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An Intra-BRNN and GB-RVQ Based END-TO-END Neural Audio Codec

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arxiv 2402.01271 v1 pith:N7ZDF5XC submitted 2024-02-02 eess.AS cs.SD

classification eess.AScs.SD
keywords codecneuralaudiocbrccodingcorrelationsend-to-endgb-rvq
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Recently, neural networks have proven to be effective in performing speech coding task at low bitrates. However, under-utilization of intra-frame correlations and the error of quantizer specifically degrade the reconstructed audio quality. To improve the coding quality, we present an end-to-end neural speech codec, namely CBRC (Convolutional and Bidirectional Recurrent neural Codec). An interleaved structure using 1D-CNN and Intra-BRNN is designed to exploit the intra-frame correlations more efficiently. Furthermore, Group-wise and Beam-search Residual Vector Quantizer (GB-RVQ) is used to reduce the quantization noise. CBRC encodes audio every 20ms with no additional latency, which is suitable for real-time communication. Experimental results demonstrate the superiority of the proposed codec when comparing CBRC at 3kbps with Opus at 12kbps.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. NanoCodec: Towards High-Quality Ultra Fast Speech LLM Inference

    eess.AS 2025-08 conditional novelty 5.0 of 10

    NanoCodec achieves competitive speech quality at 12.5 frames per second and 0.6-1.78 kbps, with a causal decoder for low-latency speech LLM inference.

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