2 * OpenAL cross platform audio library
3 * Copyright (C) 1999-2010 by authors.
4 * This library is free software; you can redistribute it and/or
5 * modify it under the terms of the GNU Library General Public
6 * License as published by the Free Software Foundation; either
7 * version 2 of the License, or (at your option) any later version.
9 * This library is distributed in the hope that it will be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
12 * Library General Public License for more details.
14 * You should have received a copy of the GNU Library General Public
15 * License along with this library; if not, write to the
16 * Free Software Foundation, Inc.,
17 * 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
18 * Or go to http://www.gnu.org/copyleft/lgpl.html
40 #include "al/auxeffectslot.h"
43 #include "alc/context.h"
45 #include "alnumbers.h"
46 #include "alnumeric.h"
47 #include "aloptional.h"
51 #include "core/ambdec.h"
52 #include "core/ambidefs.h"
53 #include "core/bformatdec.h"
54 #include "core/bs2b.h"
55 #include "core/devformat.h"
56 #include "core/front_stablizer.h"
57 #include "core/hrtf.h"
58 #include "core/logging.h"
59 #include "core/uhjfilter.h"
61 #include "opthelpers.h"
66 using namespace std::placeholders
;
67 using std::chrono::seconds
;
68 using std::chrono::nanoseconds
;
70 inline const char *GetLabelFromChannel(Channel channel
)
74 case FrontLeft
: return "front-left";
75 case FrontRight
: return "front-right";
76 case FrontCenter
: return "front-center";
77 case LFE
: return "lfe";
78 case BackLeft
: return "back-left";
79 case BackRight
: return "back-right";
80 case BackCenter
: return "back-center";
81 case SideLeft
: return "side-left";
82 case SideRight
: return "side-right";
84 case TopFrontLeft
: return "top-front-left";
85 case TopFrontCenter
: return "top-front-center";
86 case TopFrontRight
: return "top-front-right";
87 case TopCenter
: return "top-center";
88 case TopBackLeft
: return "top-back-left";
89 case TopBackCenter
: return "top-back-center";
90 case TopBackRight
: return "top-back-right";
92 case MaxChannels
: break;
98 std::unique_ptr
<FrontStablizer
> CreateStablizer(const size_t outchans
, const uint srate
)
100 auto stablizer
= FrontStablizer::Create(outchans
);
101 for(auto &buf
: stablizer
->DelayBuf
)
102 std::fill(buf
.begin(), buf
.end(), 0.0f
);
104 /* Initialize band-splitting filter for the mid signal, with a crossover at
105 * 5khz (could be higher).
107 stablizer
->MidFilter
.init(5000.0f
/ static_cast<float>(srate
));
112 void AllocChannels(ALCdevice
*device
, const size_t main_chans
, const size_t real_chans
)
114 TRACE("Channel config, Main: %zu, Real: %zu\n", main_chans
, real_chans
);
116 /* Allocate extra channels for any post-filter output. */
117 const size_t num_chans
{main_chans
+ real_chans
};
119 TRACE("Allocating %zu channels, %zu bytes\n", num_chans
,
120 num_chans
*sizeof(device
->MixBuffer
[0]));
121 device
->MixBuffer
.resize(num_chans
);
122 al::span
<FloatBufferLine
> buffer
{device
->MixBuffer
};
124 device
->Dry
.Buffer
= buffer
.first(main_chans
);
125 buffer
= buffer
.subspan(main_chans
);
128 device
->RealOut
.Buffer
= buffer
.first(real_chans
);
129 buffer
= buffer
.subspan(real_chans
);
132 device
->RealOut
.Buffer
= device
->Dry
.Buffer
;
136 using ChannelCoeffs
= std::array
<float,MaxAmbiChannels
>;
137 enum DecoderMode
: bool {
142 template<DecoderMode Mode
, size_t N
>
143 struct DecoderConfig
;
146 struct DecoderConfig
<SingleBand
, N
> {
149 std::array
<Channel
,N
> mChannels
{};
150 DevAmbiScaling mScaling
{};
151 std::array
<float,MaxAmbiOrder
+1> mOrderGain
{};
152 std::array
<ChannelCoeffs
,N
> mCoeffs
{};
156 struct DecoderConfig
<DualBand
, N
> {
159 std::array
<Channel
,N
> mChannels
{};
160 DevAmbiScaling mScaling
{};
161 std::array
<float,MaxAmbiOrder
+1> mOrderGain
{};
162 std::array
<ChannelCoeffs
,N
> mCoeffs
{};
163 std::array
<float,MaxAmbiOrder
+1> mOrderGainLF
{};
164 std::array
<ChannelCoeffs
,N
> mCoeffsLF
{};
168 struct DecoderConfig
<DualBand
, 0> {
171 al::span
<const Channel
> mChannels
;
172 DevAmbiScaling mScaling
{};
173 al::span
<const float> mOrderGain
;
174 al::span
<const ChannelCoeffs
> mCoeffs
;
175 al::span
<const float> mOrderGainLF
;
176 al::span
<const ChannelCoeffs
> mCoeffsLF
;
179 DecoderConfig
& operator=(const DecoderConfig
<SingleBand
,N
> &rhs
) noexcept
183 mChannels
= rhs
.mChannels
;
184 mScaling
= rhs
.mScaling
;
185 mOrderGain
= rhs
.mOrderGain
;
186 mCoeffs
= rhs
.mCoeffs
;
193 DecoderConfig
& operator=(const DecoderConfig
<DualBand
,N
> &rhs
) noexcept
197 mChannels
= rhs
.mChannels
;
198 mScaling
= rhs
.mScaling
;
199 mOrderGain
= rhs
.mOrderGain
;
200 mCoeffs
= rhs
.mCoeffs
;
201 mOrderGainLF
= rhs
.mOrderGainLF
;
202 mCoeffsLF
= rhs
.mCoeffsLF
;
206 using DecoderView
= DecoderConfig
<DualBand
, 0>;
209 void InitNearFieldCtrl(ALCdevice
*device
, float ctrl_dist
, uint order
, bool is3d
)
211 static const uint chans_per_order2d
[MaxAmbiOrder
+1]{ 1, 2, 2, 2 };
212 static const uint chans_per_order3d
[MaxAmbiOrder
+1]{ 1, 3, 5, 7 };
214 /* NFC is only used when AvgSpeakerDist is greater than 0. */
215 if(!device
->getConfigValueBool("decoder", "nfc", 0) || !(ctrl_dist
> 0.0f
))
218 device
->AvgSpeakerDist
= clampf(ctrl_dist
, 0.1f
, 10.0f
);
219 TRACE("Using near-field reference distance: %.2f meters\n", device
->AvgSpeakerDist
);
221 const float w1
{SpeedOfSoundMetersPerSec
/
222 (device
->AvgSpeakerDist
* static_cast<float>(device
->Frequency
))};
223 device
->mNFCtrlFilter
.init(w1
);
225 auto iter
= std::copy_n(is3d
? chans_per_order3d
: chans_per_order2d
, order
+1u,
226 std::begin(device
->NumChannelsPerOrder
));
227 std::fill(iter
, std::end(device
->NumChannelsPerOrder
), 0u);
230 void InitDistanceComp(ALCdevice
*device
, const al::span
<const Channel
> channels
,
231 const al::span
<const float,MAX_OUTPUT_CHANNELS
> dists
)
233 const float maxdist
{std::accumulate(std::begin(dists
), std::end(dists
), 0.0f
, maxf
)};
235 if(!device
->getConfigValueBool("decoder", "distance-comp", 1) || !(maxdist
> 0.0f
))
238 const auto distSampleScale
= static_cast<float>(device
->Frequency
) / SpeedOfSoundMetersPerSec
;
239 std::vector
<DistanceComp::ChanData
> ChanDelay
;
240 ChanDelay
.reserve(device
->RealOut
.Buffer
.size());
242 for(size_t chidx
{0};chidx
< channels
.size();++chidx
)
244 const Channel ch
{channels
[chidx
]};
245 const uint idx
{device
->RealOut
.ChannelIndex
[ch
]};
246 if(idx
== INVALID_CHANNEL_INDEX
)
249 const float distance
{dists
[chidx
]};
251 /* Distance compensation only delays in steps of the sample rate. This
252 * is a bit less accurate since the delay time falls to the nearest
253 * sample time, but it's far simpler as it doesn't have to deal with
254 * phase offsets. This means at 48khz, for instance, the distance delay
255 * will be in steps of about 7 millimeters.
