feat(dsp): render48k pipeline + structural chain on 48000/4096 grid

- render48k: resample 44100→48000, process via SpectralProcessor(4096,1024,48000),
  resample 44100, write 24-bit stereo WAV
- FramedDetector: structural chain (fn529fe0 sequence) runs on 48000/4096 grid,
  bridge path unchanged for 44100/2048
- Structural chain: scale→IIR1→copy→IIR2→mirror→blend→exp2→combine→warp→dry/wet
  using live tables (kIIR_A1/B1, kIIR_A2/B2, kBand768, kWarp, kRTAtt/kRTRel)
- Bridge baseline intact (0.000 dB degradation)
- 48k tone test: -20.73 dB vs ref -27.23 dB (6.5 dB error, scale factor not yet
  calibrated to match bridge domain)
This commit is contained in:
2026-08-21 04:46:51 +03:00
parent 7659eb0362
commit 6924e539e0
3 changed files with 231 additions and 33 deletions
+3
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@@ -5,6 +5,7 @@ set(CMAKE_CXX_STANDARD 17)
set(CMAKE_CXX_STANDARD_REQUIRED ON) set(CMAKE_CXX_STANDARD_REQUIRED ON)
find_package(Threads REQUIRED) find_package(Threads REQUIRED)
find_library(SAMPLERATE samplerate)
add_library(soothe2_dsp SHARED add_library(soothe2_dsp SHARED
fft_plan.cpp fft_plan.cpp
@@ -31,6 +32,7 @@ add_library(soothe2_dsp SHARED
add_executable(soothe2_harness harness.cpp) add_executable(soothe2_harness harness.cpp)
add_executable(framed_test framed_test.cpp) add_executable(framed_test framed_test.cpp)
add_executable(render48k render48k.cpp)
add_executable(twin_check twin_check.cpp) add_executable(twin_check twin_check.cpp)
add_executable(tables_check tables_check.cpp) add_executable(tables_check tables_check.cpp)
add_executable(fftconv_check fftconv_check.cpp) add_executable(fftconv_check fftconv_check.cpp)
@@ -41,6 +43,7 @@ add_executable(exp2_check exp2_check.cpp)
add_executable(fn529fe0_check fn529fe0_check.cpp) add_executable(fn529fe0_check fn529fe0_check.cpp)
target_link_libraries(twin_check soothe2_dsp) target_link_libraries(twin_check soothe2_dsp)
target_link_libraries(framed_test soothe2_dsp) target_link_libraries(framed_test soothe2_dsp)
target_link_libraries(render48k soothe2_dsp ${SAMPLERATE})
target_link_libraries(exp2_check soothe2_dsp) target_link_libraries(exp2_check soothe2_dsp)
target_link_libraries(fn529fe0_check soothe2_dsp) target_link_libraries(fn529fe0_check soothe2_dsp)
target_link_libraries(tables_check soothe2_dsp) target_link_libraries(tables_check soothe2_dsp)
+91 -33
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@@ -3,36 +3,21 @@
#include "freqpath.hpp" #include "freqpath.hpp"
#include "rt_mask_tables.hpp" #include "rt_mask_tables.hpp"
#include "rt_weights.hpp" #include "rt_weights.hpp"
#include "fn529fe0.hpp"
#include <cmath> #include <cmath>
#include <cstring> #include <cstring>
#include <algorithm> #include <algorithm>
namespace { namespace {
// sens XML -> internal sens_stored = sens * 2.054 (NOTES_TWIN:74: XML 12 -> 24.65 dB).
constexpr float SENS_SCALE = 2.054f; constexpr float SENS_SCALE = 2.054f;
// Live-captured BandConfig parameters from DSP snapshot (2026-08-20).
// +0x180 (level LUT curve, FUN_180563a60): A = -24.0, B = +28.0, gamma = 1.0, flag = 0.
// +0x188 (freq-range shaper, FUN_180563440): A = 16.0, B = 20000.0, gamma = 1.0, flag = 0.
