], v210_width, video_format.height, video_format.stride, interlaced_stride, GL_RGBA, GL_UNSIGNED_INT_2_10_10_10_REV, field_start);
1123                                 v210_converter->convert(userdata->tex_v210[field], userdata->tex_444[field], video_format.width, video_format.height);
1124                                 break;
1125                         }
1126                         case PixelFormat_8BitYCbCr: {
1127                                 size_t field_y_start = y_offset + video_format.width * field_start_line;
1128                                 size_t field_cbcr_start = cbcr_offset + cbcr_width * field_start_line * sizeof(uint16_t);
1129
1130                                 // Make up our own strides, since we are interleaving.
1131                                 upload_texture(userdata->tex_y[field], video_format.width, video_format.height, video_format.width, interlaced_stride, GL_RED, GL_UNSIGNED_BYTE, field_y_start);
1132                                 upload_texture(userdata->tex_cbcr[field], cbcr_width, cbcr_height, cbcr_width * sizeof(uint16_t), interlaced_stride, GL_RG, GL_UNSIGNED_BYTE, field_cbcr_start);
1133                                 break;
1134                         }
1135                         case PixelFormat_8BitYCbCrPlanar: {
1136                                 assert(field_start_line == 0);  // We don't really support interlaced here.
1137                                 size_t field_y_start = y_offset;
1138                                 size_t field_cb_start = cbcr_offset;
1139                                 size_t field_cr_start = cbcr_offset + cbcr_width * cbcr_height;
1140
1141                                 // Make up our own strides, since we are interleaving.
1142                                 upload_texture(userdata->tex_y[field], video_format.width, video_format.height, video_format.width, interlaced_stride, GL_RED, GL_UNSIGNED_BYTE, field_y_start);
1143                                 upload_texture(userdata->tex_cb[field], cbcr_width, cbcr_height, cbcr_width, interlaced_stride, GL_RED, GL_UNSIGNED_BYTE, field_cb_start);
1144                                 upload_texture(userdata->tex_cr[field], cbcr_width, cbcr_height, cbcr_width, interlaced_stride, GL_RED, GL_UNSIGNED_BYTE, field_cr_start);
1145                                 break;
1146                         }
1147                         case PixelFormat_8BitBGRA: {
1148                                 size_t field_start = video_offset + video_format.stride * field_start_line;
1149                                 upload_texture(userdata->tex_rgba[field], video_format.width, video_format.height, video_format.stride, interlaced_stride, GL_BGRA, GL_UNSIGNED_INT_8_8_8_8_REV, field_start);
1150                                 // These could be asked to deliver mipmaps at any time.
1151                                 glBindTexture(GL_TEXTURE_2D, userdata->tex_rgba[field]);
1152                                 check_error();
1153                                 glGenerateMipmap(GL_TEXTURE_2D);
1154                                 check_error();
1155                                 glBindTexture(GL_TEXTURE_2D, 0);
1156                                 check_error();
1157                                 break;
1158                         }
1159                         default:
1160                                 assert(false);
1161                         }
1162
1163                         glBindBuffer(GL_PIXEL_UNPACK_BUFFER, 0);
1164                         check_error();
1165                 };
1166
1167                 if (field == 1) {
1168                         // Don't upload the second field as fast as we can; wait until
1169                         // the field time has approximately passed. (Otherwise, we could
1170                         // get timing jitter against the other sources, and possibly also
1171                         // against the video display, although the latter is not as critical.)
1172                         // This requires our system clock to be reasonably close to the
1173                         // video clock, but that's not an unreasonable assumption.
1174                         steady_clock::time_point second_field_start = frame_upload_start +
1175                                 nanoseconds(frame_length * 1000000000 / TIMEBASE);
1176                         this_thread::sleep_until(second_field_start);
1177                 }
1178
1179                 {
1180                         lock_guard<mutex> lock(card_mutex);
1181                         CaptureCard::NewFrame new_frame;
1182                         new_frame.frame = frame;
1183                         new_frame.length = frame_length;
1184                         new_frame.field = field;
1185                         new_frame.interlaced = video_format.interlaced;
1186                         new_frame.upload_func = upload_func;
1187                         new_frame.dropped_frames = dropped_frames;
1188                         new_frame.received_timestamp = video_frame.received_timestamp;  // Ignore the audio timestamp.
1189                         new_frame.video_format = video_format;
1190                         new_frame.y_offset = y_offset;
1191                         new_frame.cbcr_offset = cbcr_offset;
1192                         if (card->type == CardType::FFMPEG_INPUT) {
1193                                 FFmpegCapture *ffmpeg_capture = static_cast<FFmpegCapture *>(card->capture.get());
1194                                 new_frame.neutral_color = ffmpeg_capture->get_last_neutral_color();
1195                         }
1196                         card->new_frames.push_back(move(new_frame));
1197                         card->jitter_history.frame_arrived(video_frame.received_timestamp, frame_length, dropped_frames);
1198                         card->may_have_dropped_last_frame = false;
1199                 }
1200                 card->new_frames_changed.notify_all();
1201         }
1202 }
1203
1204 void Mixer::bm_hotplug_add(libusb_device *dev)
1205 {
1206         lock_guard<mutex> lock(hotplug_mutex);
1207         hotplugged_cards.push_back(dev);
1208 }
1209
1210 void Mixer::bm_hotplug_remove(unsigned card_index)
1211 {
1212         cards[card_index].new_frames_changed.notify_all();
1213 }
1214
1215 void Mixer::thread_func()
1216 {
1217         pthread_setname_np(pthread_self(), "Mixer_OpenGL");
1218
1219         eglBindAPI(EGL_OPENGL_API);
1220         QOpenGLContext *context = create_context(mixer_surface);
1221         if (!make_current(context, mixer_surface)) {
1222                 printf("oops\n");
1223                 abort();
1224         }
1225
1226         // Start the actual capture. (We don't want to do it before we're actually ready
1227         // to process output frames.)
