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Addressing Index Collapse of Large-Codebook Speech Tokenizer with Dual-Decoding Product-Quantized Variational Auto-Encoder

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arxiv 2406.02940 v1 pith:BSVXXGJA submitted 2024-06-05 cs.SD eess.AS

classification cs.SDeess.AS
keywords speechcodebookscodewordscollapseindexlargerpq-vaecodebook
verification ladder T0 review T1 audit T2 compute T3 formal
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VQ-VAE, as a mainstream approach of speech tokenizer, has been troubled by ``index collapse'', where only a small number of codewords are activated in large codebooks. This work proposes product-quantized (PQ) VAE with more codebooks but fewer codewords to address this problem and build large-codebook speech tokenizers. It encodes speech features into multiple VQ subspaces and composes them into codewords in a larger codebook. Besides, to utilize each VQ subspace well, we also enhance PQ-VAE via a dual-decoding training strategy with the encoding and quantized sequences. The experimental results demonstrate that PQ-VAE addresses ``index collapse" effectively, especially for larger codebooks. The model with the proposed training strategy further improves codebook perplexity and reconstruction quality, outperforming other multi-codebook VQ approaches. Finally, PQ-VAE demonstrates its effectiveness in language-model-based TTS, supporting higher-quality speech generation with larger codebooks.

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  1. DS-Codec: Dual-Stage Training with Mirror-to-NonMirror Architecture Switching for Speech Codec

    cs.SD 2025-05 conditional novelty 4.0 of 10

    DS-Codec improves low-bitrate speech codec quality by first training a mirrored codec and then switching to a non-mirrored decoder, while using product quantization to form one large codebook.

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