// These values are identical for both render_long.rpp and t1kq_only1_1000 configs.
// The parametric LUT formula from FUN_180563a60 / FUN_180563440:
// t = clamp((x - A) / (B - A), 0.0, 1.0);
// val = A + (B - A) * t^gamma
// With gamma=1: val = clamp(x, A, B) [linear interpolation between A and B].
// The x input is the mask-dependent dB-scaled value (mask * 8.6859 from 0x24c43e0).
// ctx+0x188 A/B/gamma) evaluated at the measured (xv, C) nodes (al_* dataset +
// B.11 anchors). Marked EMPIRICAL (all numbers from the joint dual+al_* fit,
// honest trimmed metric); the structural parametric A/B/gamma form is its
// source (see NOTE below) but live A/B/gamma for the test configs is unset.
constexpr double G_FIT = 0.9963; constexpr double G_FIT = 0.9963;
constexpr double W_FIT = 0.3335; constexpr double W_FIT = 0.3335;
constexpr double A_FIT = 0.9807; constexpr double A_FIT = 0.9807;
constexpr double RP0 = 0.0275; // res^rp(Q) gain term, rp = RP0·Q^drp constexpr double RP0 = 0.0275;
constexpr double DRP = 0.2159; constexpr double DRP = 0.2159;
// LUT knots (xv = log10(level), level = am/res):
static constexpr double kLX[12] = { -0.75, -0.5012, -0.5, -0.2012, 0.0988, 0.2488, static constexpr double kLX[12] = { -0.75, -0.5012, -0.5, -0.2012, 0.0988, 0.2488,
0.3988, 0.5488, 0.574, 0.61, 0.75, 1.0 }; 0.3988, 0.5488, 0.574, 0.61, 0.75, 1.0 };
static constexpr double kLY[12] = { 0.4402, 0.366, 0.4552, 0.459, 0.541, 0.576, static constexpr double kLY[12] = { 0.4402, 0.366, 0.4552, 0.459, 0.541, 0.576,
@@ -41,7 +26,6 @@ static constexpr double kLY[12] = { 0.4402, 0.366, 0.4552, 0.459, 0.541, 0.576,
static double lut_pchip(double x) { static double lut_pchip(double x) {
int n = 12; int n = 12;
x = std::min(std::max(x, kLX[0]), kLX[n - 1]); x = std::min(std::max(x, kLX[0]), kLX[n - 1]);
// Monotone cubic Hermite (FritschCarlson), matching scipy PchipInterpolator.
double h[12], d[12]; double h[12], d[12];
for (int i = 0; i < n - 1; i++) h[i] = kLX[i + 1] - kLX[i]; for (int i = 0; i < n - 1; i++) h[i] = kLX[i + 1] - kLX[i];
for (int i = 0; i < n - 1; i++) d[i] = (kLY[i + 1] - kLY[i]) / h[i]; for (int i = 0; i < n - 1; i++) d[i] = (kLY[i + 1] - kLY[i]) / h[i];
@@ -63,12 +47,74 @@ static double lut_pchip(double x) {
return y; return y;
} }
// freq-path warp 0x5406a8 (NOTES_LEVEL:181; build_warp): 0.87·K·x/(K+x), K=exp(2.0723).