1228         for (unsigned card_index = 0; card_index < num_cards + num_video_inputs + num_html_inputs; ++card_index) {
1229                 if (int(card_index) != output_card_index) {
1230                         cards[card_index].capture->start_bm_capture();
1231                 }
1232         }
1233
1234         BasicStats basic_stats(/*verbose=*/true, /*use_opengl=*/true);
1235         int stats_dropped_frames = 0;
1236
1237         while (!should_quit) {
1238                 if (desired_output_card_index != output_card_index) {
1239                         set_output_card_internal(desired_output_card_index);
1240                 }
1241                 if (output_card_index != -1 &&
1242                     desired_output_video_mode != output_video_mode) {
1243                         DeckLinkOutput *output = cards[output_card_index].output.get();
1244                         output->end_output();
1245                         desired_output_video_mode = output_video_mode = output->pick_video_mode(desired_output_video_mode);
1246                         output->start_output(desired_output_video_mode, pts_int);
1247                 }
1248
1249                 CaptureCard::NewFrame new_frames[MAX_VIDEO_CARDS];
1250                 bool has_new_frame[MAX_VIDEO_CARDS] = { false };
1251
1252                 bool master_card_is_output;
1253                 unsigned master_card_index;
1254                 if (output_card_index != -1) {
1255                         master_card_is_output = true;
1256                         master_card_index = output_card_index;
1257                 } else {
1258                         master_card_is_output = false;
1259                         master_card_index = theme->map_signal_to_card(master_clock_channel);
1260                         assert(master_card_index < num_cards + num_video_inputs);
1261                 }
1262
1263                 handle_hotplugged_cards();
1264
1265                 vector<int32_t> raw_audio[MAX_VIDEO_CARDS];  // For MJPEG encoding.
1266                 OutputFrameInfo output_frame_info = get_one_frame_from_each_card(master_card_index, master_card_is_output, new_frames, has_new_frame, raw_audio);
1267                 schedule_audio_resampling_tasks(output_frame_info.dropped_frames, output_frame_info.num_samples, output_frame_info.frame_duration, output_frame_info.is_preroll, output_frame_info.frame_timestamp);
1268                 stats_dropped_frames += output_frame_info.dropped_frames;
1269
1270                 for (unsigned card_index = 0; card_index < num_cards + num_video_inputs + num_html_inputs; ++card_index) {
1271                         DeviceSpec device = card_index_to_device(card_index, num_cards);
1272                         if (card_index == master_card_index || !has_new_frame[card_index]) {
1273                                 continue;
1274                         }
1275                         if (new_frames[card_index].frame->len == 0) {
1276                                 ++new_frames[card_index].dropped_frames;
1277                         }
1278                         if (new_frames[card_index].dropped_frames > 0) {
1279                                 printf("%s dropped %d frames before this\n",
1280                                         spec_to_string(device).c_str(), int(new_frames[card_index].dropped_frames));
1281                         }
1282                 }
1283
1284                 // If the first card is reporting a corrupted or otherwise dropped frame,
1285                 // just increase the pts (skipping over this frame) and don't try to compute anything new.
1286                 if (!master_card_is_output && new_frames[master_card_index].frame->len == 0) {
1287                         ++stats_dropped_frames;
1288                         pts_int += new_frames[master_card_index].length;
1289                         continue;
1290                 }
1291
1292                 for (unsigned card_index = 0; card_index < num_cards + num_video_inputs + num_html_inputs; ++card_index) {
1293                         if (!has_new_frame[card_index] || new_frames[card_index].frame->len == 0)
1294                                 continue;
1295
1296                         CaptureCard::NewFrame *new_frame = &new_frames[card_index];
1297                         assert(new_frame->frame != nullptr);
1298                         insert_new_frame(new_frame->frame, new_frame->field, new_frame->interlaced, card_index, &input_state);
1299                         check_error();
1300
1301                         // The new texture might need uploading before use.
1302                         if (new_frame->upload_func) {
1303                                 new_frame->upload_func();
1304                                 new_frame->upload_func = nullptr;
1305                         }
1306
1307                         // Only set the white balance if it actually changed. This means that the user
1308                         // is free to override the white balance in a video with no white balance information
1309                         // actually set (ie. r=g=b=1 all the time), or one where the white point is wrong,
1310                         // but frame-to-frame decisions will be heeded. We do this pretty much as late
1311                         // as possible (ie., after picking out the frame from the buffer), so that we are sure
1312                         // that the change takes effect on exactly the right frame.
1313                         if (fabs(new_frame->neutral_color.r - last_received_neutral_color[card_index].r) > 1e-3 ||
1314                             fabs(new_frame->neutral_color.g - last_received_neutral_color[card_index].g) > 1e-3 ||
1315                             fabs(new_frame->neutral_color.b - last_received_neutral_color[card_index].b) > 1e-3) {
1316                                 theme->set_wb_for_card(card_index, new_frame->neutral_color.r, new_frame->neutral_color.g, new_frame->neutral_color.b);
1317                                 last_received_neutral_color[card_index] = new_frame->neutral_color;
1318                         }
1319
1320                         if (new_frame->frame->data_copy != nullptr && mjpeg_encoder->should_encode_mjpeg_for_card(card_index)) {
1321                                 RGBTriplet neutral_color = theme->get_white_balance_for_card(card_index);
1322                                 mjpeg_encoder->upload_frame(pts_int, card_index, new_frame->frame, new_frame->video_format, new_frame->y_offset, new_frame->cbcr_offset, move(raw_audio[card_index]), neutral_color);
1323                         }
1324
1325                 }
1326
1327                 int64_t frame_duration = output_frame_info.frame_duration;
1328                 render_one_frame(frame_duration);
1329                 {
1330                         lock_guard<mutex> lock(frame_num_mutex);
1331                         ++frame_num;
1332                 }
1333                 frame_num_updated.notify_all();
1334                 pts_int += frame_duration;
1335
1336                 basic_stats.update(frame_num, stats_dropped_frames);
1337                 // if (frame_num % 100 == 0) chain->print_phase_timing();
1338
1339                 if (should_cut.exchange(false)) {  // Test and clear.
1340                         video_encoder->do_cut(frame_num);
1341                 }
1342
1343 #if 0
1344                 // Reset every 100 frames, so that local variations in frame times
1345                 // (especially for the first few frames, when the shaders are
1346                 // compiled etc.) don't make it hard to measure for the entire
1347                 // remaining duration of the program.
1348                 if (frame == 10000) {
1349                         frame = 0;
1350                         start = now;
1351                 }
1352 #endif
1353                 check_error();
1354         }
1355
1356         resource_pool->clean_context();
1357 }
1358
1359 bool Mixer::input_card_is_master_clock(unsigned card_index, unsigned master_card_index) const
1360 {
1361         if (output_card_index != -1) {
1362                 // The output card (ie., cards[output_card_index].output) is the master clock,
1363                 // so no input card (ie., cards[card_index].capture) is.
1364                 return false;
1365         }
1366         return (card_index == master_card_index);
1367 }
1368
1369 void Mixer::trim_queue(CaptureCard *card, size_t safe_queue_length)
1370 {
1371         // Count the number of frames in the queue, including any frames
1372         // we dropped. It's hard to know exactly how we should deal with
1373         // dropped (corrupted) input frames; they don't help our goal of
1374         // avoiding starvation, but they still add to the problem of latency.