257 float delay
{std::floor((maxdist
- distance
)*distSampleScale
+ 0.5f
)};
258 if(delay
> float{MAX_DELAY_LENGTH
-1})
260 ERR("Delay for channel %u (%s) exceeds buffer length (%f > %d)\n", idx
,
261 GetLabelFromChannel(ch
), delay
, MAX_DELAY_LENGTH
-1);
262 delay
= float{MAX_DELAY_LENGTH
-1};
265 ChanDelay
.resize(maxz(ChanDelay
.size(), idx
+1));
266 ChanDelay
[idx
].Length
= static_cast<uint
>(delay
);
267 ChanDelay
[idx
].Gain
= distance
/ maxdist
;
268 TRACE("Channel %s distance comp: %u samples, %f gain\n", GetLabelFromChannel(ch
),
269 ChanDelay
[idx
].Length
, ChanDelay
[idx
].Gain
);
271 /* Round up to the next 4th sample, so each channel buffer starts
274 total
+= RoundUp(ChanDelay
[idx
].Length
, 4);
279 auto chandelays
= DistanceComp::Create(total
);
281 ChanDelay
[0].Buffer
= chandelays
->mSamples
.data();
282 auto set_bufptr
= [](const DistanceComp::ChanData
&last
, const DistanceComp::ChanData
&cur
)
283 -> DistanceComp::ChanData
285 DistanceComp::ChanData ret
{cur
};
286 ret
.Buffer
= last
.Buffer
+ RoundUp(last
.Length
, 4);
289 std::partial_sum(ChanDelay
.begin(), ChanDelay
.end(), chandelays
->mChannels
.begin(),
291 device
->ChannelDelays
= std::move(chandelays
);
296 inline auto& GetAmbiScales(DevAmbiScaling scaletype
) noexcept
298 if(scaletype
== DevAmbiScaling::FuMa
) return AmbiScale::FromFuMa();
299 if(scaletype
== DevAmbiScaling::SN3D
) return AmbiScale::FromSN3D();
300 return AmbiScale::FromN3D();
303 inline auto& GetAmbiLayout(DevAmbiLayout layouttype
) noexcept
305 if(layouttype
== DevAmbiLayout::FuMa
) return AmbiIndex::FromFuMa();
306 return AmbiIndex::FromACN();
310 DecoderView
MakeDecoderView(ALCdevice
*device
, const AmbDecConf
*conf
,
311 DecoderConfig
<DualBand
, MAX_OUTPUT_CHANNELS
> &decoder
)
315 decoder
.mOrder
= (conf
->ChanMask
> Ambi2OrderMask
) ? uint8_t{3} :
316 (conf
->ChanMask
> Ambi1OrderMask
) ? uint8_t{2} : uint8_t{1};
317 decoder
.mIs3D
= (conf
->ChanMask
&AmbiPeriphonicMask
) != 0;
319 switch(conf
->CoeffScale
)
321 case AmbDecScale::N3D
: decoder
.mScaling
= DevAmbiScaling::N3D
; break;
322 case AmbDecScale::SN3D
: decoder
.mScaling
= DevAmbiScaling::SN3D
; break;
323 case AmbDecScale::FuMa
: decoder
.mScaling
= DevAmbiScaling::FuMa
; break;
326 std::copy_n(std::begin(conf
->HFOrderGain
),
327 std::min(al::size(conf
->HFOrderGain
), al::size(decoder
.mOrderGain
)),
328 std::begin(decoder
.mOrderGain
));
329 std::copy_n(std::begin(conf
->LFOrderGain
),
330 std::min(al::size(conf
->LFOrderGain
), al::size(decoder
.mOrderGainLF
)),
331 std::begin(decoder
.mOrderGainLF
));
333 std::array
<uint8_t,MaxAmbiChannels
> idx_map
{};
336 uint flags
{conf
->ChanMask
};
337 auto elem
= idx_map
.begin();
340 int acn
{al::countr_zero(flags
)};
343 *elem
= static_cast<uint8_t>(acn
);
349 uint flags
{conf
->ChanMask
};
350 auto elem
= idx_map
.begin();
353 int acn
{al::countr_zero(flags
)};
358 case 0: *elem
= 0; break;
359 case 1: *elem
= 1; break;
360 case 3: *elem
= 2; break;
361 case 4: *elem
= 3; break;
362 case 8: *elem
= 4; break;
363 case 9: *elem
= 5; break;
364 case 15: *elem
= 6; break;
370 const auto num_coeffs
= static_cast<uint
>(al::popcount(conf
->ChanMask
));
371 const auto hfmatrix
= conf
->HFMatrix
;
372 const auto lfmatrix
= conf
->LFMatrix
;
375 using const_speaker_span
= al::span
<const AmbDecConf::SpeakerConf
>;
376 for(auto &speaker
: const_speaker_span
{conf
->Speakers
.get(), conf
->NumSpeakers
})
378 /* NOTE: AmbDec does not define any standard speaker names, however
379 * for this to work we have to by able to find the output channel
380 * the speaker definition corresponds to. Therefore, OpenAL Soft
381 * requires these channel labels to be recognized:
392 * Additionally, surround51 will acknowledge back speakers for side
393 * channels, to avoid issues with an ambdec expecting 5.1 to use the
397 if(speaker
.Name
== "LF")
399 else if(speaker
.Name
== "RF")
401 else if(speaker
.Name
== "CE")
403 else if(speaker
.Name
== "LS")
405 else if(speaker
.Name
== "RS")
407 else if(speaker
.Name
== "LB")
408 ch
= (device
->FmtChans
== DevFmtX51
) ? SideLeft
: BackLeft
;
409 else if(speaker
.Name
== "RB")
410 ch
= (device
->FmtChans
== DevFmtX51
) ? SideRight
: BackRight
;
411 else if(speaker
.Name
== "CB")
415 ERR("AmbDec speaker label \"%s\" not recognized\n", speaker
.Name
.c_str());
419 decoder
.mChannels
[chan_count
] = ch
;
420 for(size_t src
{0};src
< num_coeffs
;++src
)
422 const size_t dst
{idx_map
[src
]};
423 decoder
.mCoeffs
[chan_count
][dst
] = hfmatrix
[chan_count
][src
];
425 if(conf
->FreqBands
> 1)
427 for(size_t src
{0};src
< num_coeffs
;++src
)
429 const size_t dst
{idx_map
[src
]};
430 decoder
.mCoeffsLF
[chan_count
][dst
] = lfmatrix
[chan_count
][src
];
438 ret
.mOrder
= decoder
.mOrder
;
439 ret
.mIs3D
= decoder
.mIs3D
;
440 ret
.mScaling
= decoder
.mScaling
;
441 ret
.mChannels
= {decoder
.mChannels
.data(), chan_count
};
442 ret
.mOrderGain
= decoder
.mOrderGain
;
443 ret
.mCoeffs
= {decoder
.mCoeffs
.data(), chan_count
};
444 if(conf
->FreqBands
> 1)
446 ret
.mOrderGainLF
= decoder
.mOrderGainLF
;
447 ret
.mCoeffsLF
= {decoder
.mCoeffsLF
.data(), chan_count
};
453 constexpr DecoderConfig
<SingleBand
, 1> MonoConfig
{
454 0, false, {{FrontCenter
}},
459 constexpr DecoderConfig
<SingleBand
, 2> StereoConfig
{
460 1, false, {{FrontLeft
, FrontRight
}},
464 {{5.00000000e-1f
, 2.88675135e-1f
, 5.52305643e-2f
}},
465 {{5.00000000e-1f
, -2.88675135e-1f
, 5.52305643e-2f
}},
468 constexpr DecoderConfig
<DualBand
, 4> QuadConfig
{
469 2, false, {{BackLeft
, FrontLeft
, FrontRight
, BackRight
}},
471 /*HF*/{{1.15470054e+0f
, 1.00000000e+0f
, 5.77350269e-1f
}},
473 {{2.50000000e-1f
