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面向混响环境声源定位的 Transformer 特征聚焦建模方法

  • Fangchao Chen
  • , Huaan Tian
  • , Youhong Xiao
  • , Liang Yu
  • Harbin Engineering University
  • China Ship Research and Design Center
  • State Key Lahoratory of Airliner Integration Technology and Flight Simulation

科研成果: 期刊稿件文章同行评审

摘要

Traditional sound source localization algorithms in reverberant environments are susceptible to multipath reflections, resulting in insufficient localization accuracy and robustness. To address these issues, a Transformer feature-focused modeling method for sound source localization in reverberant environments is proposed. Using the normalized beamforming power map as input, the proposed method employs the multi-head attention mechanism of the Transformer to model features at different spatial positions, thereby enhancing the global and local feature representations associated with the true source location and suppressing spurious source interference caused by reflections under reverberant conditions. To verify the effectiveness of the proposed method, simulation datasets under different source positions and reverberation conditions are generated using the image source method, and the true source positions are used as supervision labels for training and testing. The results show that, compared with traditional dereverberation methods and early deep learning methods, the proposed method achieves higher localization accuracy and better robustness in reverberant environments, and maintains favorable localization performance especially under highly reverberant conditions. In addition, the proposed method effectively reduces sidelobe levels and weakens the influence of spurious sources. Experiments conducted in an enclosed space further validate the effectiveness of the proposed method in practical scenarios.

投稿的翻译标题Transformer feature focusing modeling method for sound source localization in reverberant environments
源语言繁体中文
页(从-至)1231-1244
页数14
期刊Shengxue Xuebao/Acta Acustica
51
4
DOI
出版状态已出版 - 7月 2026

关键词

  • Feature focusing
  • Multi-head attention
  • Reverberant environments
  • Sound source localization
  • Transformer

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