1375         // Since dropped frames is going to mean a bump in the signal anyway,
1376         // we err on the side of having more stable latency instead.
1377         unsigned queue_length = 0;
1378         for (const CaptureCard::NewFrame &frame : card->new_frames) {
1379                 queue_length += frame.dropped_frames + 1;
1380         }
1381
1382         // If needed, drop frames until the queue is below the safe limit.
1383         // We prefer to drop from the head, because all else being equal,
1384         // we'd like more recent frames (less latency).
1385         unsigned dropped_frames = 0;
1386         while (queue_length > safe_queue_length) {
1387                 assert(!card->new_frames.empty());
1388                 assert(queue_length > card->new_frames.front().dropped_frames);
1389                 queue_length -= card->new_frames.front().dropped_frames;
1390
1391                 if (queue_length <= safe_queue_length) {
1392                         // No need to drop anything.
1393                         break;
1394                 }
1395
1396                 card->new_frames.pop_front();
1397                 card->new_frames_changed.notify_all();
1398                 --queue_length;
1399                 ++dropped_frames;
1400
1401                 if (queue_length == 0 && card->is_cef_capture) {
1402                         card->may_have_dropped_last_frame = true;
1403                 }
1404         }
1405
1406         card->metric_input_dropped_frames_jitter += dropped_frames;
1407         card->metric_input_queue_length_frames = queue_length;
1408
1409 #if 0
1410         if (dropped_frames > 0) {
1411                 fprintf(stderr, "Card %u dropped %u frame(s) to keep latency down.\n",
1412                         card_index, dropped_frames);
1413         }
1414 #endif
1415 }
1416
1417 pair<string, string> Mixer::get_channels_json()
1418 {
1419         Channels ret;
1420         for (int channel_idx = 0; channel_idx < theme->get_num_channels(); ++channel_idx) {
1421                 Channel *channel = ret.add_channel();
1422                 channel->set_index(channel_idx + 2);
1423                 channel->set_name(theme->get_channel_name(channel_idx + 2));
1424                 channel->set_color(theme->get_channel_color(channel_idx + 2));
1425         }
1426         string contents;
1427         google::protobuf::util::MessageToJsonString(ret, &contents);  // Ignore any errors.
1428         return make_pair(contents, "text/json");
1429 }
1430
1431 pair<string, string> Mixer::get_channel_color_http(unsigned channel_idx)
1432 {
1433         return make_pair(theme->get_channel_color(channel_idx), "text/plain");
1434 }
1435
1436 Mixer::OutputFrameInfo Mixer::get_one_frame_from_each_card(unsigned master_card_index, bool master_card_is_output, CaptureCard::NewFrame new_frames[MAX_VIDEO_CARDS], bool has_new_frame[MAX_VIDEO_CARDS], vector<int32_t> raw_audio[MAX_VIDEO_CARDS])
1437 {
1438         OutputFrameInfo output_frame_info;
1439 start:
1440         unique_lock<mutex> lock(card_mutex, defer_lock);
1441         if (master_card_is_output) {
1442                 // Clocked to the output, so wait for it to be ready for the next frame.
1443                 cards[master_card_index].output->wait_for_frame(pts_int, &output_frame_info.dropped_frames, &output_frame_info.frame_duration, &output_frame_info.is_preroll, &output_frame_info.frame_timestamp);
1444                 lock.lock();
1445         } else {
1446                 // Wait for the master card to have a new frame.
1447                 // TODO: Add a timeout.
1448                 output_frame_info.is_preroll = false;
1449                 lock.lock();
1450                 cards[master_card_index].new_frames_changed.wait(lock, [this, master_card_index]{ return !cards[master_card_index].new_frames.empty() || cards[master_card_index].capture->get_disconnected(); });
1451         }
1452
1453         if (master_card_is_output) {
1454                 handle_hotplugged_cards();
1455         } else if (cards[master_card_index].new_frames.empty()) {
1456                 // We were woken up, but not due to a new frame. Deal with it
1457                 // and then restart.
1458                 assert(cards[master_card_index].capture->get_disconnected());
1459                 handle_hotplugged_cards();
1460                 lock.unlock();
1461                 goto start;
1462         }
1463
1464         for (unsigned card_index = 0; card_index < num_cards + num_video_inputs + num_html_inputs; ++card_index) {
1465                 CaptureCard *card = &cards[card_index];
1466                 if (card->new_frames.empty()) {  // Starvation.
1467                         ++card->metric_input_duped_frames;
1468 #ifdef HAVE_CEF
1469                         if (card->is_cef_capture && card->may_have_dropped_last_frame) {
1470                                 // Unlike other sources, CEF is not guaranteed to send us a steady
1471                                 // stream of frames, so we'll have to ask it to repaint the frame
1472                                 // we dropped. (may_have_dropped_last_frame is set whenever we
1473                                 // trim the queue completely away, and cleared when we actually
1474                                 // get a new frame.)
1475                                 ((CEFCapture *)card->capture.get())->request_new_frame(/*ignore_if_locked=*/true);
1476                         }
1477 #endif
1478                 } else {
1479                         new_frames[card_index] = move(card->new_frames.front());
1480                         has_new_frame[card_index] = true;
1481                         card->new_frames.pop_front();
1482                         card->new_frames_changed.notify_all();
1483                 }
1484
1485                 raw_audio[card_index] = move(card->new_raw_audio);
1486         }
1487
1488         if (!master_card_is_output) {
1489                 output_frame_info.frame_timestamp = new_frames[master_card_index].received_timestamp;
1490                 output_frame_info.dropped_frames = new_frames[master_card_index].dropped_frames;
1491                 output_frame_info.frame_duration = new_frames[master_card_index].length;
1492         }
1493
1494         if (!output_frame_info.is_preroll) {
1495                 output_jitter_history.frame_arrived(output_frame_info.frame_timestamp, output_frame_info.frame_duration, output_frame_info.dropped_frames);
1496         }
1497
1498         for (unsigned card_index = 0; card_index < num_cards + num_video_inputs + num_html_inputs; ++card_index) {
1499                 CaptureCard *card = &cards[card_index];
1500                 if (has_new_frame[card_index] &&
1501                     !input_card_is_master_clock(card_index, master_card_index) &&
1502                     !output_frame_info.is_preroll) {
1503                         card->queue_length_policy.update_policy(
1504                                 output_frame_info.frame_timestamp,
1505                                 card->jitter_history.get_expected_next_frame(),
1506                                 new_frames[master_card_index].length,
1507                                 output_frame_info.frame_duration,
1508                                 card->jitter_history.estimate_max_jitter(),
1509                                 output_jitter_history.estimate_max_jitter());
1510                         trim_queue(card, min<int>(global_flags.max_input_queue_frames,
1511                                                   card->queue_length_policy.get_safe_queue_length()));
1512                 }
1513         }
1514
1515         // This might get off by a fractional sample when changing master card
1516         // between ones with different frame rates, but that's fine.