, 2.04124145e-1f
, -2.04124145e-1f
, -1.29099445e-1f
, 0.00000000e+0f
}},
474 {{2.50000000e-1f
, 2.04124145e-1f
, 2.04124145e-1f
, 1.29099445e-1f
, 0.00000000e+0f
}},
475 {{2.50000000e-1f
, -2.04124145e-1f
, 2.04124145e-1f
, -1.29099445e-1f
, 0.00000000e+0f
}},
476 {{2.50000000e-1f
, -2.04124145e-1f
, -2.04124145e-1f
, 1.29099445e-1f
, 0.00000000e+0f
}},
478 /*LF*/{{1.00000000e+0f
, 1.00000000e+0f
, 1.00000000e+0f
}},
480 {{2.50000000e-1f
, 2.04124145e-1f
, -2.04124145e-1f
, -1.29099445e-1f
, 0.00000000e+0f
}},
481 {{2.50000000e-1f
, 2.04124145e-1f
, 2.04124145e-1f
, 1.29099445e-1f
, 0.00000000e+0f
}},
482 {{2.50000000e-1f
, -2.04124145e-1f
, 2.04124145e-1f
, -1.29099445e-1f
, 0.00000000e+0f
}},
483 {{2.50000000e-1f
, -2.04124145e-1f
, -2.04124145e-1f
, 1.29099445e-1f
, 0.00000000e+0f
}},
486 constexpr DecoderConfig
<DualBand
, 5> X51Config
{
487 2, false, {{SideLeft
, FrontLeft
, FrontCenter
, FrontRight
, SideRight
}},
488 DevAmbiScaling::FuMa
,
489 /*HF*/{{1.00000000e+0f
, 1.00000000e+0f
, 1.00000000e+0f
}},
491 {{5.67316000e-1f
, 4.22920000e-1f
, -3.15495000e-1f
, -6.34490000e-2f
, -2.92380000e-2f
}},
492 {{3.68584000e-1f
, 2.72349000e-1f
, 3.21616000e-1f
, 1.92645000e-1f
, 4.82600000e-2f
}},
493 {{1.83579000e-1f
, 0.00000000e+0f
, 1.99588000e-1f
, 0.00000000e+0f
, 9.62820000e-2f
}},
494 {{3.68584000e-1f
, -2.72349000e-1f
, 3.21616000e-1f
, -1.92645000e-1f
, 4.82600000e-2f
}},
495 {{5.67316000e-1f
, -4.22920000e-1f
, -3.15495000e-1f
, 6.34490000e-2f
, -2.92380000e-2f
}},
497 /*LF*/{{1.00000000e+0f
, 1.00000000e+0f
, 1.00000000e+0f
}},
499 {{4.90109850e-1f
, 3.77305010e-1f
, -3.73106990e-1f
, -1.25914530e-1f
, 1.45133000e-2f
}},
500 {{1.49085730e-1f
, 3.03561680e-1f
, 1.53290060e-1f
, 2.45112480e-1f
, -1.50753130e-1f
}},
501 {{1.37654920e-1f
, 0.00000000e+0f
, 4.49417940e-1f
, 0.00000000e+0f
, 2.57844070e-1f
}},
502 {{1.49085730e-1f
, -3.03561680e-1f
, 1.53290060e-1f
, -2.45112480e-1f
, -1.50753130e-1f
}},
503 {{4.90109850e-1f
, -3.77305010e-1f
, -3.73106990e-1f
, 1.25914530e-1f
, 1.45133000e-2f
}},
506 constexpr DecoderConfig
<SingleBand
, 5> X61Config
{
507 2, false, {{SideLeft
, FrontLeft
, FrontRight
, SideRight
, BackCenter
}},
509 {{1.0f
, 1.0f
, 1.0f
}},
511 {{2.04460341e-1f
, 2.17177926e-1f
, -4.39996780e-2f
, -2.60790269e-2f
, -6.87239792e-2f
}},
512 {{1.58923161e-1f
, 9.21772680e-2f
, 1.59658796e-1f
, 6.66278083e-2f
, 3.84686854e-2f
}},
513 {{1.58923161e-1f
, -9.21772680e-2f
, 1.59658796e-1f
, -6.66278083e-2f
, 3.84686854e-2f
}},
514 {{2.04460341e-1f
, -2.17177926e-1f
, -4.39996780e-2f
, 2.60790269e-2f
, -6.87239792e-2f
}},
515 {{2.50001688e-1f
, 0.00000000e+0f
, -2.50000094e-1f
, 0.00000000e+0f
, 6.05133395e-2f
}},
518 constexpr DecoderConfig
<DualBand
, 6> X71Config
{
519 3, false, {{BackLeft
, SideLeft
, FrontLeft
, FrontRight
, SideRight
, BackRight
}},
521 /*HF*/{{1.22474487e+0f
, 1.13151672e+0f
, 8.66025404e-1f
, 4.68689571e-1f
}},
523 {{1.66666667e-1f
, 9.62250449e-2f
, -1.66666667e-1f
, -1.49071198e-1f
, 8.60662966e-2f
, 7.96819073e-2f
, 0.00000000e+0f
}},
524 {{1.66666667e-1f
, 1.92450090e-1f
, 0.00000000e+0f
, 0.00000000e+0f
, -1.72132593e-1f
, -7.96819073e-2f
, 0.00000000e+0f
}},
525 {{1.66666667e-1f
, 9.62250449e-2f
, 1.66666667e-1f
, 1.49071198e-1f
, 8.60662966e-2f
, 7.96819073e-2f
, 0.00000000e+0f
}},
526 {{1.66666667e-1f
, -9.62250449e-2f
, 1.66666667e-1f
, -1.49071198e-1f
, 8.60662966e-2f
, -7.96819073e-2f
, 0.00000000e+0f
}},
527 {{1.66666667e-1f
, -1.92450090e-1f
, 0.00000000e+0f
, 0.00000000e+0f
, -1.72132593e-1f
, 7.96819073e-2f
, 0.00000000e+0f
}},
528 {{1.66666667e-1f
, -9.62250449e-2f
, -1.66666667e-1f
, 1.49071198e-1f
, 8.60662966e-2f
, -7.96819073e-2f
, 0.00000000e+0f
}},
530 /*LF*/{{1.00000000e+0f
, 1.00000000e+0f
, 1.00000000e+0f
, 1.00000000e+0f
}},
532 {{1.66666667e-1f
, 9.62250449e-2f
, -1.66666667e-1f
, -1.49071198e-1f
, 8.60662966e-2f
, 7.96819073e-2f
, 0.00000000e+0f
}},
533 {{1.66666667e-1f
, 1.92450090e-1f
, 0.00000000e+0f
, 0.00000000e+0f
, -1.72132593e-1f
, -7.96819073e-2f
, 0.00000000e+0f
}},
534 {{1.66666667e-1f
, 9.62250449e-2f
, 1.66666667e-1f
, 1.49071198e-1f
, 8.60662966e-2f
, 7.96819073e-2f
, 0.00000000e+0f
}},
535 {{1.66666667e-1f
, -9.62250449e-2f
, 1.66666667e-1f
, -1.49071198e-1f
, 8.60662966e-2f
, -7.96819073e-2f
, 0.00000000e+0f
}},
536 {{1.66666667e-1f
, -1.92450090e-1f
, 0.00000000e+0f
, 0.00000000e+0f
, -1.72132593e-1f
, 7.96819073e-2f
, 0.00000000e+0f
}},
537 {{1.66666667e-1f
, -9.62250449e-2f
, -1.66666667e-1f
, 1.49071198e-1f
, 8.60662966e-2f
, -7.96819073e-2f
, 0.00000000e+0f
}},
541 void InitPanning(ALCdevice
*device
, const bool hqdec
=false, const bool stablize
=false,
542 DecoderView decoder
={})
546 switch(device
->FmtChans
)
548 case DevFmtMono
: decoder
= MonoConfig
; break;
549 case DevFmtStereo
: decoder
= StereoConfig
; break;
550 case DevFmtQuad
: decoder
= QuadConfig
; break;
551 case DevFmtX51
: decoder
= X51Config
; break;
552 case DevFmtX61
: decoder
= X61Config
; break;
553 case DevFmtX71
: decoder
= X71Config
; break;
555 auto&& acnmap
= GetAmbiLayout(device
->mAmbiLayout
);
556 auto&& n3dscale
= GetAmbiScales(device
->mAmbiScale
);
558 /* For DevFmtAmbi3D, the ambisonic order is already set. */
559 const size_t count
{AmbiChannelsFromOrder(device
->mAmbiOrder
)};
560 std::transform(acnmap
.begin(), acnmap
.begin()+count
, std::begin(device
->Dry
.AmbiMap
),
561 [&n3dscale
](const uint8_t &acn
) noexcept
-> BFChannelConfig
562 { return BFChannelConfig
{1.0f
/n3dscale
[acn
], acn
}; });
563 AllocChannels(device
, count
, 0);
565 float nfc_delay
{device
->configValue
<float>("decoder", "nfc-ref-delay").value_or(0.0f
)};
567 InitNearFieldCtrl(device
, nfc_delay
* SpeedOfSoundMetersPerSec
