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Robust Source Localization in Reverberant Environments Based on Weighted Fuzzy Clustering

机译:基于加权模糊聚类的混响环境中稳健源定位

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Successful localization of sound sources in reverberant enclosures is an important prerequisite for many spatial signal processing algorithms. We investigate the use of a weighted fuzzy $ {bf c}$-means cluster algorithm for robust source localization using location cues extracted from a microphone array. In order to increase the algorithm's robustness against sound reflections, we incorporate observation weights to emphasize reliable cues over unreliable ones. The weights are computed from local feature statistics around sound onsets because it is known that these regions are least affected by reverberation. Experimental results illustrate the superiority of the method when compared with standard fuzzy clustering. The proposed algorithm successfully located two speech sources for a range of angular separations in room environments with reverberation times of up to 600 ms.
机译:在混响罩中成功定位声源是许多空间信号处理算法的重要前提。我们研究了使用加权模糊$ {bf c} $-均值聚类算法,使用从麦克风阵列中提取的位置提示进行鲁棒的源定位。为了提高算法对声音反射的鲁棒性,我们结合了观察权重来强调可靠线索而不是不可靠线索。权重是根据声音起点周围的局部特征统计信息计算出来的,因为众所周知,这些区域受混响的影响最小。实验结果证明了与标准模糊聚类相比该方法的优越性。所提出的算法在混响时间高达600 ms的房间环境中成功定位了两个语音源,以实现一定的角度间隔。

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