1517         int64_t num_samples_times_timebase = int64_t(OUTPUT_FREQUENCY) * output_frame_info.frame_duration + fractional_samples;
1518         output_frame_info.num_samples = num_samples_times_timebase / TIMEBASE;
1519         fractional_samples = num_samples_times_timebase % TIMEBASE;
1520         assert(output_frame_info.num_samples >= 0);
1521
1522         return output_frame_info;
1523 }
1524
1525 void Mixer::handle_hotplugged_cards()
1526 {
1527         // Check for cards that have been disconnected since last frame.
1528         for (unsigned card_index = 0; card_index < num_cards; ++card_index) {
1529                 CaptureCard *card = &cards[card_index];
1530                 if (card->capture->get_disconnected()) {
1531                         fprintf(stderr, "Card %u went away, replacing with a fake card.\n", card_index);
1532                         FakeCapture *capture = new FakeCapture(global_flags.width, global_flags.height, FAKE_FPS, OUTPUT_FREQUENCY, card_index, global_flags.fake_cards_audio);
1533                         configure_card(card_index, capture, CardType::FAKE_CAPTURE, /*output=*/nullptr);
1534                         card->queue_length_policy.reset(card_index);
1535                         card->capture->start_bm_capture();
1536                 }
1537         }
1538
1539         // Check for cards that have been connected since last frame.
1540         vector<libusb_device *> hotplugged_cards_copy;
1541 #ifdef HAVE_SRT
1542         vector<int> hotplugged_srt_cards_copy;
1543 #endif
1544         {
1545                 lock_guard<mutex> lock(hotplug_mutex);
1546                 swap(hotplugged_cards, hotplugged_cards_copy);
1547 #ifdef HAVE_SRT
1548                 swap(hotplugged_srt_cards, hotplugged_srt_cards_copy);
1549 #endif
1550         }
1551         for (libusb_device *new_dev : hotplugged_cards_copy) {
1552                 // Look for a fake capture card where we can stick this in.
1553                 int free_card_index = -1;
1554                 for (unsigned card_index = 0; card_index < num_cards; ++card_index) {
1555                         if (cards[card_index].is_fake_capture) {
1556                                 free_card_index = card_index;
1557                                 break;
1558                         }
1559                 }
1560
1561                 if (free_card_index == -1) {
1562                         fprintf(stderr, "New card plugged in, but no free slots -- ignoring.\n");
1563                         libusb_unref_device(new_dev);
1564                 } else {
1565                         // BMUSBCapture takes ownership.
1566                         fprintf(stderr, "New card plugged in, choosing slot %d.\n", free_card_index);
1567                         CaptureCard *card = &cards[free_card_index];
1568                         BMUSBCapture *capture = new BMUSBCapture(free_card_index, new_dev);
1569                         configure_card(free_card_index, capture, CardType::LIVE_CARD, /*output=*/nullptr);
1570                         card->queue_length_policy.reset(free_card_index);
1571                         capture->set_card_disconnected_callback(bind(&Mixer::bm_hotplug_remove, this, free_card_index));
1572                         capture->start_bm_capture();
1573                 }
1574         }
1575
1576 #ifdef HAVE_SRT
1577         // Same, for SRT inputs.
1578         // TODO: On disconnect and reconnect, we might want to use the stream ID
1579         for (SRTSOCKET sock : hotplugged_srt_cards_copy) {
1580                 char name[256];
1581                 int namelen = sizeof(name);
1582                 srt_getsockopt(sock, /*ignored=*/0, SRTO_STREAMID, name, &namelen);
1583                 string stream_id(name, namelen);
1584
1585                 // Look for a fake capture card where we can stick this in.
1586                 // Prioritize ones that previously held SRT streams with the
1587                 // same stream ID, if any exist -- and it multiple exist,
1588                 // take the one that disconnected the last.
1589                 int first_free_card_index = -1, last_matching_free_card_index = -1;
1590                 for (unsigned card_index = 0; card_index < num_cards; ++card_index) {
1591                         CaptureCard *card = &cards[card_index];
1592                         if (!card->is_fake_capture) {
1593                                 continue;
1594                         }
1595                         if (first_free_card_index == -1) {
1596                                 first_free_card_index = card_index;
1597                         }
1598                         if (card->last_srt_stream_id == stream_id &&
1599                             (last_matching_free_card_index == -1 ||
1600                              card->fake_capture_counter >
1601                                 cards[last_matching_free_card_index].fake_capture_counter)) {
1602                                 last_matching_free_card_index = card_index;
1603                         }
1604                 }
1605
1606                 const int free_card_index = (last_matching_free_card_index != -1)
1607                         ? last_matching_free_card_index : first_free_card_index;
1608                 if (free_card_index == -1) {
1609                         if (stream_id.empty()) {
1610                                 stream_id = "no name";
1611                         }
1612                         fprintf(stderr, "New SRT stream connected (%s), but no free slots -- ignoring.\n", stream_id.c_str());
1613                         srt_close(sock);
1614                 } else {
1615                         // FFmpegCapture takes ownership.
1616                         if (stream_id.empty()) {
1617                                 fprintf(stderr, "New unnamed SRT stream connected, choosing slot %d.\n", free_card_index);
1618                         } else {
1619                                 fprintf(stderr, "New SRT stream connected (%s), choosing slot %d.\n", stream_id.c_str(), free_card_index);
1620                         }
1621                         CaptureCard *card = &cards[free_card_index];
1622                         FFmpegCapture *capture = new FFmpegCapture(sock, stream_id);
1623                         capture->set_card_index(free_card_index);
1624                         configure_card(free_card_index, capture, CardType::FFMPEG_INPUT, /*output=*/nullptr, /*override_card_as_live=*/true);
1625                         update_srt_stats(sock, card);  // Initial zero stats.
1626                         card->last_srt_stream_id = stream_id;
1627                         card->queue_length_policy.reset(free_card_index);
1628                         capture->set_card_disconnected_callback(bind(&Mixer::bm_hotplug_remove, this, free_card_index));
1629                         capture->start_bm_capture();
1630                 }
1631         }
1632 #endif
1633 }
1634
1635
1636 void Mixer::schedule_audio_resampling_tasks(unsigned dropped_frames, int num_samples_per_frame, int length_per_frame, bool is_preroll, steady_clock::time_point frame_timestamp)
1637 {
1638         // Resample the audio as needed, including from previously dropped frames.