, device
->mAmbiOrder
,
573 const bool dual_band
{hqdec
&& !decoder
.mCoeffsLF
.empty()};
574 al::vector
<ChannelDec
> chancoeffs
, chancoeffslf
;
575 for(size_t i
{0u};i
< decoder
.mChannels
.size();++i
)
577 const uint idx
{GetChannelIdxByName(device
->RealOut
, decoder
.mChannels
[i
])};
578 if(idx
== INVALID_CHANNEL_INDEX
)
580 ERR("Failed to find %s channel in device\n",
581 GetLabelFromChannel(decoder
.mChannels
[i
]));
585 chancoeffs
.resize(maxz(chancoeffs
.size(), idx
+1u), ChannelDec
{});
586 al::span
<float,MaxAmbiChannels
> coeffs
{chancoeffs
[idx
]};
588 for(uint o
{0};o
< decoder
.mOrder
+1u;++o
)
590 const float order_gain
{decoder
.mOrderGain
[o
]};
591 const size_t order_max
{decoder
.mIs3D
? AmbiChannelsFromOrder(o
) :
592 Ambi2DChannelsFromOrder(o
)};
593 for(;ambichan
< order_max
;++ambichan
)
594 coeffs
[ambichan
] = decoder
.mCoeffs
[i
][ambichan
] * order_gain
;
599 chancoeffslf
.resize(maxz(chancoeffslf
.size(), idx
+1u), ChannelDec
{});
600 coeffs
= chancoeffslf
[idx
];
602 for(uint o
{0};o
< decoder
.mOrder
+1u;++o
)
604 const float order_gain
{decoder
.mOrderGainLF
[o
]};
605 const size_t order_max
{decoder
.mIs3D
? AmbiChannelsFromOrder(o
) :
606 Ambi2DChannelsFromOrder(o
)};
607 for(;ambichan
< order_max
;++ambichan
)
608 coeffs
[ambichan
] = decoder
.mCoeffsLF
[i
][ambichan
] * order_gain
;
612 /* For non-DevFmtAmbi3D, set the ambisonic order. */
613 device
->mAmbiOrder
= decoder
.mOrder
;
615 const size_t ambicount
{decoder
.mIs3D
? AmbiChannelsFromOrder(decoder
.mOrder
) :
616 Ambi2DChannelsFromOrder(decoder
.mOrder
)};
617 const al::span
<const uint8_t> acnmap
{decoder
.mIs3D
? AmbiIndex::FromACN().data() :
618 AmbiIndex::FromACN2D().data(), ambicount
};
619 auto&& coeffscale
= GetAmbiScales(decoder
.mScaling
);
620 std::transform(acnmap
.begin(), acnmap
.end(), std::begin(device
->Dry
.AmbiMap
),
621 [&coeffscale
](const uint8_t &acn
) noexcept
622 { return BFChannelConfig
{1.0f
/coeffscale
[acn
], acn
}; });
623 AllocChannels(device
, ambicount
, device
->channelsFromFmt());
625 std::unique_ptr
<FrontStablizer
> stablizer
;
628 /* Only enable the stablizer if the decoder does not output to the
629 * front-center channel.
631 const auto cidx
= device
->RealOut
.ChannelIndex
[FrontCenter
];
633 if(cidx
< chancoeffs
.size())
635 for(const auto &coeff
: chancoeffs
[cidx
])
636 hasfc
|= coeff
!= 0.0f
;
638 if(!hasfc
&& cidx
< chancoeffslf
.size())
640 for(const auto &coeff
: chancoeffslf
[cidx
])
641 hasfc
|= coeff
!= 0.0f
;
645 stablizer
= CreateStablizer(device
->channelsFromFmt(), device
->Frequency
);
646 TRACE("Front stablizer enabled\n");
650 TRACE("Enabling %s-band %s-order%s ambisonic decoder\n",
651 !dual_band
? "single" : "dual",
652 (decoder
.mOrder
> 2) ? "third" :
653 (decoder
.mOrder
> 1) ? "second" : "first",
654 decoder
.mIs3D
? " periphonic" : "");
655 device
->AmbiDecoder
= BFormatDec::Create(ambicount
, chancoeffs
, chancoeffslf
,
656 device
->mXOverFreq
/static_cast<float>(device
->Frequency
), std::move(stablizer
));
659 void InitHrtfPanning(ALCdevice
*device
)
661 constexpr float Deg180
{al::numbers::pi_v
<float>};
662 constexpr float Deg_90
{Deg180
/ 2.0f
/* 90 degrees*/};
663 constexpr float Deg_45
{Deg_90
/ 2.0f
/* 45 degrees*/};
664 constexpr float Deg135
{Deg_45
* 3.0f
/*135 degrees*/};
665 constexpr float Deg_35
{6.154797087e-01f
/* 35~ 36 degrees*/};
666 constexpr float Deg_69
{1.205932499e+00f
/* 69~ 70 degrees*/};
667 constexpr float Deg111
{1.935660155e+00f
/*110~111 degrees*/};
668 constexpr float Deg_21
{3.648638281e-01f
/* 20~ 21 degrees*/};
669 static const AngularPoint AmbiPoints1O
[]{
670 { EvRadians
{ Deg_35
}, AzRadians
{-Deg_45
} },
671 { EvRadians
{ Deg_35
}, AzRadians
{-Deg135
} },
672 { EvRadians
{ Deg_35
}, AzRadians
{ Deg_45
} },
673 { EvRadians
{ Deg_35
}, AzRadians
{ Deg135
} },
674 { EvRadians
{-Deg_35
}, AzRadians
{-Deg_45
} },
675 { EvRadians
{-Deg_35
}, AzRadians
{-Deg135
} },
676 { EvRadians
{-Deg_35
}, AzRadians
{ Deg_45
} },
677 { EvRadians
{-Deg_35
}, AzRadians
{ Deg135
} },
679 { EvRadians
{ 0.0f
}, AzRadians
{ 0.0f
} },
680 { EvRadians
{ 0.0f
}, AzRadians
{ Deg180
} },
681 { EvRadians
{ 0.0f
}, AzRadians
{-Deg_90
} },
682 { EvRadians
{ 0.0f
}, AzRadians
{ Deg_90
} },
683 { EvRadians
{ Deg_90
}, AzRadians
{ 0.0f
} },
684 { EvRadians
{-Deg_90
}, AzRadians
{ 0.0f
} },
685 { EvRadians
{ Deg_35
}, AzRadians
{-Deg_45
} },
686 { EvRadians
{ Deg_35
}, AzRadians
{-Deg135
} },
687 { EvRadians
{ Deg_35
}, AzRadians
{ Deg_45
} },
688 { EvRadians
{ Deg_35
}, AzRadians
{ Deg135
} },
689 { EvRadians
{-Deg_35
}, AzRadians
{-Deg_45
} },
690 { EvRadians
{-Deg_35
}, AzRadians
{-Deg135
} },
691 { EvRadians
{-Deg_35
}, AzRadians
{ Deg_45
} },
692 { EvRadians
{-Deg_35
}, AzRadians
{ Deg135
} },
694 { EvRadians
{ Deg_69
}, AzRadians
{-Deg_90
} },
695 { EvRadians
{ Deg_69
}, AzRadians
{ Deg_90
} },
696 { EvRadians
{-Deg_69
}, AzRadians
{-Deg_90
} },
697 { EvRadians
{-Deg_69
}, AzRadians
{ Deg_90
} },
698 { EvRadians
{ 0.0f
}, AzRadians
{-Deg_69
} },
699 { EvRadians
{ 0.0f
}, AzRadians
{-Deg111
} },
700 { EvRadians
{ 0.0f
}, AzRadians
{ Deg_69
} },
701 { EvRadians
{ 0.0f
}, AzRadians
{ Deg111
} },
702 { EvRadians
{ Deg_21
}, AzRadians
{ 0.0f
} },
703 { EvRadians
{ Deg_21
}, AzRadians
{ Deg180
} },
704 { EvRadians
{-Deg_21
}, AzRadians
{ 0.0f
} },
705 { EvRadians
{-Deg_21
}, AzRadians
{ Deg180
} },
706 { EvRadians
{ Deg_35
}, AzRadians
{-Deg_45
} },
707 { EvRadians
{ Deg_35
}, AzRadians
{-Deg135
} },
708 { EvRadians
{ Deg_35
}, AzRadians
{ Deg_45
} },
709 { EvRadians
{ Deg_35
}, AzRadians
{ Deg135
} },
710 { EvRadians
{-Deg_35
}, AzRadians
{-Deg_45
} },
711 { EvRadians
{-Deg_35
}, AzRadians
