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# Copyright (c) 2023 Amphion. | |
# | |
# This source code is licensed under the MIT license found in the | |
# LICENSE file in the root directory of this source tree. | |
import torch | |
import torch.nn as nn | |
from modules.general.utils import Conv1d | |
class GaU(nn.Module): | |
r"""Gated Activation Unit (GaU) proposed in `Gated Activation Units for Neural | |
Networks <https://arxiv.org/pdf/1606.05328.pdf>`_. | |
Args: | |
channels: number of input channels. | |
kernel_size: kernel size of the convolution. | |
dilation: dilation rate of the convolution. | |
d_context: dimension of context tensor, None if don't use context. | |
""" | |
def __init__( | |
self, | |
channels: int, | |
kernel_size: int = 3, | |
dilation: int = 1, | |
d_context: int = None, | |
): | |
super().__init__() | |
self.context = d_context | |
self.conv = Conv1d( | |
channels, | |
channels * 2, | |
kernel_size, | |
dilation=dilation, | |
padding=dilation * (kernel_size - 1) // 2, | |
) | |
if self.context: | |
self.context_proj = Conv1d(d_context, channels * 2, 1) | |
def forward(self, x: torch.Tensor, context: torch.Tensor = None): | |
r"""Calculate forward propagation. | |
Args: | |
x: input tensor with shape [B, C, T]. | |
context: context tensor with shape [B, ``d_context``, T], default to None. | |
""" | |
h = self.conv(x) | |
if self.context: | |
h = h + self.context_proj(context) | |
h1, h2 = h.chunk(2, 1) | |
h = torch.tanh(h1) * torch.sigmoid(h2) | |
return h | |