1639         assert(num_cards > 0);
1640         for (unsigned frame_num = 0; frame_num < dropped_frames + 1; ++frame_num) {
1641                 const bool dropped_frame = (frame_num != dropped_frames);
1642                 {
1643                         // Signal to the audio thread to process this frame.
1644                         // Note that if the frame is a dropped frame, we signal that
1645                         // we don't want to use this frame as base for adjusting
1646                         // the resampler rate. The reason for this is that the timing
1647                         // of these frames is often way too late; they typically don't
1648                         // “arrive” before we synthesize them. Thus, we could end up
1649                         // in a situation where we have inserted e.g. five audio frames
1650                         // into the queue before we then start pulling five of them
1651                         // back out. This makes ResamplingQueue overestimate the delay,
1652                         // causing undue resampler changes. (We _do_ use the last,
1653                         // non-dropped frame; perhaps we should just discard that as well,
1654                         // since dropped frames are expected to be rare, and it might be
1655                         // better to just wait until we have a slightly more normal situation).
1656                         lock_guard<mutex> lock(audio_mutex);
1657                         bool adjust_rate = !dropped_frame && !is_preroll;
1658                         audio_task_queue.push(AudioTask{pts_int, num_samples_per_frame, adjust_rate, frame_timestamp});
1659                         audio_task_queue_changed.notify_one();
1660                 }
1661                 if (dropped_frame) {
1662                         // For dropped frames, increase the pts. Note that if the format changed
1663                         // in the meantime, we have no way of detecting that; we just have to
1664                         // assume the frame length is always the same.
1665                         pts_int += length_per_frame;
1666                 }
1667         }
1668 }
1669
1670 void Mixer::render_one_frame(int64_t duration)
1671 {
1672         // Determine the time code for this frame before we start rendering.
1673         string timecode_text = timecode_renderer->get_timecode_text(double(pts_int) / TIMEBASE, frame_num);
1674         if (display_timecode_on_stdout) {
1675                 printf("Timecode: '%s'\n", timecode_text.c_str());
1676         }
1677
1678         // Update Y'CbCr settings for all cards.
1679         {
1680                 lock_guard<mutex> lock(card_mutex);
1681                 for (unsigned card_index = 0; card_index < num_cards; ++card_index) {
1682                         YCbCrInterpretation *interpretation = &ycbcr_interpretation[card_index];
1683                         input_state.ycbcr_coefficients_auto[card_index] = interpretation->ycbcr_coefficients_auto;
1684                         input_state.ycbcr_coefficients[card_index] = interpretation->ycbcr_coefficients;
1685                         input_state.full_range[card_index] = interpretation->full_range;
1686                 }
1687         }
1688
1689         // Get the main chain from the theme, and set its state immediately.
1690         Theme::Chain theme_main_chain = theme->get_chain(0, pts(), global_flags.width, global_flags.height, input_state);
1691         EffectChain *chain = theme_main_chain.chain;
1692         theme_main_chain.setup_chain();
1693         //theme_main_chain.chain->enable_phase_timing(true);
1694
1695         // If HDMI/SDI output is active and the user has requested auto mode,
1696         // its mode overrides the existing Y'CbCr setting for the chain.
1697         YCbCrLumaCoefficients ycbcr_output_coefficients;
1698         if (global_flags.ycbcr_auto_coefficients && output_card_index != -1) {
1699                 ycbcr_output_coefficients = cards[output_card_index].output->preferred_ycbcr_coefficients();
1700         } else {
1701                 ycbcr_output_coefficients = global_flags.ycbcr_rec709_coefficients ? YCBCR_REC_709 : YCBCR_REC_601;
1702         }
1703
1704         // TODO: Reduce the duplication against theme.cpp.
1705         YCbCrFormat output_ycbcr_format;
1706         output_ycbcr_format.chroma_subsampling_x = 1;
1707         output_ycbcr_format.chroma_subsampling_y = 1;
1708         output_ycbcr_format.luma_coefficients = ycbcr_output_coefficients;
1709         output_ycbcr_format.full_range = false;
1710         output_ycbcr_format.num_levels = 1 << global_flags.x264_bit_depth;
1711         chain->change_ycbcr_output_format(output_ycbcr_format);
1712
1713         // Render main chain. If we're using zerocopy Quick Sync encoding
1714         // (the default case), we take an extra copy of the created outputs,
1715         // so that we can display it back to the screen later (it's less memory
1716         // bandwidth than writing and reading back an RGBA texture, even at 16-bit).
1717         // Ideally, we'd like to avoid taking copies and just use the main textures
1718         // for display as well, but they're just views into VA-API memory and must be
1719         // unmapped during encoding, so we can't use them for display, unfortunately.
1720         GLuint y_tex, cbcr_full_tex, cbcr_tex;
1721         GLuint y_copy_tex, cbcr_copy_tex = 0;
1722         GLuint y_display_tex, cbcr_display_tex;
1723         GLenum y_type = (global_flags.x264_bit_depth > 8) ? GL_R16 : GL_R8;
1724         GLenum cbcr_type = (global_flags.x264_bit_depth > 8) ? GL_RG16 : GL_RG8;
1725         const bool is_zerocopy = video_encoder->is_zerocopy();
1726         if (is_zerocopy) {
1727                 cbcr_full_tex = resource_pool->create_2d_texture(cbcr_type, global_flags.width, global_flags.height);
1728                 y_copy_tex = resource_pool->create_2d_texture(y_type, global_flags.width, global_flags.height);
1729                 cbcr_copy_tex = resource_pool->create_2d_texture(cbcr_type, global_flags.width / 2, global_flags.height / 2);
1730
1731                 y_display_tex = y_copy_tex;
1732                 cbcr_display_tex = cbcr_copy_tex;
1733
1734                 // y_tex and cbcr_tex will be given by VideoEncoder.
1735         } else {
1736                 cbcr_full_tex = resource_pool->create_2d_texture(cbcr_type, global_flags.width, global_flags.height);
1737                 y_tex = resource_pool->create_2d_texture(y_type, global_flags.width, global_flags.height);
1738                 cbcr_tex = resource_pool->create_2d_texture(cbcr_type, global_flags.width / 2, global_flags.height / 2);
1739
1740                 y_display_tex = y_tex;
1741                 cbcr_display_tex = cbcr_tex;
1742         }
1743
1744         const int64_t av_delay = lrint(global_flags.audio_queue_length_ms * 0.001 * TIMEBASE);  // Corresponds to the delay in ResamplingQueue.