{-Deg135
} },
712 { EvRadians
{-Deg_35
}, AzRadians
{ Deg_45
} },
713 { EvRadians
{-Deg_35
}, AzRadians
{ Deg135
} },
715 static const float AmbiMatrix1O
[][MaxAmbiChannels
]{
716 { 1.250000000e-01f
, 1.250000000e-01f
, 1.250000000e-01f
, 1.250000000e-01f
},
717 { 1.250000000e-01f
, 1.250000000e-01f
, 1.250000000e-01f
, -1.250000000e-01f
},
718 { 1.250000000e-01f
, -1.250000000e-01f
, 1.250000000e-01f
, 1.250000000e-01f
},
719 { 1.250000000e-01f
, -1.250000000e-01f
, 1.250000000e-01f
, -1.250000000e-01f
},
720 { 1.250000000e-01f
, 1.250000000e-01f
, -1.250000000e-01f
, 1.250000000e-01f
},
721 { 1.250000000e-01f
, 1.250000000e-01f
, -1.250000000e-01f
, -1.250000000e-01f
},
722 { 1.250000000e-01f
, -1.250000000e-01f
, -1.250000000e-01f
, 1.250000000e-01f
},
723 { 1.250000000e-01f
, -1.250000000e-01f
, -1.250000000e-01f
, -1.250000000e-01f
},
724 }, AmbiMatrix2O
[][MaxAmbiChannels
]{
725 { 7.142857143e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, 1.237179148e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, -7.453559925e-02f
, 0.000000000e+00f
, 1.290994449e-01f
, },
726 { 7.142857143e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, -1.237179148e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, -7.453559925e-02f
, 0.000000000e+00f
, 1.290994449e-01f
, },
727 { 7.142857143e-02f
, 1.237179148e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, -7.453559925e-02f
, 0.000000000e+00f
, -1.290994449e-01f
, },
728 { 7.142857143e-02f
, -1.237179148e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, -7.453559925e-02f
, 0.000000000e+00f
, -1.290994449e-01f
, },
729 { 7.142857143e-02f
, 0.000000000e+00f
, 1.237179148e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, 1.490711985e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, },
730 { 7.142857143e-02f
, 0.000000000e+00f
, -1.237179148e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, 1.490711985e-01f
, 0.000000000e+00f
, 0.000000000e+00f
, },
731 { 7.142857143e-02f
, 7.142857143e-02f
, 7.142857143e-02f
, 7.142857143e-02f
, 9.682458366e-02f
, 9.682458366e-02f
, 0.000000000e+00f
, 9.682458366e-02f
, 0.000000000e+00f
, },
732 { 7.142857143e-02f
, 7.142857143e-02f
, 7.142857143e-02f
, -7.142857143e-02f
, -9.682458366e-02f
, 9.682458366e-02f
, 0.000000000e+00f
, -9.682458366e-02f
, 0.000000000e+00f
, },
733 { 7.142857143e-02f
, -7.142857143e-02f
, 7.142857143e-02f
, 7.142857143e-02f
, -9.682458366e-02f
, -9.682458366e-02f
, 0.000000000e+00f
, 9.682458366e-02f
, 0.000000000e+00f
, },
734 { 7.142857143e-02f
, -7.142857143e-02f
, 7.142857143e-02f
, -7.142857143e-02f
, 9.682458366e-02f
, -9.682458366e-02f
, 0.000000000e+00f
, -9.682458366e-02f
, 0.000000000e+00f
, },
735 { 7.142857143e-02f
, 7.142857143e-02f
, -7.142857143e-02f
, 7.142857143e-02f
, 9.682458366e-02f
, -9.682458366e-02f
, 0.000000000e+00f
, -9.682458366e-02f
, 0.000000000e+00f
, },
736 { 7.142857143e-02f
, 7.142857143e-02f
, -7.142857143e-02f
, -7.142857143e-02f
, -9.682458366e-02f
, -9.682458366e-02f
, 0.000000000e+00f
, 9.682458366e-02f
, 0.000000000e+00f
, },
737 { 7.142857143e-02f
, -7.142857143e-02f
, -7.142857143e-02f
, 7.142857143e-02f
, -9.682458366e-02f
, 9.682458366e-02f
, 0.000000000e+00f
, -9.682458366e-02f
, 0.000000000e+00f
, },
738 { 7.142857143e-02f
, -7.142857143e-02f
, -7.142857143e-02f
, -7.142857143e-02f
, 9.682458366e-02f
, 9.682458366e-02f
, 0.000000000e+00f
, 9.682458366e-02f
, 0.000000000e+00f
, },
739 }, AmbiMatrix3O
[][MaxAmbiChannels
]{
740 { 5.000000000e-02f
, 3.090169944e-02f
, 8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, 6.454972244e-02f
, 9.045084972e-02f
, 0.000000000e+00f
, -1.232790000e-02f
, -1.256118221e-01f
, 0.000000000e+00f
, 1.126112056e-01f
, 7.944389175e-02f
, 0.000000000e+00f
, 2.421151497e-02f
, 0.000000000e+00f
, },
741 { 5.000000000e-02f
, -3.090169944e-02f
, 8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, -6.454972244e-02f
, 9.045084972e-02f
, 0.000000000e+00f
, -1.232790000e-02f
, 1.256118221e-01f
, 0.000000000e+00f
, -1.126112056e-01f
, 7.944389175e-02f
, 0.000000000e+00f
, 2.421151497e-02f
, 0.000000000e+00f
, },
742 { 5.000000000e-02f
, 3.090169944e-02f
, -8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, -6.454972244e-02f
, 9.045084972e-02f
, 0.000000000e+00f
, -1.232790000e-02f
, -1.256118221e-01f
, 0.000000000e+00f
, 1.126112056e-01f
, -7.944389175e-02f
, 0.000000000e+00f
, -2.421151497e-02f
, 0.000000000e+00f
, },
743 { 5.000000000e-02f
, -3.090169944e-02f
, -8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, 6.454972244e-02f
, 9.045084972e-02f
, 0.000000000e+00f
, -1.232790000e-02f
, 1.256118221e-01f
, 0.000000000e+00f
, -1.126112056e-01f
, -7.944389175e-02f
, 0.000000000e+00f
, -2.421151497e-02f
, 0.000000000e+00f
, },
744 { 5.000000000e-02f
, 8.090169944e-02f
, 0.000000000e+00f
, 3.090169944e-02f
, 6.454972244e-02f
, 0.000000000e+00f
, -5.590169944e-02f
, 0.000000000e+00f
, -7.216878365e-02f
, -7.763237543e-02f
, 0.000000000e+00f
, -2.950836627e-02f
, 0.000000000e+00f
, -1.497759251e-01f
, 0.000000000e+00f
, -7.763237543e-02f
, },
745 { 5.000000000e-02f
, 8.090169944e-02f
, 0.000000000e+00f
, -3.090169944e-02f
, -6.454972244e-02f
, 0.000000000e+00f
, -5.590169944e-02f
, 0.000000000e+00f
, -7.216878365e-02f
, -7.763237543e-02f
, 0.000000000e+00f
, -2.950836627e-02f
, 0.000000000e+00f
, 1.497759251e-01f
, 0.000000000e+00f
, 7.763237543e-02f
, },
746 { 5.000000000e-02f
, -8.090169944e-02f
, 0.000000000e+00f
, 3.090169944e-02f
, -6.454972244e-02f
, 0.000000000e+00f
, -5.590169944e-02f
, 0.000000000e+00f
, -7.216878365e-02f
, 7.763237543e-02f
, 0.000000000e+00f
, 2.950836627e-02f
, 0.000000000e+00f
, -1.497759251e-01f
, 0.000000000e+00f
