mirror of
https://github.com/comfyanonymous/ComfyUI.git
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Initial ACE-Step model implementation. (#7972)
This commit is contained in:
542
comfy/ldm/ace/vae/music_vocoder.py
Executable file
542
comfy/ldm/ace/vae/music_vocoder.py
Executable file
@@ -0,0 +1,542 @@
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# Original from: https://github.com/ace-step/ACE-Step/blob/main/music_dcae/music_vocoder.py
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import torch
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from torch import nn
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from functools import partial
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from math import prod
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from typing import Callable, Tuple, List
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import numpy as np
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import torch.nn.functional as F
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from torch.nn.utils import weight_norm
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from torch.nn.utils.parametrize import remove_parametrizations as remove_weight_norm
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# from diffusers.models.modeling_utils import ModelMixin
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# from diffusers.loaders import FromOriginalModelMixin
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# from diffusers.configuration_utils import ConfigMixin, register_to_config
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from .music_log_mel import LogMelSpectrogram
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import comfy.model_management
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import comfy.ops
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ops = comfy.ops.disable_weight_init
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def drop_path(
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x, drop_prob: float = 0.0, training: bool = False, scale_by_keep: bool = True
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):
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"""Drop paths (Stochastic Depth) per sample (when applied in main path of residual blocks).
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This is the same as the DropConnect impl I created for EfficientNet, etc networks, however,
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the original name is misleading as 'Drop Connect' is a different form of dropout in a separate paper...
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See discussion: https://github.com/tensorflow/tpu/issues/494#issuecomment-532968956 ... I've opted for
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changing the layer and argument names to 'drop path' rather than mix DropConnect as a layer name and use
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'survival rate' as the argument.
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""" # noqa: E501
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if drop_prob == 0.0 or not training:
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return x
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keep_prob = 1 - drop_prob
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shape = (x.shape[0],) + (1,) * (
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x.ndim - 1
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) # work with diff dim tensors, not just 2D ConvNets
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random_tensor = x.new_empty(shape).bernoulli_(keep_prob)
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if keep_prob > 0.0 and scale_by_keep:
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random_tensor.div_(keep_prob)
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return x * random_tensor
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class DropPath(nn.Module):
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"""Drop paths (Stochastic Depth) per sample (when applied in main path of residual blocks).""" # noqa: E501
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def __init__(self, drop_prob: float = 0.0, scale_by_keep: bool = True):
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super(DropPath, self).__init__()
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self.drop_prob = drop_prob
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self.scale_by_keep = scale_by_keep
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def forward(self, x):
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return drop_path(x, self.drop_prob, self.training, self.scale_by_keep)
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def extra_repr(self):
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return f"drop_prob={round(self.drop_prob,3):0.3f}"
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class LayerNorm(nn.Module):
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r"""LayerNorm that supports two data formats: channels_last (default) or channels_first.
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The ordering of the dimensions in the inputs. channels_last corresponds to inputs with
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shape (batch_size, height, width, channels) while channels_first corresponds to inputs
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with shape (batch_size, channels, height, width).
