clonar-voz / TTS /tts /layers /align_tts /duration_predictor.py
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voice-clone with single audio sample input
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from torch import nn
from TTS.tts.layers.generic.pos_encoding import PositionalEncoding
from TTS.tts.layers.generic.transformer import FFTransformerBlock
class DurationPredictor(nn.Module):
def __init__(self, num_chars, hidden_channels, hidden_channels_ffn, num_heads):
super().__init__()
self.embed = nn.Embedding(num_chars, hidden_channels)
self.pos_enc = PositionalEncoding(hidden_channels, dropout_p=0.1)
self.FFT = FFTransformerBlock(hidden_channels, num_heads, hidden_channels_ffn, 2, 0.1)
self.out_layer = nn.Conv1d(hidden_channels, 1, 1)
def forward(self, text, text_lengths):
# B, L -> B, L
emb = self.embed(text)
emb = self.pos_enc(emb.transpose(1, 2))
x = self.FFT(emb, text_lengths)
x = self.out_layer(x).squeeze(-1)
return x