mirror of
https://github.com/fumiama/Retrieval-based-Voice-Conversion-WebUI.git
synced 2026-06-05 09:10:25 +08:00
195 lines
7.3 KiB
Python
195 lines
7.3 KiB
Python
from typing import Optional, Tuple, Union
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import numpy as np
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import torch
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import torch.nn.functional as F
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from librosa.util import pad_center
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from scipy.signal import get_window
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class STFT(torch.nn.Module):
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def __init__(
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self,
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filter_length=1024,
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hop_length=512,
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win_length: Optional[int] = None,
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window="hann",
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use_torch_stft=True,
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):
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"""
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This module implements an STFT using 1D convolution and 1D transpose convolutions.
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This is a bit tricky so there are some cases that probably won't work as working
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out the same sizes before and after in all overlap add setups is tough. Right now,
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this code should work with hop lengths that are half the filter length (50% overlap
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between frames).
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Keyword Arguments:
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filter_length {int} -- Length of filters used (default: {1024})
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hop_length {int} -- Hop length of STFT (restrict to 50% overlap between frames) (default: {512})
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win_length {[type]} -- Length of the window function applied to each frame (if not specified, it
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equals the filter length). (default: {None})
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window {str} -- Type of window to use (options are bartlett, hann, hamming, blackman, blackmanharris)
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(default: {'hann'})
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"""
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super(STFT, self).__init__()
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self.filter_length = filter_length
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self.hop_length = hop_length
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self.pad_amount = int(self.filter_length / 2)
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self.win_length = win_length
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self.hann_window = {}
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self.use_torch_stft = use_torch_stft
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if use_torch_stft:
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return
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fourier_basis = np.fft.fft(np.eye(self.filter_length))
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cutoff = int((self.filter_length / 2 + 1))
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fourier_basis = np.vstack(
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[np.real(fourier_basis[:cutoff, :]), np.imag(fourier_basis[:cutoff, :])]
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)
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forward_basis = torch.FloatTensor(fourier_basis)
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inverse_basis = torch.FloatTensor(np.linalg.pinv(fourier_basis))
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if win_length is None or not win_length:
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win_length = filter_length
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assert filter_length >= win_length
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# get window and zero center pad it to filter_length
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fft_window = get_window(window, win_length, fftbins=True)
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fft_window = pad_center(fft_window, size=filter_length)
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fft_window = torch.from_numpy(fft_window).float()
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# window the bases
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forward_basis *= fft_window
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inverse_basis = (inverse_basis.T * fft_window).T
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self.register_buffer("forward_basis", forward_basis.float())
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self.register_buffer("inverse_basis", inverse_basis.float())
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self.register_buffer("fft_window", fft_window.float())
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def __call__(
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self,
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input_data: torch.Tensor,
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keyshift: int = 0,
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speed: int = 1,
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center: bool = True,
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) -> torch.Tensor:
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return super().__call__(input_data, keyshift, speed, center)
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def transform(
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self,
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input_data: torch.Tensor,
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return_phase=False,
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) -> Tuple[Union[Tuple[torch.Tensor, torch.Tensor], torch.Tensor]]:
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"""Take input data (audio) to STFT domain.
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Arguments:
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input_data {tensor} -- Tensor of floats, with shape (num_batch, num_samples)
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Returns:
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magnitude {tensor} -- Magnitude of STFT with shape (num_batch,
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num_frequencies, num_frames)
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phase {tensor} -- Phase of STFT with shape (num_batch,
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num_frequencies, num_frames)
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"""
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input_data = F.pad(
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input_data,
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(self.pad_amount, self.pad_amount),
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mode="reflect",
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)
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forward_transform = input_data.unfold(
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1, self.filter_length, self.hop_length
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).permute(0, 2, 1)
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forward_transform = torch.matmul(self.forward_basis, forward_transform)
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cutoff = int((self.filter_length / 2) + 1)
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real_part = forward_transform[:, :cutoff, :]
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imag_part = forward_transform[:, cutoff:, :]
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magnitude = torch.sqrt(real_part**2 + imag_part**2)
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if return_phase:
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phase = torch.atan2(imag_part.data, real_part.data)
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return magnitude, phase
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else:
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return magnitude
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def inverse(
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self,
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magnitude: torch.Tensor,
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phase: torch.Tensor,
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) -> torch.Tensor:
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"""Call the inverse STFT (iSTFT), given magnitude and phase tensors produced
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by the ```transform``` function.
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Arguments:
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magnitude {tensor} -- Magnitude of STFT with shape (num_batch,
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num_frequencies, num_frames)
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phase {tensor} -- Phase of STFT with shape (num_batch,
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num_frequencies, num_frames)
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Returns:
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inverse_transform {tensor} -- Reconstructed audio given magnitude and phase. Of
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shape (num_batch, num_samples)
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"""
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cat = torch.cat(
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[magnitude * torch.cos(phase), magnitude * torch.sin(phase)], dim=1
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)
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fold = torch.nn.Fold(
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output_size=(1, (cat.size(-1) - 1) * self.hop_length + self.filter_length),
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kernel_size=(1, self.filter_length),
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stride=(1, self.hop_length),
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)
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inverse_transform = torch.matmul(self.inverse_basis, cat)
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inverse_transform: torch.Tensor = fold(inverse_transform)[
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:, 0, 0, self.pad_amount : -self.pad_amount
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]
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window_square_sum = (
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self.fft_window.pow(2).repeat(cat.size(-1), 1).T.unsqueeze(0)
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)
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window_square_sum = fold(window_square_sum)[
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:, 0, 0, self.pad_amount : -self.pad_amount
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]
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inverse_transform /= window_square_sum
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return inverse_transform
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def forward(
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self,
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input_data: torch.Tensor,
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keyshift: int = 0,
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speed: int = 1,
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center: bool = True,
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) -> torch.Tensor:
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factor = 2 ** (keyshift / 12)
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n_fft_new = int(np.round(self.filter_length * factor))
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win_length_new = int(np.round(self.win_length * factor))
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hop_length_new = int(np.round(self.hop_length * speed))
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if self.use_torch_stft:
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keyshift_key = str(keyshift) + "_" + str(input_data.device)
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if keyshift_key not in self.hann_window:
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self.hann_window[keyshift_key] = torch.hann_window(
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self.win_length,
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).to(input_data.device)
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fft = torch.stft(
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input_data,
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n_fft=n_fft_new,
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hop_length=hop_length_new,
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win_length=win_length_new,
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window=self.hann_window[keyshift_key],
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center=center,
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return_complex=True,
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)
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return torch.sqrt(fft.real.pow(2) + fft.imag.pow(2))
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return self.transform(input_data)
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"""Take input data (audio) to STFT domain and then back to audio.
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Arguments:
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input_data {tensor} -- Tensor of floats, with shape (num_batch, num_samples)
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Returns:
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reconstruction {tensor} -- Reconstructed audio given magnitude and phase. Of
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shape (num_batch, num_samples)
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reconstruction = self.inverse(
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self.transform(input_data, return_phase=True),
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)
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return reconstruction
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"""
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