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Compressive Sensing-Based Sound Source Localization for Microphone Arrays

机译:基于麦克风阵列的基于压缩感应的声源定位

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摘要

Sound source localization with less data is a challenging task. To address this problem, a novel sound source localization method based on compressive sensing theory is proposed in this paper. Specifically, a sparsity basis is first constructed for each microphone by shifting the audio signal recorded from one reference microphone. In this manner, the microphones except the reference one are allowed to capture audio signals under the sampling rate far below the Nyquist criterion. Next, the source positions are estimated by solving an l1 minimization based on each frame of audio signals. Finally, a fine localization scheme is presented by fusing the estimated source positions from multiple frames. The proposed method can directly determine the number of sound sources in one step and successfully estimate the source positions in noisy and reverberant environments. Experimental results demonstrate the validity of the proposed method.
机译:具有较少数据的声源本地化是一个具有挑战性的任务。 为了解决这个问题,本文提出了一种基于压缩感测理论的新型声源定位方法。 具体地,首先通过移位从一个参考麦克风记录的音频信号来为每个麦克风构造稀疏基础。 以这种方式,除了参考之外的麦克风被允许在远低于奈奎斯特标准的采样率下捕获音频信号。 接下来,通过基于每帧音频信号求解L1最小化来估计源位置。 最后,通过融合来自多个帧的估计的源位置来呈现细定位方案。 所提出的方法可以在一步中直接确定声源的数量,并成功估计嘈杂和混响环境中的源位置。 实验结果表明了该方法的有效性。

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