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https://github.com/FunAudioLLM/CosyVoice.git
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remove flow_cache
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@@ -223,6 +223,172 @@ class SourceModuleHnNSF(torch.nn.Module):
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return sine_merge, noise, uv
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class SineGen2(torch.nn.Module):
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""" Definition of sine generator
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SineGen(samp_rate, harmonic_num = 0,
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sine_amp = 0.1, noise_std = 0.003,
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voiced_threshold = 0,
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flag_for_pulse=False)
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samp_rate: sampling rate in Hz
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harmonic_num: number of harmonic overtones (default 0)
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sine_amp: amplitude of sine-wavefrom (default 0.1)
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noise_std: std of Gaussian noise (default 0.003)
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voiced_thoreshold: F0 threshold for U/V classification (default 0)
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flag_for_pulse: this SinGen is used inside PulseGen (default False)
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Note: when flag_for_pulse is True, the first time step of a voiced
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segment is always sin(np.pi) or cos(0)
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"""
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def __init__(self, samp_rate, upsample_scale, harmonic_num=0,
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sine_amp=0.1, noise_std=0.003,
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voiced_threshold=0,
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flag_for_pulse=False):
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super(SineGen2, self).__init__()
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self.sine_amp = sine_amp
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self.noise_std = noise_std
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self.harmonic_num = harmonic_num
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self.dim = self.harmonic_num + 1
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self.sampling_rate = samp_rate
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self.voiced_threshold = voiced_threshold
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self.flag_for_pulse = flag_for_pulse
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self.upsample_scale = upsample_scale
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def _f02uv(self, f0):
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# generate uv signal
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uv = (f0 > self.voiced_threshold).type(torch.float32)
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return uv
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def _f02sine(self, f0_values):
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""" f0_values: (batchsize, length, dim)
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where dim indicates fundamental tone and overtones
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"""
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# convert to F0 in rad. The interger part n can be ignored
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# because 2 * np.pi * n doesn't affect phase
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rad_values = (f0_values / self.sampling_rate) % 1
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# initial phase noise (no noise for fundamental component)
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rand_ini = torch.rand(f0_values.shape[0], f0_values.shape[2], device=f0_values.device)
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rand_ini[:, 0] = 0
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rad_values[:, 0, :] = rad_values[:, 0, :] + rand_ini
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# instantanouse phase sine[t] = sin(2*pi \sum_i=1 ^{t} rad)
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if not self.flag_for_pulse:
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rad_values = torch.nn.functional.interpolate(rad_values.transpose(1, 2),
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scale_factor=1 / self.upsample_scale,
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mode="linear").transpose(1, 2)
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phase = torch.cumsum(rad_values, dim=1) * 2 * np.pi
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phase = torch.nn.functional.interpolate(phase.transpose(1, 2) * self.upsample_scale,
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scale_factor=self.upsample_scale, mode="linear").transpose(1, 2)
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sines = torch.sin(phase)
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else:
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# If necessary, make sure that the first time step of every
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# voiced segments is sin(pi) or cos(0)
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# This is used for pulse-train generation
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# identify the last time step in unvoiced segments
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uv = self._f02uv(f0_values)
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uv_1 = torch.roll(uv, shifts=-1, dims=1)
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uv_1[:, -1, :] = 1
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u_loc = (uv < 1) * (uv_1 > 0)
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# get the instantanouse phase
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tmp_cumsum = torch.cumsum(rad_values, dim=1)
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# different batch needs to be processed differently
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for idx in range(f0_values.shape[0]):
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temp_sum = tmp_cumsum[idx, u_loc[idx, :, 0], :]
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temp_sum[1:, :] = temp_sum[1:, :] - temp_sum[0:-1, :]
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# stores the accumulation of i.phase within
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# each voiced segments
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tmp_cumsum[idx, :, :] = 0
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tmp_cumsum[idx, u_loc[idx, :, 0], :] = temp_sum
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# rad_values - tmp_cumsum: remove the accumulation of i.phase
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# within the previous voiced segment.