1745         bool got_frame = video_encoder->begin_frame(pts_int + av_delay, duration, ycbcr_output_coefficients, theme_main_chain.input_frames, &y_tex, &cbcr_tex);
1746         assert(got_frame);
1747
1748         GLuint fbo;
1749         if (is_zerocopy) {
1750                 fbo = resource_pool->create_fbo(y_tex, cbcr_full_tex, y_copy_tex);
1751         } else {
1752                 fbo = resource_pool->create_fbo(y_tex, cbcr_full_tex);
1753         }
1754         check_error();
1755         chain->render_to_fbo(fbo, global_flags.width, global_flags.height);
1756
1757         if (display_timecode_in_stream) {
1758                 // Render the timecode on top.
1759                 timecode_renderer->render_timecode(fbo, timecode_text);
1760         }
1761
1762         resource_pool->release_fbo(fbo);
1763
1764         if (is_zerocopy) {
1765                 chroma_subsampler->subsample_chroma(cbcr_full_tex, global_flags.width, global_flags.height, cbcr_tex, cbcr_copy_tex);
1766         } else {
1767                 chroma_subsampler->subsample_chroma(cbcr_full_tex, global_flags.width, global_flags.height, cbcr_tex);
1768         }
1769         if (output_card_index != -1) {
1770                 cards[output_card_index].output->send_frame(y_tex, cbcr_full_tex, ycbcr_output_coefficients, theme_main_chain.input_frames, pts_int, duration);
1771         }
1772         resource_pool->release_2d_texture(cbcr_full_tex);
1773
1774         // Set the right state for the Y' and CbCr textures we use for display.
1775         glBindFramebuffer(GL_FRAMEBUFFER, 0);
1776         glBindTexture(GL_TEXTURE_2D, y_display_tex);
1777         glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_LINEAR);
1778         glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_S, GL_CLAMP_TO_EDGE);
1779         glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_T, GL_CLAMP_TO_EDGE);
1780
1781         glBindTexture(GL_TEXTURE_2D, cbcr_display_tex);
1782         glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_MIN_FILTER, GL_LINEAR);
1783         glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_S, GL_CLAMP_TO_EDGE);
1784         glTexParameteri(GL_TEXTURE_2D, GL_TEXTURE_WRAP_T, GL_CLAMP_TO_EDGE);
1785
1786         RefCountedGLsync fence = video_encoder->end_frame();
1787
1788         // The live frame pieces the Y'CbCr texture copies back into RGB and displays them.
1789         // It owns y_display_tex and cbcr_display_tex now (whichever textures they are).
1790         DisplayFrame live_frame;
1791         live_frame.chain = display_chain.get();
1792         live_frame.setup_chain = [this, y_display_tex, cbcr_display_tex]{
1793                 display_input->set_texture_num(0, y_display_tex);
1794                 display_input->set_texture_num(1, cbcr_display_tex);
1795         };
1796         live_frame.ready_fence = fence;
1797         live_frame.input_frames = {};
1798         live_frame.temp_textures = { y_display_tex, cbcr_display_tex };
1799         output_channel[OUTPUT_LIVE].output_frame(move(live_frame));
1800
1801         // Set up preview and any additional channels.
1802         for (int i = 1; i < theme->get_num_channels() + 2; ++i) {
1803                 DisplayFrame display_frame;
1804                 Theme::Chain chain = theme->get_chain(i, pts(), global_flags.width, global_flags.height, input_state);  // FIXME: dimensions
1805                 display_frame.chain = move(chain.chain);
1806                 display_frame.setup_chain = move(chain.setup_chain);
1807                 display_frame.ready_fence = fence;
1808                 display_frame.input_frames = move(chain.input_frames);
1809                 display_frame.temp_textures = {};
1810                 output_channel[i].output_frame(move(display_frame));
1811         }
1812 }
1813
1814 void Mixer::audio_thread_func()
1815 {
1816         pthread_setname_np(pthread_self(), "Mixer_Audio");
1817
1818         while (!should_quit) {
1819                 AudioTask task;
1820
1821                 {
1822                         unique_lock<mutex> lock(audio_mutex);
1823                         audio_task_queue_changed.wait(lock, [this]{ return should_quit || !audio_task_queue.empty(); });
1824                         if (should_quit) {
1825                                 return;
1826                         }
1827                         task = audio_task_queue.front();
1828                         audio_task_queue.pop();
1829                 }
1830
1831                 ResamplingQueue::RateAdjustmentPolicy rate_adjustment_policy =
1832                         task.adjust_rate ? ResamplingQueue::ADJUST_RATE : ResamplingQueue::DO_NOT_ADJUST_RATE;
1833                 vector<float> samples_out = audio_mixer->get_output(
1834                         task.frame_timestamp,
1835                         task.num_samples,
1836                         rate_adjustment_policy);
1837
1838                 // Send the samples to the sound card, then add them to the output.
1839                 if (alsa) {
1840                         alsa->write(samples_out);
1841                 }
1842                 if (output_card_index != -1) {
1843                         const int64_t av_delay = lrint(global_flags.audio_queue_length_ms * 0.001 * TIMEBASE);  // Corresponds to the delay in ResamplingQueue.
1844                         cards[output_card_index].output->send_audio(task.pts_int + av_delay, samples_out);
1845                 }
1846                 video_encoder->add_audio(task.pts_int, move(samples_out));
1847         }
1848 }
1849
1850 void Mixer::release_display_frame(DisplayFrame *frame)
1851 {
1852         for (GLuint texnum : frame->temp_textures) {
1853                 resource_pool->release_2d_texture(texnum);
1854         }
1855         frame->temp_textures.clear();
1856         frame->ready_fence.reset();
1857         frame->input_frames.clear();
1858 }
1859
1860 void Mixer::start()
1861 {
1862         mixer_thread = thread(&Mixer::thread_func, this);
1863         audio_thread = thread(&Mixer::audio_thread_func, this);
1864 }
1865
1866 void Mixer::quit()
1867 {
1868         should_quit = true;
1869         audio_task_queue_changed.notify_one();
1870         mixer_thread.join();
1871         audio_thread.join();
1872 #ifdef HAVE_SRT
1873         if (global_flags.srt_port >= 0) {
1874                 // There's seemingly no other reasonable way to wake up the thread
1875                 // (libsrt's epoll equivalent is busy-waiting).