, -7.763237543e-02f
, },
747 { 5.000000000e-02f
, -8.090169944e-02f
, 0.000000000e+00f
, -3.090169944e-02f
, 6.454972244e-02f
, 0.000000000e+00f
, -5.590169944e-02f
, 0.000000000e+00f
, -7.216878365e-02f
, 7.763237543e-02f
, 0.000000000e+00f
, 2.950836627e-02f
, 0.000000000e+00f
, 1.497759251e-01f
, 0.000000000e+00f
, 7.763237543e-02f
, },
748 { 5.000000000e-02f
, 0.000000000e+00f
, 3.090169944e-02f
, 8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, -3.454915028e-02f
, 6.454972244e-02f
, 8.449668365e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, 3.034486645e-02f
, -6.779013272e-02f
, 1.659481923e-01f
, 4.797944664e-02f
, },
749 { 5.000000000e-02f
, 0.000000000e+00f
, 3.090169944e-02f
, -8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, -3.454915028e-02f
, -6.454972244e-02f
, 8.449668365e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, 3.034486645e-02f
, 6.779013272e-02f
, 1.659481923e-01f
, -4.797944664e-02f
, },
750 { 5.000000000e-02f
, 0.000000000e+00f
, -3.090169944e-02f
, 8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, -3.454915028e-02f
, -6.454972244e-02f
, 8.449668365e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, -3.034486645e-02f
, -6.779013272e-02f
, -1.659481923e-01f
, 4.797944664e-02f
, },
751 { 5.000000000e-02f
, 0.000000000e+00f
, -3.090169944e-02f
, -8.090169944e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, -3.454915028e-02f
, 6.454972244e-02f
, 8.449668365e-02f
, 0.000000000e+00f
, 0.000000000e+00f
, 0.000000000e+00f
, -3.034486645e-02f
, 6.779013272e-02f
, -1.659481923e-01f
, -4.797944664e-02f
, },
752 { 5.000000000e-02f
, 5.000000000e-02f
, 5.000000000e-02f
, 5.000000000e-02f
, 6.454972244e-02f
, 6.454972244e-02f
, 0.000000000e+00f
, 6.454972244e-02f
, 0.000000000e+00f
, 1.016220987e-01f
, 6.338656910e-02f
, -1.092600649e-02f
, -7.364853795e-02f
, 1.011266756e-01f
, -7.086833869e-02f
, -1.482646439e-02f
, },
753 { 5.000000000e-02f
, 5.000000000e-02f
, 5.000000000e-02f
, -5.000000000e-02f
, -6.454972244e-02f
, 6.454972244e-02f
, 0.000000000e+00f
, -6.454972244e-02f
, 0.000000000e+00f
, 1.016220987e-01f
, -6.338656910e-02f
, -1.092600649e-02f
, -7.364853795e-02f
, -1.011266756e-01f
, -7.086833869e-02f
, 1.482646439e-02f
, },
754 { 5.000000000e-02f
, -5.000000000e-02f
, 5.000000000e-02f
, 5.000000000e-02f
, -6.454972244e-02f
, -6.454972244e-02f
, 0.000000000e+00f
, 6.454972244e-02f
, 0.000000000e+00f
, -1.016220987e-01f
, -6.338656910e-02f
, 1.092600649e-02f
, -7.364853795e-02f
, 1.011266756e-01f
, -7.086833869e-02f
, -1.482646439e-02f
, },
755 { 5.000000000e-02f
, -5.000000000e-02f
, 5.000000000e-02f
, -5.000000000e-02f
, 6.454972244e-02f
, -6.454972244e-02f
, 0.000000000e+00f
, -6.454972244e-02f
, 0.000000000e+00f
, -1.016220987e-01f
, 6.338656910e-02f
, 1.092600649e-02f
, -7.364853795e-02f
, -1.011266756e-01f
, -7.086833869e-02f
, 1.482646439e-02f
, },
756 { 5.000000000e-02f
, 5.000000000e-02f
, -5.000000000e-02f
, 5.000000000e-02f
, 6.454972244e-02f
, -6.454972244e-02f
, 0.000000000e+00f
, -6.454972244e-02f
, 0.000000000e+00f
, 1.016220987e-01f
, -6.338656910e-02f
, -1.092600649e-02f
, 7.364853795e-02f
, 1.011266756e-01f
, 7.086833869e-02f
, -1.482646439e-02f
, },
757 { 5.000000000e-02f
, 5.000000000e-02f
, -5.000000000e-02f
, -5.000000000e-02f
, -6.454972244e-02f
, -6.454972244e-02f
, 0.000000000e+00f
, 6.454972244e-02f
, 0.000000000e+00f
, 1.016220987e-01f
, 6.338656910e-02f
, -1.092600649e-02f
, 7.364853795e-02f
, -1.011266756e-01f
, 7.086833869e-02f
, 1.482646439e-02f
, },
758 { 5.000000000e-02f
, -5.000000000e-02f
, -5.000000000e-02f
, 5.000000000e-02f
, -6.454972244e-02f
, 6.454972244e-02f
, 0.000000000e+00f
, -6.454972244e-02f
, 0.000000000e+00f
, -1.016220987e-01f
, 6.338656910e-02f
, 1.092600649e-02f
, 7.364853795e-02f
, 1.011266756e-01f
, 7.086833869e-02f
, -1.482646439e-02f
, },
759 { 5.000000000e-02f
, -5.000000000e-02f
, -5.000000000e-02f
, -5.000000000e-02f
, 6.454972244e-02f
, 6.454972244e-02f
, 0.000000000e+00f
, 6.454972244e-02f
, 0.000000000e+00f
, -1.016220987e-01f
, -6.338656910e-02f
, 1.092600649e-02f
, 7.364853795e-02f
, -1.011266756e-01f
, 7.086833869e-02f
, 1.482646439e-02f
, },
761 static const float AmbiOrderHFGain1O
[MaxAmbiOrder
+1]{
762 /*ENRGY*/ 2.000000000e+00f
, 1.154700538e+00f
763 }, AmbiOrderHFGain2O
[MaxAmbiOrder
+1]{
764 /*ENRGY 2.357022604e+00f, 1.825741858e+00f, 9.428090416e-01f*/
765 /*AMP 1.000000000e+00f, 7.745966692e-01f, 4.000000000e-01f*/
766 /*RMS*/ 9.128709292e-01f
, 7.071067812e-01f
, 3.651483717e-01f
767 }, AmbiOrderHFGain3O
[MaxAmbiOrder
+1]{
768 /*ENRGY 1.865086714e+00f, 1.606093894e+00f, 1.142055301e+00f, 5.683795528e-01f*/
769 /*AMP 1.000000000e+00f, 8.611363116e-01f, 6.123336207e-01f, 3.047469850e-01f*/
770 /*RMS*/ 8.340921354e-01f
, 7.182670250e-01f
, 5.107426573e-01f
, 2.541870634e-01f
773 static_assert(al::size(AmbiPoints1O
) == al::size(AmbiMatrix1O
), "First-Order Ambisonic HRTF mismatch");
774 static_assert(al::size(AmbiPoints2O
) == al::size(AmbiMatrix2O
), "Second-Order Ambisonic HRTF mismatch");
775 static_assert(al::size(AmbiPoints3O
) == al::size(AmbiMatrix3O
), "Third-Order Ambisonic HRTF mismatch");
777 /* A 700hz crossover frequency provides tighter sound imaging at the sweet
778 * spot with ambisonic decoding, as the distance between the ears is closer
779 * to half this frequency wavelength, which is the optimal point where the
780 * response should change between optimizing phase vs volume. Normally this
781 * tighter imaging is at the cost of a smaller sweet spot, but since the
782 * listener is fixed in the center of the HRTF responses for the decoder,
783 * we don't have to worry about ever being out of the sweet spot.