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i_phase = torch.cumsum(rad_values - tmp_cumsum, dim=1)
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# get the sines
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sines = torch.cos(i_phase * 2 * np.pi)
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return sines
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def forward(self, f0):
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""" sine_tensor, uv = forward(f0)
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input F0: tensor(batchsize=1, length, dim=1)
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f0 for unvoiced steps should be 0
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output sine_tensor: tensor(batchsize=1, length, dim)
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output uv: tensor(batchsize=1, length, 1)
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"""
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# fundamental component
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fn = torch.multiply(f0, torch.FloatTensor([[range(1, self.harmonic_num + 2)]]).to(f0.device))
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# generate sine waveforms
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sine_waves = self._f02sine(fn) * self.sine_amp
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# generate uv signal
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uv = self._f02uv(f0)
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# noise: for unvoiced should be similar to sine_amp
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# std = self.sine_amp/3 -> max value ~ self.sine_amp
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# . for voiced regions is self.noise_std
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noise_amp = uv * self.noise_std + (1 - uv) * self.sine_amp / 3
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noise = noise_amp * torch.randn_like(sine_waves)
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# first: set the unvoiced part to 0 by uv
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# then: additive noise
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sine_waves = sine_waves * uv + noise
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return sine_waves, uv, noise
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class SourceModuleHnNSF2(torch.nn.Module):
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""" SourceModule for hn-nsf
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SourceModule(sampling_rate, harmonic_num=0, sine_amp=0.1,
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add_noise_std=0.003, voiced_threshod=0)
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sampling_rate: sampling_rate in Hz
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harmonic_num: number of harmonic above F0 (default: 0)
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sine_amp: amplitude of sine source signal (default: 0.1)
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add_noise_std: std of additive Gaussian noise (default: 0.003)
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note that amplitude of noise in unvoiced is decided
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by sine_amp
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voiced_threshold: threhold to set U/V given F0 (default: 0)
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Sine_source, noise_source = SourceModuleHnNSF(F0_sampled)
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F0_sampled (batchsize, length, 1)
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Sine_source (batchsize, length, 1)
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noise_source (batchsize, length 1)
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uv (batchsize, length, 1)
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"""
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def __init__(self, sampling_rate, upsample_scale, harmonic_num=0, sine_amp=0.1,
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add_noise_std=0.003, voiced_threshod=0):
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super(SourceModuleHnNSF2, self).__init__()
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self.sine_amp = sine_amp
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self.noise_std = add_noise_std
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# to produce sine waveforms
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self.l_sin_gen = SineGen2(sampling_rate, upsample_scale, harmonic_num,
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sine_amp, add_noise_std, voiced_threshod)
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# to merge source harmonics into a single excitation
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self.l_linear = torch.nn.Linear(harmonic_num + 1, 1)
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self.l_tanh = torch.nn.Tanh()
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def forward(self, x):
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"""
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Sine_source, noise_source = SourceModuleHnNSF(F0_sampled)
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F0_sampled (batchsize, length, 1)
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Sine_source (batchsize, length, 1)
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noise_source (batchsize, length 1)
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"""
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# source for harmonic branch
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with torch.no_grad():
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sine_wavs, uv, _ = self.l_sin_gen(x)
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sine_merge = self.l_tanh(self.l_linear(sine_wavs))
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# source for noise branch, in the same shape as uv
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noise = torch.randn_like(uv) * self.sine_amp / 3
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return sine_merge, noise, uv
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class HiFTGenerator(nn.Module):
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"""
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HiFTNet Generator: Neural Source Filter + ISTFTNet
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@@ -259,7 +425,9 @@ class HiFTGenerator(nn.Module):
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self.num_kernels = len(resblock_kernel_sizes)
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self.num_upsamples = len(upsample_rates)
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self.m_source = SourceModuleHnNSF(
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# NOTE in CosyVoice2, we use the original SourceModuleHnNSF implementation
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this_SourceModuleHnNSF = SourceModuleHnNSF if self.sampling_rate == 22050 else SourceModuleHnNSF2
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self.m_source = this_SourceModuleHnNSF(
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sampling_rate=sampling_rate,
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upsample_scale=np.prod(upsample_rates) * istft_params["hop_len"],
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harmonic_num=nb_harmonics,
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