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ZipVoice: Fast and High-Quality Zero-Shot Text-to-Speech with Flow Matching

ZipVoice: Fast and High-Quality Zero-Shot Text-to-Speech with Flow Matching

来源:Arxiv_logoArxiv
英文摘要

Existing large-scale zero-shot text-to-speech (TTS) models deliver high speech quality but suffer from slow inference speeds due to massive parameters. To address this issue, this paper introduces ZipVoice, a high-quality flow-matching-based zero-shot TTS model with a compact model size and fast inference speed. Key designs include: 1) a Zipformer-based flow-matching decoder to maintain adequate modeling capabilities under constrained size; 2) Average upsampling-based initial speech-text alignment and Zipformer-based text encoder to improve speech intelligibility; 3) A flow distillation method to reduce sampling steps and eliminate the inference overhead associated with classifier-free guidance. Experiments on 100k hours multilingual datasets show that ZipVoice matches state-of-the-art models in speech quality, while being 3 times smaller and up to 30 times faster than a DiT-based flow-matching baseline. Codes, model checkpoints and demo samples are publicly available.

Han Zhu、Wei Kang、Zengwei Yao、Liyong Guo、Fangjun Kuang、Zhaoqing Li、Weiji Zhuang、Long Lin、Daniel Povey

计算技术、计算机技术

Han Zhu,Wei Kang,Zengwei Yao,Liyong Guo,Fangjun Kuang,Zhaoqing Li,Weiji Zhuang,Long Lin,Daniel Povey.ZipVoice: Fast and High-Quality Zero-Shot Text-to-Speech with Flow Matching[EB/OL].(2025-06-20)[2025-07-16].https://arxiv.org/abs/2506.13053.点此复制

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