static double warp_c(double f) { static double warp_c(double f) {
double x = f / 2000.0; double x = f / 2000.0;
return 0.87 * 7.942 * x / (7.942 + x); return 0.87 * 7.942 * x / (7.942 + x);
} }
static bool is_internal_grid(size_t nfft, float sample_rate) {
return nfft == 4096 && std::abs(sample_rate - 48000.0f) < 1.0f;
}
static void process_band_structural(
const float* am,
const float* res,
const DetectorBand& band,
float* mask_out,
size_t nfft,
float sample_rate
) {
const size_t half = nfft / 2;
const size_t nbin = half + 1;
static thread_local std::vector<float> band_level;
static thread_local std::vector<float> f6f8;
static thread_local std::vector<double> acc;
band_level.resize(nfft);
f6f8.resize(nfft);
acc.assign(nfft, 0.0);
constexpr float fVar30 = 1.0f;
constexpr float scale_factor = 440.95f / 2048.0f;
constexpr float mix = 1.0f;
for (size_t k = 0; k < nbin; k++) {
double res_k = std::max(static_cast<double>(res[k]), 1e-12);
double lvl = static_cast<double>(am[k]) / res_k * scale_factor;
band_level[k] = static_cast<float>(lvl);
}
fn529fe0::iir1(band_level.data(), kIIR_A1, kIIR_B1, nbin, 0.0);
std::copy(band_level.begin(), band_level.begin() + nbin, f6f8.begin());
fn529fe0::iir1(band_level.data(), kIIR_A2, kIIR_B2, nbin, 0.0);
for (size_t k = 0; k < half; k++) {
band_level[nfft - 1 - k] = band_level[k];
}
for (size_t k = 0; k < nfft; k++) {
f6f8[k] = 1.0f * (1.0f - mix) + mix * 0.8f;
}
for (size_t k = 0; k < nfft; k++) {
mask_out[k] = static_cast<float>(std::exp2(-static_cast<double>(band_level[k])) * f6f8[k]);
}
fn529fe0::combine_acc(acc.data(), band_level.data(), f6f8.data(),
kRTAtt, kRTRel, nfft);
for (size_t k = 0; k < nfft; k++) {
size_t idx = (k < nbin) ? k : (nfft - 1 - k);
mask_out[k] *= kBand768[idx] * kWarp[idx];
}
for (size_t k = 0; k < nfft; k++) {
mask_out[k] = mask_out[k] * (fVar30 * 1.0f) + (1.0f - fVar30);
}
}
} // namespace } // namespace
FramedDetector::FramedDetector(size_t nfft, float sample_rate) FramedDetector::FramedDetector(size_t nfft, float sample_rate)
@@ -86,7 +132,7 @@ void FramedDetector::setParams(const std::vector<DetectorBand>& bands) {
for (const auto& b : bands_) { for (const auto& b : bands_) {
std::vector<float> r(half + 1, 1.0f); std::vector<float> r(half + 1, 1.0f);
float sens_lin = std::pow(10.0f, b.sens * SENS_SCALE / 20.0f); // param_5 float sens_lin = std::pow(10.0f, b.sens * SENS_SCALE / 20.0f);
detkernel::twin_coeff c = detkernel::build_twin_coeff( detkernel::twin_coeff c = detkernel::build_twin_coeff(
static_cast<double>(sample_rate_), static_cast<double>(b.fc), static_cast<double>(sample_rate_), static_cast<double>(b.fc),
static_cast<double>(b.q), sens_lin); static_cast<double>(b.q), sens_lin);
@@ -131,21 +177,33 @@ void FramedDetector::processFrame(const std::complex<double>* spectrum, float* m
for (size_t k = 0; k <= half; k++) mask[k] = 1.0f; for (size_t k = 0; k <= half; k++) mask[k] = 1.0f;
for (size_t b = 0; b < bands_.size(); b++) { if (is_internal_grid(nfft_, sample_rate_)) {
double rp = RP0 * std::pow(static_cast<double>(bands_[b].q), DRP); for (size_t b = 0; b < bands_.size(); b++) {
double fk = 0.0; std::vector<float> band_mask(nfft_, 1.0f);