785 * A better option here may be to have the head radius as part of the HRTF
786 * data set and calculate the optimal crossover frequency from that.
788 device
->mXOverFreq
= 700.0f
;
790 /* Don't bother with HOA when using full HRTF rendering. Nothing needs it,
791 * and it eases the CPU/memory load.
793 device
->mRenderMode
= RenderMode::Hrtf
;
795 if(auto modeopt
= device
->configValue
<std::string
>(nullptr, "hrtf-mode"))
797 struct HrtfModeEntry
{
802 static const HrtfModeEntry hrtf_modes
[]{
803 { "full", RenderMode::Hrtf
, 1 },
804 { "ambi1", RenderMode::Normal
, 1 },
805 { "ambi2", RenderMode::Normal
, 2 },
806 { "ambi3", RenderMode::Normal
, 3 },
809 const char *mode
{modeopt
->c_str()};
810 if(al::strcasecmp(mode
, "basic") == 0)
812 ERR("HRTF mode \"%s\" deprecated, substituting \"%s\"\n", mode
, "ambi2");
816 auto match_entry
= [mode
](const HrtfModeEntry
&entry
) -> bool
817 { return al::strcasecmp(mode
, entry
.name
) == 0; };
818 auto iter
= std::find_if(std::begin(hrtf_modes
), std::end(hrtf_modes
), match_entry
);
819 if(iter
== std::end(hrtf_modes
))
820 ERR("Unexpected hrtf-mode: %s\n", mode
);
823 device
->mRenderMode
= iter
->mode
;
824 ambi_order
= iter
->order
;
827 TRACE("%u%s order %sHRTF rendering enabled, using \"%s\"\n", ambi_order
,
828 (((ambi_order
%100)/10) == 1) ? "th" :
829 ((ambi_order
%10) == 1) ? "st" :
830 ((ambi_order
%10) == 2) ? "nd" :
831 ((ambi_order
%10) == 3) ? "rd" : "th",
832 (device
->mRenderMode
== RenderMode::Hrtf
) ? "+ Full " : "",
833 device
->mHrtfName
.c_str());
835 al::span
<const AngularPoint
> AmbiPoints
{AmbiPoints1O
};
836 const float (*AmbiMatrix
)[MaxAmbiChannels
]{AmbiMatrix1O
};
837 al::span
<const float,MaxAmbiOrder
+1> AmbiOrderHFGain
{AmbiOrderHFGain1O
};
840 AmbiPoints
= AmbiPoints3O
;
841 AmbiMatrix
= AmbiMatrix3O
;
842 AmbiOrderHFGain
= AmbiOrderHFGain3O
;
844 else if(ambi_order
== 2)
846 AmbiPoints
= AmbiPoints2O
;
847 AmbiMatrix
= AmbiMatrix2O
;
848 AmbiOrderHFGain
= AmbiOrderHFGain2O
;
850 device
->mAmbiOrder
= ambi_order
;
852 const size_t count
{AmbiChannelsFromOrder(ambi_order
)};
853 std::transform(AmbiIndex::FromACN().begin(), AmbiIndex::FromACN().begin()+count
,
854 std::begin(device
->Dry
.AmbiMap
),
855 [](const uint8_t &index
) noexcept
{ return BFChannelConfig
{1.0f
, index
}; }
857 AllocChannels(device
, count
, device
->channelsFromFmt());
859 HrtfStore
*Hrtf
{device
->mHrtf
.get()};
860 auto hrtfstate
= DirectHrtfState::Create(count
);
861 hrtfstate
->build(Hrtf
, device
->mIrSize
, AmbiPoints
, AmbiMatrix
, device
->mXOverFreq
,
863 device
->mHrtfState
= std::move(hrtfstate
);
865 InitNearFieldCtrl(device
, Hrtf
->field
[0].distance
, ambi_order
, true);
868 void InitUhjPanning(ALCdevice
*device
)
870 /* UHJ is always 2D first-order. */
871 constexpr size_t count
{Ambi2DChannelsFromOrder(1)};
873 device
->mAmbiOrder
= 1;
875 auto acnmap_begin
= AmbiIndex::FromFuMa().begin();
876 std::transform(acnmap_begin
, acnmap_begin
+ count
, std::begin(device
->Dry
.AmbiMap
),
877 [](const uint8_t &acn
) noexcept
-> BFChannelConfig
878 { return BFChannelConfig
{1.0f
/AmbiScale::FromUHJ()[acn
], acn
}; });
879 AllocChannels(device
, count
, device
->channelsFromFmt());
884 void aluInitRenderer(ALCdevice
*device
, int hrtf_id
, al::optional
<StereoEncoding
> stereomode
)
886 /* Hold the HRTF the device last used, in case it's used again. */
887 HrtfStorePtr old_hrtf
{std::move(device
->mHrtf
)};
889 device
->mHrtfState
= nullptr;
890 device
->mHrtf
= nullptr;
892 device
->mHrtfName
.clear();
893 device
->mXOverFreq
= 400.0f
;
894 device
->mRenderMode
= RenderMode::Normal
;
896 if(device
->FmtChans
!= DevFmtStereo
)
899 if(stereomode
&& *stereomode
== StereoEncoding::Hrtf
)
900 device
->mHrtfStatus
= ALC_HRTF_UNSUPPORTED_FORMAT_SOFT
;
902 const char *layout
{nullptr};
903 switch(device
->FmtChans
)
905 case DevFmtQuad
: layout
= "quad"; break;
906 case DevFmtX51
: layout
= "surround51"; break;
907 case DevFmtX61
: layout
= "surround61"; break;
908 case DevFmtX71
: layout
= "surround71"; break;
909 /* Mono, Stereo, and Ambisonics output don't use custom decoders. */
916 std::unique_ptr
<DecoderConfig
<DualBand
,MAX_OUTPUT_CHANNELS
>> decoder_store
;
917 DecoderView decoder
{};
918 float speakerdists
[MaxChannels
]{};
919 auto load_config
= [device
,&decoder_store
,&decoder
,&speakerdists
](const char *config
)
922 if(auto err
= conf
.load(config
))
924 ERR("Failed to load layout file %s\n", config
);
925 ERR(" %s\n", err
->c_str());
927 else if(conf
.NumSpeakers
> MAX_OUTPUT_CHANNELS
)
928 ERR("Unsupported decoder speaker count %zu (max %d)\n", conf
.NumSpeakers
,
929 MAX_OUTPUT_CHANNELS
);
930 else if(conf
.ChanMask
> Ambi3OrderMask
)
931 ERR("Unsupported decoder channel mask 0x%04x (max 0x%x)\n", conf
.ChanMask
,
935 device
->mXOverFreq
= clampf(conf
.XOverFreq
, 100.0f
, 1000.0f
);
937 decoder_store
= std::make_unique
<DecoderConfig
<DualBand
,MAX_OUTPUT_CHANNELS
>>();
938 decoder
= MakeDecoderView(device
, &conf
, *decoder_store
);
939 for(size_t i
{0};i
< decoder
.mChannels
.size();++i
)
940 speakerdists
[i
] = conf
.Speakers
[i
].Distance
;
945 if(auto decopt
= device
->configValue
<std::string
>("decoder", layout
))
946 load_config(decopt
->c_str());
949 /* Enable the stablizer only for formats that have front-left, front-
950 * right, and front-center outputs.