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""" # noqa: E501
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def __init__(self, normalized_shape, eps=1e-6, data_format="channels_last"):
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super().__init__()
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self.weight = nn.Parameter(torch.ones(normalized_shape))
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self.bias = nn.Parameter(torch.zeros(normalized_shape))
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self.eps = eps
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self.data_format = data_format
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if self.data_format not in ["channels_last", "channels_first"]:
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raise NotImplementedError
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self.normalized_shape = (normalized_shape,)
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def forward(self, x):
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if self.data_format == "channels_last":
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return F.layer_norm(
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x, self.normalized_shape, comfy.model_management.cast_to(self.weight, dtype=x.dtype, device=x.device), comfy.model_management.cast_to(self.bias, dtype=x.dtype, device=x.device), self.eps
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)
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elif self.data_format == "channels_first":
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u = x.mean(1, keepdim=True)
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s = (x - u).pow(2).mean(1, keepdim=True)
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x = (x - u) / torch.sqrt(s + self.eps)
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x = comfy.model_management.cast_to(self.weight[:, None], dtype=x.dtype, device=x.device) * x + comfy.model_management.cast_to(self.bias[:, None], dtype=x.dtype, device=x.device)
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return x
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class ConvNeXtBlock(nn.Module):
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r"""ConvNeXt Block. There are two equivalent implementations:
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(1) DwConv -> LayerNorm (channels_first) -> 1x1 Conv -> GELU -> 1x1 Conv; all in (N, C, H, W)
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(2) DwConv -> Permute to (N, H, W, C); LayerNorm (channels_last) -> Linear -> GELU -> Linear; Permute back
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We use (2) as we find it slightly faster in PyTorch
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Args:
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dim (int): Number of input channels.
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drop_path (float): Stochastic depth rate. Default: 0.0
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layer_scale_init_value (float): Init value for Layer Scale. Default: 1e-6.
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mlp_ratio (float): Ratio of mlp hidden dim to embedding dim. Default: 4.0.
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kernel_size (int): Kernel size for depthwise conv. Default: 7.
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dilation (int): Dilation for depthwise conv. Default: 1.
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""" # noqa: E501
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def __init__(
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self,
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dim: int,
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drop_path: float = 0.0,
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layer_scale_init_value: float = 1e-6,
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mlp_ratio: float = 4.0,
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kernel_size: int = 7,
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dilation: int = 1,
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):
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super().__init__()
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self.dwconv = ops.Conv1d(
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dim,
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dim,
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kernel_size=kernel_size,
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padding=int(dilation * (kernel_size - 1) / 2),
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groups=dim,
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) # depthwise conv
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self.norm = LayerNorm(dim, eps=1e-6)
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self.pwconv1 = ops.Linear(
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dim, int(mlp_ratio * dim)
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) # pointwise/1x1 convs, implemented with linear layers
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self.act = nn.GELU()
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self.pwconv2 = ops.Linear(int(mlp_ratio * dim), dim)
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self.gamma = (
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nn.Parameter(torch.empty((dim)), requires_grad=False)
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if layer_scale_init_value > 0
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else None
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)
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self.drop_path = DropPath(
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drop_path) if drop_path > 0.0 else nn.Identity()
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def forward(self, x, apply_residual: bool = True):
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input = x
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x = self.dwconv(x)
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x = x.permute(0, 2, 1) # (N, C, L) -> (N, L, C)
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x = self.norm(x)
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x = self.pwconv1(x)
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x = self.act(x)
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x = self.pwconv2(x)
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if self.gamma is not None:
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x = comfy.model_management.cast_to(self.gamma, dtype=x.dtype, device=x.device) * x