1876                 int sock = srt_socket(AF_INET6, 0, 0);
1877                 if (sock != -1) {
1878                         sockaddr_in6 addr;
1879                         memset(&addr, 0, sizeof(addr));
1880                         addr.sin6_family = AF_INET6;
1881                         addr.sin6_addr = IN6ADDR_LOOPBACK_INIT;
1882                         addr.sin6_port = htons(global_flags.srt_port);
1883                         srt_connect(sock, (sockaddr *)&addr, sizeof(addr));
1884                         srt_close(sock);
1885                 }
1886                 srt_thread.join();
1887         }
1888 #endif
1889 }
1890
1891 void Mixer::transition_clicked(int transition_num)
1892 {
1893         theme->transition_clicked(transition_num, pts());
1894 }
1895
1896 void Mixer::channel_clicked(int preview_num)
1897 {
1898         theme->channel_clicked(preview_num);
1899 }
1900
1901 YCbCrInterpretation Mixer::get_input_ycbcr_interpretation(unsigned card_index) const
1902 {
1903         lock_guard<mutex> lock(card_mutex);
1904         return ycbcr_interpretation[card_index];
1905 }
1906
1907 void Mixer::set_input_ycbcr_interpretation(unsigned card_index, const YCbCrInterpretation &interpretation)
1908 {
1909         lock_guard<mutex> lock(card_mutex);
1910         ycbcr_interpretation[card_index] = interpretation;
1911 }
1912
1913 void Mixer::start_mode_scanning(unsigned card_index)
1914 {
1915         assert(card_index < num_cards);
1916         if (is_mode_scanning[card_index]) {
1917                 return;
1918         }
1919         is_mode_scanning[card_index] = true;
1920         mode_scanlist[card_index].clear();
1921         for (const auto &mode : cards[card_index].capture->get_available_video_modes()) {
1922                 mode_scanlist[card_index].push_back(mode.first);
1923         }
1924         assert(!mode_scanlist[card_index].empty());
1925         mode_scanlist_index[card_index] = 0;
1926         cards[card_index].capture->set_video_mode(mode_scanlist[card_index][0]);
1927         last_mode_scan_change[card_index] = steady_clock::now();
1928 }
1929
1930 map<uint32_t, VideoMode> Mixer::get_available_output_video_modes() const
1931 {
1932         assert(desired_output_card_index != -1);
1933         lock_guard<mutex> lock(card_mutex);
1934         return cards[desired_output_card_index].output->get_available_video_modes();
1935 }
1936
1937 string Mixer::get_ffmpeg_filename(unsigned card_index) const
1938 {
1939         assert(card_index >= num_cards && card_index < num_cards + num_video_inputs);
1940         return ((FFmpegCapture *)(cards[card_index].capture.get()))->get_filename();
1941 }
1942
1943 void Mixer::set_ffmpeg_filename(unsigned card_index, const string &filename) {
1944         assert(card_index >= num_cards && card_index < num_cards + num_video_inputs);
1945         ((FFmpegCapture *)(cards[card_index].capture.get()))->change_filename(filename);
1946 }
1947
1948 void Mixer::wait_for_next_frame()
1949 {
1950         unique_lock<mutex> lock(frame_num_mutex);
1951         unsigned old_frame_num = frame_num;
1952         frame_num_updated.wait_for(lock, seconds(1),  // Timeout is just in case.
1953                 [old_frame_num, this]{ return this->frame_num > old_frame_num; });
1954 }
1955
1956 Mixer::OutputChannel::~OutputChannel()
1957 {
1958         if (has_current_frame) {
1959                 parent->release_display_frame(&current_frame);
1960         }
1961         if (has_ready_frame) {
1962                 parent->release_display_frame(&ready_frame);
1963         }
1964 }
1965
1966 void Mixer::OutputChannel::output_frame(DisplayFrame &&frame)
1967 {
1968         // Store this frame for display. Remove the ready frame if any
1969         // (it was seemingly never used).
1970         {
1971                 lock_guard<mutex> lock(frame_mutex);
1972                 if (has_ready_frame) {
1973                         parent->release_display_frame(&ready_frame);
1974                 }
1975                 ready_frame = move(frame);
1976                 has_ready_frame = true;
1977
1978                 // Call the callbacks under the mutex (they should be short),
1979                 // so that we don't race against a callback removal.
1980                 for (const auto &key_and_callback : new_frame_ready_callbacks) {
1981                         key_and_callback.second();
1982                 }
1983         }
1984
1985         // Reduce the number of callbacks by filtering duplicates. The reason
1986         // why we bother doing this is that Qt seemingly can get into a state
1987         // where its builds up an essentially unbounded queue of signals,
1988         // consuming more and more memory, and there's no good way of collapsing
1989         // user-defined signals or limiting the length of the queue.
1990         if (transition_names_updated_callback) {
1991                 vector<string> transition_names = global_mixer->get_transition_names();
1992                 bool changed = false;
1993                 if (transition_names.size() != last_transition_names.size()) {
1994                         changed = true;
1995                 } else {
1996                         for (unsigned i = 0; i < transition_names.size(); ++i) {
1997                                 if (transition_names[i] != last_transition_names[i]) {
1998                                         changed = true;
1999                                         break;
2000                                 }
2001                         }
2002                 }
2003                 if (changed) {
2004                         transition_names_updated_callback(transition_names);
2005                         last_transition_names = transition_names;
2006                 }
2007         }
2008         if (name_updated_callback) {
2009                 string name = global_mixer->get_channel_name(channel);
2010                 if (name != last_name) {
2011                         name_updated_callback(name);
2012                         last_name = name;
2013                 }
2014         }
2015         if (color_updated_callback) {
2016                 string color = global_mixer->get_channel_color(channel);
2017                 if (color != last_color) {
2018                         color_updated_callback(color);
2019                         last_color = color;
2020                 }
2021         }
2022 }
2023
2024 bool Mixer::OutputChannel::get_display_frame(DisplayFrame *frame)
2025 {
2026         lock_guard<mutex> lock(frame_mutex);
2027         if (!has_current_frame && !has_ready_frame) {
2028                 return false;
2029         }
2030
2031         if (has_current_frame && has_ready_frame) {
2032                 // We have a new ready frame. Toss the current one.
2033                 parent->release_display_frame(&current_frame);
2034                 has_current_frame = false;
2035         }
2036         if (has_ready_frame) {
2037                 assert(!has_current_frame);
2038                 current_frame = move(ready_frame);
2039                 ready_frame.ready_fence.reset();  // Drop the refcount.
2040                 ready_frame.input_frames.clear();  // Drop the refcounts.
