首页> 外文会议>IEEE International Conference on Acoustics, Speech and Signal Processing;ICASSP 2009 >Multidimensional localization of multiple sound sources using averaged directivity patterns of Blind Source Separation systems
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Multidimensional localization of multiple sound sources using averaged directivity patterns of Blind Source Separation systems

机译:使用盲源分离系统的平均指向性模式对多个声源进行多维定位

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In this paper, we propose a versatile acoustic source localization framework exploiting the self-steering capability of Blind Source Separation (BSS) algorithms. We provide a way to produce an acoustical map of the scene by computing the averaged directivity pattern of BSS demixing systems. Since BSS explicitly accounts for multiple sources in its signal propagation model, several simultaneously active sound sources can be located using this method. Moreover, the framework is suitable to any microphone array geometry, which allows application for multiple dimensions, in the near field as well as in the far field. Experiments demonstrate the efficiency of the proposed scheme in a reverberant environment for the localization of speech sources.
机译:在本文中,我们提出了一种通用的声源定位框架,该框架利用了盲源分离(BSS)算法的自转向能力。我们提供了一种通过计算BSS混合系统的平均指向性图案来生成场景声学图的方法。由于BSS在其信号传播模型中明确考虑了多个声源,因此可以使用此方法定位多个同时活动的声源。而且,该框架适合于任何麦克风阵列几何形状,从而允许在近场以及远场中应用多种尺寸。实验证明了该方案在混响环境中对语音源定位的效率。

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