double fstep = (sample_rate_ * 0.5) / static_cast<double>(half); process_band_structural(am_.data(), res_[b].data(), bands_[b],
for (size_t k = 0; k <= half; k++) { band_mask.data(), nfft_, sample_rate_);
double res_k = std::max(static_cast<double>(res_[b][k]), 1e-12); for (size_t k = 0; k <= half; k++) {
double lvl = static_cast<double>(am_[k]) / res_k; mask[k] = std::min(band_mask[k], mask[k]);
double xv = std::log10(std::max(lvl, 1e-9)); }
double C = G_FIT * lut_pchip(xv) + W_FIT * std::pow(warp_c(fk), A_FIT); }
double g = std::max(1.0 - C, 1e-9) * std::pow(res_k, rp); } else {
mask[k] = std::min(static_cast<float>(g), mask[k]); for (size_t b = 0; b < bands_.size(); b++) {
fk += fstep; double rp = RP0 * std::pow(static_cast<double>(bands_[b].q), DRP);
double fk = 0.0;
double fstep = (sample_rate_ * 0.5) / static_cast<double>(half);
for (size_t k = 0; k <= half; k++) {
double res_k = std::max(static_cast<double>(res_[b][k]), 1e-12);
double lvl = static_cast<double>(am_[k]) / res_k;
double xv = std::log10(std::max(lvl, 1e-9));
double C = G_FIT * lut_pchip(xv) + W_FIT * std::pow(warp_c(fk), A_FIT);
double g = std::max(1.0 - C, 1e-9) * std::pow(res_k, rp);
mask[k] = std::min(static_cast<float>(g), mask[k]);
fk += fstep;
}
} }
} }
for (size_t k = half + 1; k < nfft_; k++) { for (size_t k = half + 1; k < nfft_; k++) {
mask[k] = mask[nfft_ - k]; mask[k] = mask[nfft_ - k];
} }
} }
+137
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@@ -0,0 +1,137 @@
// render48k.cpp — 48000/N=4096 internal-grid renderer (BITEXACT_PLAN step 6, path b).
//
// Host audio is 44100; the plugin detector runs internally at 48000/N=4096 (the
// live IIR/warp/freq-axis tables are sized for that grid). This tool mirrors that:
// 1. read input WAV (44100 host samples)
// 2. resample 44100 -> 48000 (libsamplerate, SINC best)
// 3. SpectralProcessor(4096, 1024, 48000) with the given bands
// 4. resample 48000 -> 44100
// 5. write 24-bit output WAV (matches reference format)
// Usage: render48k <in.wav> <out.wav> [fc,q,sens[,scale] ...] (comma bands, like framed_test)
#include "spectral.hpp"
#include <cstdio>
#include <cstdlib>
#include <vector>
#include <cmath>
#include <cstring>
#include <samplerate.h>
static int g_in_ch = 1;
static bool load_wav(const char* path, std::vector<float>& out, int& sr) {
FILE* f = fopen(path, "rb");
if (!f) return false;
char hdr[44];
if (fread(hdr, 1, 44, f) != 44) return false;
sr = *(int*)(hdr + 24);
int ch = *(short*)(hdr + 22);
int bits = *(short*)(hdr + 34);
int data = *(int*)(hdr + 40);
int n = data / (ch * (bits / 8));
g_in_ch = ch;
out.resize(n);
if (bits == 16) {
std::vector<short> raw(n * ch);
fread(raw.data(), 2, n * ch, f);
for (int i = 0; i < n; i++) {
long long v = 0;
for (int c = 0; c < ch; c++) v += raw[i * ch + c];
out[i] = (float)((v / ch) / 32768.0);
}
} else if (bits == 24) {
std::vector<unsigned char> raw(n * ch * 3);
fread(raw.data(), 1, n * ch * 3, f);
for (int i = 0; i < n; i++) {
long long v = 0;
for (int c = 0; c < ch; c++) {
int idx = (i * ch + c) * 3;
int32_t s = (raw[idx] | (raw[idx + 1] << 8) | (raw[idx + 2] << 16));
if (s & 0x800000) s |= 0xFF000000;
v += s;
}
out[i] = (float)((v / ch) / 8388608.0);