952 const bool stablize
{device
->RealOut
.ChannelIndex
[FrontCenter
] != INVALID_CHANNEL_INDEX
953 && device
->RealOut
.ChannelIndex
[FrontLeft
] != INVALID_CHANNEL_INDEX
954 && device
->RealOut
.ChannelIndex
[FrontRight
] != INVALID_CHANNEL_INDEX
955 && device
->getConfigValueBool(nullptr, "front-stablizer", 0) != 0};
956 const bool hqdec
{device
->getConfigValueBool("decoder", "hq-mode", 1) != 0};
957 InitPanning(device
, hqdec
, stablize
, decoder
);
958 if(decoder
.mOrder
> 0)
960 float accum_dist
{0.0f
}, spkr_count
{0.0f
};
961 for(auto dist
: speakerdists
)
971 InitNearFieldCtrl(device
, accum_dist
/ spkr_count
, decoder
.mOrder
, decoder
.mIs3D
);
972 InitDistanceComp(device
, decoder
.mChannels
, speakerdists
);
975 if(auto *ambidec
{device
->AmbiDecoder
.get()})
977 device
->PostProcess
= ambidec
->hasStablizer() ? &ALCdevice::ProcessAmbiDecStablized
978 : &ALCdevice::ProcessAmbiDec
;
984 /* If there's no request for HRTF or UHJ and the device is headphones, or
985 * if HRTF is explicitly requested, try to enable it.
987 if((!stereomode
&& device
->Flags
.test(DirectEar
))
988 || (stereomode
&& *stereomode
== StereoEncoding::Hrtf
))
990 if(device
->mHrtfList
.empty())
991 device
->enumerateHrtfs();
993 if(hrtf_id
>= 0 && static_cast<uint
>(hrtf_id
) < device
->mHrtfList
.size())
995 const std::string
&hrtfname
= device
->mHrtfList
[static_cast<uint
>(hrtf_id
)];
996 if(HrtfStorePtr hrtf
{GetLoadedHrtf(hrtfname
, device
->Frequency
)})
998 device
->mHrtf
= std::move(hrtf
);
999 device
->mHrtfName
= hrtfname
;
1005 for(const auto &hrtfname
: device
->mHrtfList
)
1007 if(HrtfStorePtr hrtf
{GetLoadedHrtf(hrtfname
, device
->Frequency
)})
1009 device
->mHrtf
= std::move(hrtf
);
1010 device
->mHrtfName
= hrtfname
;
1020 HrtfStore
*hrtf
{device
->mHrtf
.get()};
1021 device
->mIrSize
= hrtf
->irSize
;
1022 if(auto hrtfsizeopt
= device
->configValue
<uint
>(nullptr, "hrtf-size"))
1024 if(*hrtfsizeopt
> 0 && *hrtfsizeopt
< device
->mIrSize
)
1025 device
->mIrSize
= maxu(*hrtfsizeopt
, MinIrLength
);
1028 InitHrtfPanning(device
);
1029 device
->PostProcess
= &ALCdevice::ProcessHrtf
;
1030 device
->mHrtfStatus
= ALC_HRTF_ENABLED_SOFT
;
1036 if(stereomode
&& *stereomode
== StereoEncoding::Uhj
)
1038 device
->mUhjEncoder
= std::make_unique
<UhjEncoder
>();
1039 TRACE("UHJ enabled\n");
1040 InitUhjPanning(device
);
1041 device
->PostProcess
= &ALCdevice::ProcessUhj
;
1045 device
->mRenderMode
= RenderMode::Pairwise
;
1046 if(device
->Type
!= DeviceType::Loopback
)
1048 if(auto cflevopt
= device
->configValue
<int>(nullptr, "cf_level"))
1050 if(*cflevopt
> 0 && *cflevopt
<= 6)
1052 device
->Bs2b
= std::make_unique
<bs2b
>();
1053 bs2b_set_params(device
->Bs2b
.get(), *cflevopt
,
1054 static_cast<int>(device
->Frequency
));
1055 TRACE("BS2B enabled\n");
1056 InitPanning(device
);
1057 device
->PostProcess
= &ALCdevice::ProcessBs2b
;
1063 TRACE("Stereo rendering\n");
1064 InitPanning(device
);
1065 device
->PostProcess
= &ALCdevice::ProcessAmbiDec
;
1069 void aluInitEffectPanning(EffectSlot
*slot
, ALCcontext
*context
)
1071 DeviceBase
*device
{context
->mDevice
};
1072 const size_t count
{AmbiChannelsFromOrder(device
->mAmbiOrder
)};
1074 auto wetbuffer_iter
= context
->mWetBuffers
.end();
1075 if(slot
->mWetBuffer
)
1077 /* If the effect slot already has a wet buffer attached, allocate a new
1080 wetbuffer_iter
= context
->mWetBuffers
.begin();
1081 for(;wetbuffer_iter
!= context
->mWetBuffers
.end();++wetbuffer_iter
)
1083 if(wetbuffer_iter
->get() == slot
->mWetBuffer
)
1085 slot
->mWetBuffer
= nullptr;
1086 slot
->Wet
.Buffer
= {};
1088 *wetbuffer_iter
= WetBufferPtr
{new(FamCount(count
)) WetBuffer
{count
}};
1094 if(wetbuffer_iter
== context
->mWetBuffers
.end())
1096 /* Otherwise, search for an unused wet buffer. */
1097 wetbuffer_iter
= context
->mWetBuffers
.begin();
1098 for(;wetbuffer_iter
!= context
->mWetBuffers
.end();++wetbuffer_iter
)
1100 if(!(*wetbuffer_iter
)->mInUse
)
1103 if(wetbuffer_iter
== context
->mWetBuffers
.end())
1105 /* Otherwise, allocate a new one to use. */
1106 context
->mWetBuffers
.emplace_back(WetBufferPtr
{new(FamCount(count
)) WetBuffer
{count
}});
1107 wetbuffer_iter
= context
->mWetBuffers
.end()-1;
1110 WetBuffer
*wetbuffer
{slot
->mWetBuffer
= wetbuffer_iter
->get()};
1111 wetbuffer
->mInUse
= true;
1113 auto acnmap_begin
= AmbiIndex::FromACN().begin();
1114 auto iter
= std::transform(acnmap_begin
, acnmap_begin
+ count
, slot
->Wet
.AmbiMap
.begin(),
1115 [](const uint8_t &acn
) noexcept
-> BFChannelConfig
1116 { return BFChannelConfig
{1.0f
, acn
}; });
1117 std::fill(iter
, slot
->Wet
.AmbiMap
.end(), BFChannelConfig
{});
1118 slot
->Wet
.Buffer
= wetbuffer
->mBuffer
;