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x = x.permute(0, 2, 1) # (N, L, C) -> (N, C, L)
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x = self.drop_path(x)
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if apply_residual:
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x = input + x
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return x
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class ParallelConvNeXtBlock(nn.Module):
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def __init__(self, kernel_sizes: List[int], *args, **kwargs):
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super().__init__()
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self.blocks = nn.ModuleList(
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[
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ConvNeXtBlock(kernel_size=kernel_size, *args, **kwargs)
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for kernel_size in kernel_sizes
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]
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)
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def forward(self, x: torch.Tensor) -> torch.Tensor:
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return torch.stack(
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[block(x, apply_residual=False) for block in self.blocks] + [x],
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dim=1,
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).sum(dim=1)
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class ConvNeXtEncoder(nn.Module):
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def __init__(
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self,
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input_channels=3,
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depths=[3, 3, 9, 3],
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dims=[96, 192, 384, 768],
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drop_path_rate=0.0,
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layer_scale_init_value=1e-6,
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kernel_sizes: Tuple[int] = (7,),
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):
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super().__init__()
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assert len(depths) == len(dims)
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self.channel_layers = nn.ModuleList()
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stem = nn.Sequential(
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ops.Conv1d(
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input_channels,
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dims[0],
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kernel_size=7,
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padding=3,
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padding_mode="replicate",
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),
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LayerNorm(dims[0], eps=1e-6, data_format="channels_first"),
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)
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self.channel_layers.append(stem)
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for i in range(len(depths) - 1):
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mid_layer = nn.Sequential(
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LayerNorm(dims[i], eps=1e-6, data_format="channels_first"),
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ops.Conv1d(dims[i], dims[i + 1], kernel_size=1),
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)
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self.channel_layers.append(mid_layer)
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block_fn = (
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partial(ConvNeXtBlock, kernel_size=kernel_sizes[0])
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if len(kernel_sizes) == 1
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else partial(ParallelConvNeXtBlock, kernel_sizes=kernel_sizes)
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)
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self.stages = nn.ModuleList()
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drop_path_rates = [
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x.item() for x in torch.linspace(0, drop_path_rate, sum(depths))
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]
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cur = 0
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for i in range(len(depths)):
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stage = nn.Sequential(
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*[
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block_fn(
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dim=dims[i],
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drop_path=drop_path_rates[cur + j],
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layer_scale_init_value=layer_scale_init_value,
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)
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for j in range(depths[i])
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]
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)
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self.stages.append(stage)
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cur += depths[i]
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self.norm = LayerNorm(dims[-1], eps=1e-6, data_format="channels_first")
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def forward(
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self,
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x: torch.Tensor,
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) -> torch.Tensor:
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for channel_layer, stage in zip(self.channel_layers, self.stages):
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x = channel_layer(x)
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x = stage(x)
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return self.norm(x)
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def get_padding(kernel_size, dilation=1):
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return (kernel_size * dilation - dilation) // 2
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class ResBlock1(torch.nn.Module):
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def __init__(self, channels, kernel_size=3, dilation=(1, 3, 5)):
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super().__init__()