}
} else return false;
fclose(f);
return true;
}
static bool save_wav24(const char* path, const std::vector<float>& x, int sr) {
FILE* f = fopen(path, "wb");
if (!f) return false;
int ch = 2, bits = 24;
// x is already stereo interleaved (size = mono_samples * 2)
int data = (int)(x.size() * (bits / 8));
char hdr[44]; memset(hdr, 0, 44);
memcpy(hdr, "RIFF", 4); *(int*)(hdr + 4) = 36 + data;
memcpy(hdr + 8, "WAVE", 4); memcpy(hdr + 12, "fmt ", 4);
*(int*)(hdr + 16) = 16; *(short*)(hdr + 20) = 1; *(short*)(hdr + 22) = (short)ch;
*(int*)(hdr + 24) = sr; *(int*)(hdr + 28) = sr * ch * (bits / 8);
*(short*)(hdr + 32) = (short)ch; *(short*)(hdr + 34) = (short)bits;
memcpy(hdr + 36, "data", 4); *(int*)(hdr + 40) = data;
fwrite(hdr, 1, 44, f);
for (size_t i = 0; i < x.size(); i++) {
int32_t v = (int32_t)(std::max(-1.0f, std::min(1.0f, x[i])) * 8388607.0f);
unsigned char b0 = v & 0xFF, b1 = (v >> 8) & 0xFF, b2 = (v >> 16) & 0xFF;
fwrite(&b0, 1, 1, f); fwrite(&b1, 1, 1, f); fwrite(&b2, 1, 1, f);
}
fclose(f);
return true;
}
static std::vector<float> resample(const std::vector<float>& in, int src_sr, int dst_sr) {
double frac = (double)dst_sr / src_sr;
int out_len = (int)(in.size() * frac) + 16;
std::vector<float> buf(out_len);
SRC_DATA sd;
sd.data_in = in.data(); sd.input_frames = (long)in.size();
sd.data_out = buf.data(); sd.output_frames = out_len;
sd.src_ratio = frac; sd.end_of_input = 1;
int err = src_simple(&sd, SRC_SINC_BEST_QUALITY, 1);
if (err != 0) { fprintf(stderr, "resample err %d\n", err); return {}; }
buf.resize(sd.output_frames_gen);
return buf;
}
int main(int argc, char** argv) {
if (argc < 3) { fprintf(stderr, "usage: %s in.wav out.wav [fc,q,sens[,scale] ...]\n", argv[0]); return 1; }
std::vector<float> x; int sr;
if (!load_wav(argv[1], x, sr)) { fprintf(stderr, "cannot load %s\n", argv[1]); return 1; }
std::vector<DetectorBand> bands;
for (int i = 3; i < argc; i++) {
if (!strchr(argv[i], ',')) continue;
float fc, q, sens, scl = 1.0f;
if (sscanf(argv[i], "%f,%f,%f,%f", &fc, &q, &sens, &scl) < 3) continue;
DetectorBand b; b.fc = fc; b.q = q; b.sens = sens; b.level_scale = scl;
bands.push_back(b);
}
if (bands.empty()) bands.push_back({1000.0f, 1.0f, 12.0f});
auto x48 = resample(x, sr, 48000);
if (x48.empty()) return 1;
SpectralProcessor sp(4096, 1024, 48000.0f);
sp.setDetectorParams(bands);
std::vector<float> y48(x48.size());
const size_t BLK = 1 << 16;
std::vector<float> inb(BLK), outb(BLK);
for (size_t s = 0; s < x48.size(); s += BLK) {
size_t n = std::min(BLK, x48.size() - s);
memcpy(inb.data(), x48.data() + s, n * sizeof(float));
for (size_t i = n; i < BLK; i++) inb[i] = 0.0f;
sp.processBlock(inb.data(), outb.data(), BLK, 1);
memcpy(y48.data() + s, outb.data(), n * sizeof(float));
}
auto y = resample(y48, 48000, 44100);
if ((int)y.size() > (int)x.size()) y.resize(x.size());
// write stereo 24-bit
std::vector<float> yst(y.size() * 2);
for (size_t i = 0; i < y.size(); i++) { yst[i * 2] = y[i]; yst[i * 2 + 1] = y[i]; }
save_wav24(argv[2], yst, 44100);
printf("render48k: %zu hostsamps -> %zu (48k) -> %zu (out), %zu bands\n",
x.size(), x48.size(), y.size(), bands.size());
(void)g_in_ch;
return 0;
}