Papers › SpeedySpeech: Efficient Neural Speech Synthesis

SpeedySpeech: Efficient Neural Speech Synthesis

9 Aug 2020arXiv:2008.03802archive 2025-07-28

Jan Vainer, Ondřej Dušek

While recent neural sequence-to-sequence models have greatly improved the quality of speech synthesis, there has not been a system capable of fast training, fast inference and high-quality audio synthesis at the same time. We propose a student-teacher network capable of high-quality faster-than-real-time spectrogram synthesis, with low requirements on computational resources and fast training time. We show that self-attention layers are not necessary for generation of high quality audio. We utilize simple convolutional blocks with residual connections in both student and teacher networks and use only a single attention layer in the teacher model. Coupled with a MelGAN vocoder, our model's voice quality was rated significantly higher than Tacotron 2. Our model can be efficiently trained on a single GPU and can run in real time even on a CPU. We provide both our source code and audio samples in our GitHub repository.

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expand_encodings janvainer/speedyspeech/code/speedyspeech.py official repository ran · our draft was wrong BSD-3-Clause (permissive) · 97ca48deb60ad5e4 · report

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Audio SynthesisSpeech Synthesis

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Methods

1x1 ConvolutionAverage PoolingBatch NormalizationBiGRUBiLSTMCBHGConvolutionDense ConnectionsDilated Causal ConvolutionDilated ConvolutionDropoutGAN Hinge LossGRUGriffin-Lim AlgorithmGrouped ConvolutionHighway LayerHighway NetworkLSTMLinear LayerLocation Sensitive AttentionMax PoolingMelGANMelGAN Residual BlockMixture of Logistic DistributionsReLUResidual ConnectionResidual GRUSigmoid ActivationTacotronTacotron 2Tanh ActivationWaveNetWeight NormalizationWindow-based DiscriminatorZoneout

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