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self.convs1 = nn.ModuleList(
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[
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weight_norm(
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ops.Conv1d(
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channels,
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channels,
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kernel_size,
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1,
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dilation=dilation[0],
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padding=get_padding(kernel_size, dilation[0]),
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)
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),
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weight_norm(
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ops.Conv1d(
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channels,
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channels,
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kernel_size,
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1,
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dilation=dilation[1],
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padding=get_padding(kernel_size, dilation[1]),
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)
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),
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weight_norm(
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ops.Conv1d(
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channels,
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channels,
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kernel_size,
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1,
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dilation=dilation[2],
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padding=get_padding(kernel_size, dilation[2]),
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)
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),
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]
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)
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self.convs2 = nn.ModuleList(
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[
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weight_norm(
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ops.Conv1d(
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channels,
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channels,
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kernel_size,
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1,
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dilation=1,
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padding=get_padding(kernel_size, 1),
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)
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),
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weight_norm(
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ops.Conv1d(
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channels,
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channels,
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kernel_size,
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1,
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dilation=1,
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padding=get_padding(kernel_size, 1),
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)
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),
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weight_norm(
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ops.Conv1d(
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channels,
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channels,
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kernel_size,
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1,
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dilation=1,
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padding=get_padding(kernel_size, 1),
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)
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),
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]
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)
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def forward(self, x):
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for c1, c2 in zip(self.convs1, self.convs2):
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xt = F.silu(x)
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xt = c1(xt)
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xt = F.silu(xt)
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xt = c2(xt)
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x = xt + x
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return x
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def remove_weight_norm(self):
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for conv in self.convs1:
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remove_weight_norm(conv)
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for conv in self.convs2:
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remove_weight_norm(conv)
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class HiFiGANGenerator(nn.Module):
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def __init__(
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self,
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*,
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hop_length: int = 512,
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upsample_rates: Tuple[int] = (8, 8, 2, 2, 2),
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upsample_kernel_sizes: Tuple[int] = (16, 16, 8, 2, 2),
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resblock_kernel_sizes: Tuple[int] = (3, 7, 11),
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resblock_dilation_sizes: Tuple[Tuple[int]] = (
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(1, 3, 5), (1, 3, 5), (1, 3, 5)),
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num_mels: int = 128,
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upsample_initial_channel: int = 512,
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use_template: bool = True,
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pre_conv_kernel_size: int = 7,
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post_conv_kernel_size: int = 7,
