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The Sequence-to-Sequence Baseline for the Voice Conversion Challenge 2020: Cascading ASR and TTS

6 Oct 2020arXiv:2010.02434archive 2025-07-28

Wen-Chin Huang, Tomoki Hayashi, Shinji Watanabe, Tomoki Toda

This paper presents the sequence-to-sequence (seq2seq) baseline system for the voice conversion challenge (VCC) 2020. We consider a naive approach for voice conversion (VC), which is to first transcribe the input speech with an automatic speech recognition (ASR) model, followed using the transcriptions to generate the voice of the target with a text-to-speech (TTS) model. We revisit this method under a sequence-to-sequence (seq2seq) framework by utilizing ESPnet, an open-source end-to-end speech processing toolkit, and the many well-configured pretrained models provided by the community. Official evaluation results show that our system comes out top among the participating systems in terms of conversion similarity, demonstrating the promising ability of seq2seq models to convert speaker identity. The implementation is made open-source at: https://github.com/espnet/espnet/tree/master/egs/vcc20.

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Tasks

Automatic Speech RecognitionAutomatic Speech Recognition (ASR)Speech RecognitionText to SpeechVoice Conversionspeech-recognitiontext-to-speech

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Methods

LSTMSeq2SeqSigmoid ActivationTanh Activation

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