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A Semantic Information-based Hierarchical Speech Enhancement Method Using Factorized Codec and Diffusion Model

A Semantic Information-based Hierarchical Speech Enhancement Method Using Factorized Codec and Diffusion Model

来源:Arxiv_logoArxiv
英文摘要

Most current speech enhancement (SE) methods recover clean speech from noisy inputs by directly estimating time-frequency masks or spectrums. However, these approaches often neglect the distinct attributes, such as semantic content and acoustic details, inherent in speech signals, which can hinder performance in downstream tasks. Moreover, their effectiveness tends to degrade in complex acoustic environments. To overcome these challenges, we propose a novel, semantic information-based, step-by-step factorized SE method using factorized codec and diffusion model. Unlike traditional SE methods, our hierarchical modeling of semantic and acoustic attributes enables more robust clean speech recovery, particularly in challenging acoustic scenarios. Moreover, this method offers further advantages for downstream TTS tasks. Experimental results demonstrate that our algorithm not only outperforms SOTA baselines in terms of speech quality but also enhances TTS performance in noisy environments.

Yang Xiang、Canan Huang、Desheng Hu、Jingguang Tian、Xinhui Hu、Chao Zhang

通信无线通信无线电设备、电信设备

Yang Xiang,Canan Huang,Desheng Hu,Jingguang Tian,Xinhui Hu,Chao Zhang.A Semantic Information-based Hierarchical Speech Enhancement Method Using Factorized Codec and Diffusion Model[EB/OL].(2025-05-19)[2025-07-16].https://arxiv.org/abs/2505.13843.点此复制

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