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post_activation: Callable = partial(nn.SiLU, inplace=True),
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):
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super().__init__()
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assert (
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prod(upsample_rates) == hop_length
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), f"hop_length must be {prod(upsample_rates)}"
|
||||
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self.conv_pre = weight_norm(
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ops.Conv1d(
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num_mels,
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upsample_initial_channel,
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||||
pre_conv_kernel_size,
|
||||
1,
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padding=get_padding(pre_conv_kernel_size),
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||||
)
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)
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self.num_upsamples = len(upsample_rates)
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||||
self.num_kernels = len(resblock_kernel_sizes)
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||||
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self.noise_convs = nn.ModuleList()
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self.use_template = use_template
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self.ups = nn.ModuleList()
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for i, (u, k) in enumerate(zip(upsample_rates, upsample_kernel_sizes)):
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c_cur = upsample_initial_channel // (2 ** (i + 1))
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||||
self.ups.append(
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||||
weight_norm(
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||||
ops.ConvTranspose1d(
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upsample_initial_channel // (2**i),
|
||||
upsample_initial_channel // (2 ** (i + 1)),
|
||||
k,
|
||||
u,
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||||
padding=(k - u) // 2,
|
||||
)
|
||||
)
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||||
)
|
||||
|
||||
if not use_template:
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||||
continue
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||||
|
||||
if i + 1 < len(upsample_rates):
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stride_f0 = np.prod(upsample_rates[i + 1:])
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||||
self.noise_convs.append(
|
||||
ops.Conv1d(
|
||||
1,
|
||||
c_cur,
|
||||
kernel_size=stride_f0 * 2,
|
||||
stride=stride_f0,
|
||||
padding=stride_f0 // 2,
|
||||
)
|
||||
)
|
||||
else:
|
||||
self.noise_convs.append(ops.Conv1d(1, c_cur, kernel_size=1))
|
||||
|
||||
self.resblocks = nn.ModuleList()
|
||||
for i in range(len(self.ups)):
|
||||
ch = upsample_initial_channel // (2 ** (i + 1))
|
||||
for k, d in zip(resblock_kernel_sizes, resblock_dilation_sizes):
|
||||
self.resblocks.append(ResBlock1(ch, k, d))
|
||||
|
||||
self.activation_post = post_activation()
|
||||
self.conv_post = weight_norm(
|
||||
ops.Conv1d(
|
||||
ch,
|
||||
1,
|
||||
post_conv_kernel_size,
|
||||
1,
|
||||
padding=get_padding(post_conv_kernel_size),
|
||||
)
|
||||
)
|
||||
|
||||
def forward(self, x, template=None):
|
||||
x = self.conv_pre(x)
|
||||
|
||||
for i in range(self.num_upsamples):
|
||||
x = F.silu(x, inplace=True)
|
||||
x = self.ups[i](x)
|
||||
|
||||
if self.use_template:
|
||||
x = x + self.noise_convs[i](template)
|
||||
|
||||
xs = None
|
||||
|
||||
for j in range(self.num_kernels):
|
||||
if xs is None:
|
||||
xs = self.resblocks[i * self.num_kernels + j](x)
|
||||
else:
|
||||
xs += self.resblocks[i * self.num_kernels + j](x)
|
||||
|
||||
x = xs / self.num_kernels
|
||||
|
||||
x = self.activation_post(x)
|
||||
x = self.conv_post(x)
|
||||
x = torch.tanh(x)
|
||||
|
||||
return x
|
||||
|
||||
def remove_weight_norm(self):
|
||||
for up in self.ups:
|
||||
remove_weight_norm(up)
|
||||
for block in self.resblocks:
|
||||
block.remove_weight_norm()
|
||||
remove_weight_norm(self.conv_pre)
|
||||
remove_weight_norm(self.conv_post)
|
||||
|
||||
|
||||
class ADaMoSHiFiGANV1(nn.Module):
|
||||
def __init__(
|
||||
self,
|
||||
input_channels: int = 128,
|
||||
depths: List[int] = [3, 3, 9, 3],
|
||||
dims: List[int] = [128, 256, 384, 512],
|
||||
drop_path_rate: float = 0.0,
|
||||
kernel_sizes: Tuple[int] = (7,),
|
||||
upsample_rates: Tuple[int] = (4, 4, 2, 2, 2, 2, 2),
|
||||
upsample_kernel_sizes: Tuple[int] = (8, 8, 4, 4, 4, 4, 4),
|
||||
resblock_kernel_sizes: Tuple[int] = (3, 7, 11, 13),
|
||||
resblock_dilation_sizes: Tuple[Tuple[int]] = (
|
||||
(1, 3, 5), (1, 3, 5), (1, 3, 5), (1, 3, 5)),
|
||||
num_mels: int = 512,
|
||||
upsample_initial_channel: int = 1024,
|
||||
use_template: bool = False,
|
||||
pre_conv_kernel_size: int = 13,
|
||||
post_conv_kernel_size: int = 13,
|
||||
sampling_rate: int = 44100,
|
||||
n_fft: int = 2048,
|
||||
win_length: int = 2048,
|
||||
hop_length: int = 512,
|
||||
f_min: int = 40,
|
||||
f_max: int = 16000,
|
||||
n_mels: int = 128,
|
||||
):
|
||||
super().__init__()
|
||||
|
||||
self.backbone = ConvNeXtEncoder(
|
||||
input_channels=input_channels,
|
||||
depths=depths,
|
||||
dims=dims,
|
||||
drop_path_rate=drop_path_rate,
|
||||
kernel_sizes=kernel_sizes,
|
||||
)
|
||||
|
||||
self.head = HiFiGANGenerator(
|
||||
hop_length=hop_length,
|
||||
upsample_rates=upsample_rates,
|
||||
upsample_kernel_sizes=upsample_kernel_sizes,
|
||||
resblock_kernel_sizes=resblock_kernel_sizes,
|
||||
resblock_dilation_sizes=resblock_dilation_sizes,
|
||||
num_mels=num_mels,
|
||||
upsample_initial_channel=upsample_initial_channel,
|
||||
use_template=use_template,
|
||||
pre_conv_kernel_size=pre_conv_kernel_size,
|
||||
post_conv_kernel_size=post_conv_kernel_size,
|
||||
)
|
||||
self.sampling_rate = sampling_rate
|
||||
self.mel_transform = LogMelSpectrogram(
|
||||
sample_rate=sampling_rate,
|
||||
n_fft=n_fft,
|
||||
win_length=win_length,
|
||||
hop_length=hop_length,
|
||||
f_min=f_min,
|
||||
f_max=f_max,
|
||||
n_mels=n_mels,
|
||||
)
|
||||
self.eval()
|
||||
|
||||
@torch.no_grad()
|
||||
def decode(self, mel):
|
||||
y = self.backbone(mel)
|
||||
y = self.head(y)
|
||||
return y
|
||||
|
||||
@torch.no_grad()
|
||||
def encode(self, x):
|
||||
return self.mel_transform(x)
|
||||
|
||||
def forward(self, mel):
|
||||
y = self.backbone(mel)
|
||||
y = self.head(y)
|
||||
return y
|
Reference in New Issue
Block a user