2041                 has_current_frame = true;
2042                 has_ready_frame = false;
2043         }
2044
2045         *frame = current_frame;
2046         return true;
2047 }
2048
2049 void Mixer::OutputChannel::add_frame_ready_callback(void *key, Mixer::new_frame_ready_callback_t callback)
2050 {
2051         lock_guard<mutex> lock(frame_mutex);
2052         new_frame_ready_callbacks[key] = callback;
2053 }
2054
2055 void Mixer::OutputChannel::remove_frame_ready_callback(void *key)
2056 {
2057         lock_guard<mutex> lock(frame_mutex);
2058         new_frame_ready_callbacks.erase(key);
2059 }
2060
2061 void Mixer::OutputChannel::set_transition_names_updated_callback(Mixer::transition_names_updated_callback_t callback)
2062 {
2063         transition_names_updated_callback = callback;
2064 }
2065
2066 void Mixer::OutputChannel::set_name_updated_callback(Mixer::name_updated_callback_t callback)
2067 {
2068         name_updated_callback = callback;
2069 }
2070
2071 void Mixer::OutputChannel::set_color_updated_callback(Mixer::color_updated_callback_t callback)
2072 {
2073         color_updated_callback = callback;
2074 }
2075
2076 #ifdef HAVE_SRT
2077 void Mixer::start_srt()
2078 {
2079         SRTSOCKET sock = srt_socket(AF_INET6, 0, 0);
2080         sockaddr_in6 addr;
2081         memset(&addr, 0, sizeof(addr));
2082         addr.sin6_family = AF_INET6;
2083         addr.sin6_port = htons(global_flags.srt_port);
2084
2085         int err = srt_bind(sock, (sockaddr *)&addr, sizeof(addr));
2086         if (err != 0) {
2087                 fprintf(stderr, "srt_bind: %s\n", srt_getlasterror_str());
2088                 abort();
2089         }
2090         err = srt_listen(sock, MAX_VIDEO_CARDS);
2091         if (err != 0) {
2092                 fprintf(stderr, "srt_listen: %s\n", srt_getlasterror_str());
2093                 abort();
2094         }
2095
2096         srt_thread = thread([this, sock] {
2097                 sockaddr_in6 addr;
2098                 for ( ;; ) {
2099                         int sa_len = sizeof(addr);
2100                         int clientsock = srt_accept(sock, (sockaddr *)&addr, &sa_len);
2101                         if (should_quit) {
2102                                 if (clientsock != -1) {
2103                                         srt_close(clientsock);
2104                                 }
2105                                 break;
2106                         }
2107                         lock_guard<mutex> lock(hotplug_mutex);
2108                         hotplugged_srt_cards.push_back(clientsock);
2109                 }
2110                 srt_close(sock);
2111         });
2112 }
2113 #endif
2114
2115 #ifdef HAVE_SRT
2116 void Mixer::update_srt_stats(int srt_sock, Mixer::CaptureCard *card)
2117 {
2118         SRT_TRACEBSTATS stats;
2119         srt_bistats(srt_sock, &stats, /*clear=*/0, /*instantaneous=*/1);
2120
2121         card->metric_srt_uptime_seconds = stats.msTimeStamp * 1e-3;
2122         card->metric_srt_send_duration_seconds = stats.usSndDurationTotal * 1e-6;
2123         card->metric_srt_sent_bytes = stats.byteSentTotal;
2124         card->metric_srt_received_bytes = stats.byteRecvTotal;
2125         card->metric_srt_sent_packets_normal = stats.pktSentTotal;
2126         card->metric_srt_received_packets_normal = stats.pktRecvTotal;
2127         card->metric_srt_sent_packets_lost = stats.pktSndLossTotal;
2128         card->metric_srt_received_packets_lost = stats.pktRcvLossTotal;
2129         card->metric_srt_sent_packets_retransmitted = stats.pktRetransTotal;
2130         card->metric_srt_sent_bytes_retransmitted = stats.byteRetransTotal;
2131         card->metric_srt_sent_packets_ack = stats.pktSentACKTotal;
2132         card->metric_srt_received_packets_ack = stats.pktRecvACKTotal;
2133         card->metric_srt_sent_packets_nak = stats.pktSentNAKTotal;
2134         card->metric_srt_received_packets_nak = stats.pktRecvNAKTotal;
2135         card->metric_srt_sent_packets_dropped = stats.pktSndDropTotal;
2136         card->metric_srt_received_packets_dropped = stats.pktRcvDropTotal;
2137         card->metric_srt_sent_bytes_dropped = stats.byteSndDropTotal;
2138         card->metric_srt_received_bytes_dropped = stats.byteRcvDropTotal;
2139         card->metric_srt_received_packets_undecryptable = stats.pktRcvUndecryptTotal;
2140         card->metric_srt_received_bytes_undecryptable = stats.byteRcvUndecryptTotal;
2141         card->metric_srt_filter_sent_packets = stats.pktSndFilterExtraTotal;
2142         card->metric_srt_filter_received_extra_packets = stats.pktRcvFilterExtraTotal;
2143         card->metric_srt_filter_received_rebuilt_packets = stats.pktRcvFilterSupplyTotal;
2144         card->metric_srt_filter_received_lost_packets = stats.pktRcvFilterLossTotal;
2145
2146         // Gauges.
2147         card->metric_srt_packet_sending_period_seconds = stats.usPktSndPeriod * 1e-6;
2148         card->metric_srt_flow_window_packets = stats.pktFlowWindow;
2149         card->metric_srt_congestion_window_packets = stats.pktCongestionWindow;
2150         card->metric_srt_flight_size_packets = stats.pktFlightSize;
2151         card->metric_srt_rtt_seconds = stats.msRTT * 1e-3;
2152         card->metric_srt_estimated_bandwidth_bits_per_second = stats.mbpsBandwidth * 1e6;
2153         card->metric_srt_bandwidth_ceiling_bits_per_second = stats.mbpsMaxBW * 1e6;
2154         card->metric_srt_send_buffer_available_bytes = stats.byteAvailSndBuf;
2155         card->metric_srt_receive_buffer_available_bytes = stats.byteAvailRcvBuf;
2156         card->metric_srt_mss_bytes = stats.byteMSS;
2157         card->metric_srt_sender_unacked_packets = stats.pktSndBuf;
2158         card->metric_srt_sender_unacked_bytes = stats.byteSndBuf;
2159         card->metric_srt_sender_unacked_timespan_seconds = stats.msSndBuf * 1e-3;
2160         card->metric_srt_sender_delivery_delay_seconds = stats.msSndTsbPdDelay * 1e-3;
2161         card->metric_srt_receiver_unacked_packets = stats.pktRcvBuf;
2162         card->metric_srt_receiver_unacked_bytes = stats.byteRcvBuf;
2163         card->metric_srt_receiver_unacked_timespan_seconds = stats.msRcvBuf * 1e-3;
2164         card->metric_srt_receiver_delivery_delay_seconds = stats.msRcvTsbPdDelay * 1e-3;
2165 }
2166 #endif
2167
2168 mutex RefCountedGLsync::fence_lock;