mirror of https://github.com/coqui-ai/TTS.git
stop conditioning with padding for inference_truncated
parent
5212a11836
commit
68f8ef730d
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@ -125,8 +125,8 @@ class Attention(nn.Module):
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self._mask_value = -float("inf")
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self.windowing = windowing
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if self.windowing:
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self.win_back = 1
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self.win_front = 3
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self.win_back = 3
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self.win_front = 6
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self.win_idx = None
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self.norm = norm
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@ -405,7 +405,7 @@ class Decoder(nn.Module):
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alignments += [alignment]
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stop_flags[0] = stop_flags[0] or stop_token > 0.5
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stop_flags[1] = stop_flags[1] or (alignment[0, -2:].sum() > 0.8 and t > inputs.shape[1])
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stop_flags[1] = stop_flags[1] or (alignment[0, -2:].sum() > 0.5 and t > inputs.shape[1])
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stop_flags[2] = t > inputs.shape[1] * 2
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if all(stop_flags):
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stop_count += 1
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@ -436,6 +436,7 @@ class Decoder(nn.Module):
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self.attention_layer.init_win_idx()
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outputs, gate_outputs, alignments, t = [], [], [], 0
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stop_flags = [False, False]
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stop_count = 0
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while True:
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memory = self.prenet(self.memory_truncated)
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mel_output, gate_output, alignment = self.decode(memory)
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@ -444,14 +445,16 @@ class Decoder(nn.Module):
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gate_outputs += [gate_output]
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alignments += [alignment]
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stop_flags[0] = stop_flags[0] or gate_output > 0.5
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stop_flags[1] = stop_flags[1] or alignment[0, -2:].sum() > 0.5
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stop_flags[0] = stop_flags[0] or stop_token > 0.5
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stop_flags[1] = stop_flags[1] or (alignment[0, -2:].sum() > 0.5 and t > inputs.shape[1])
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stop_flags[2] = t > inputs.shape[1] * 2
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if all(stop_flags):
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break
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stop_count += 1
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if stop_count > 20:
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break
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elif len(outputs) == self.max_decoder_steps:
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print(" | > Decoder stopped with 'max_decoder_steps")
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break
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self.memory_truncated = mel_output
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t += 1
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