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Binaural Localization of Multiple Sources in Reverberant and Noisy Environments

机译:混响和嘈杂环境中多个声源的双耳本地化

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Sound source localization from a binaural input is a challenging problem, particularly when multiple sources are active simultaneously and reverberation or background noise are present. In this work, we investigate a multi-source localization framework in which monaural source segregation is used as a mechanism to increase the robustness of azimuth estimates from a binaural input. We demonstrate performance improvement relative to binaural only methods assuming a known number of spatially stationary sources. We also propose a flexible azimuth-dependent model of binaural features that independently captures characteristics of the binaural setup and environmental conditions, allowing for adaptation to new environments or calibration to an unseen binaural setup. Results with both simulated and recorded impulse responses show that robust performance can be achieved with limited prior training.
机译:来自双耳输入的声源定位是一个具有挑战性的问题,特别是当多个声源同时处于活动状态且存在混响或背景噪声时。在这项工作中,我们研究了一种多源定位框架,在该框架中,单声道源隔离用作增加双耳输入方位角估计的鲁棒性的机制。我们证明了相对于双耳纯方法的性能提高,假设已知数量的空间固定源。我们还提出了一种灵活的双耳特征方位角相关模型,该模型可独立捕获双耳设置和环境条件的特​​征,从而适应新环境或校准看不见的双耳设置。模拟和记录的脉冲响应的结果表明,只需进行有限的事先培训就可以实现强大的性能。

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