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首页> 外文期刊>The Journal of the Acoustical Society of America >Deconvolution for the localization of sound sources using a circular microphone array
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Deconvolution for the localization of sound sources using a circular microphone array

机译:使用圆形麦克风阵列进行反卷积以定位声源

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During the last decade, the aeroacoustic community has examined various methods based on deconvolution to improve the visualization of acoustic fields scanned with planar sparse arrays of microphones. These methods assume that the beamforming map in an observation plane can be approximated by a convolution of the distribution of the actual sources and the beamformer's point-spread function, defined as the beamformer's response to a point source. By deconvolving the resulting map, the resolution is improved, and the side-lobes effect is reduced or even eliminated compared to conventional beamforming. Even though these methods were originally designed for planar sparse arrays, in the present study, they are adapted to uniform circular arrays for mapping the sound over 360°. This geometry has the advantage that the beamforming output is practically independent of the focusing direction, meaning that the beamformer's point-spread function is shift-invariant. This makes it possible to apply computationally efficient deconvolution algorithms that consist of spectral procedures in the entire region of interest, such as the deconvolution approach for the mapping of the acoustic sources 2, the Fourier-based non-negative least squares, and the Richardson-Lucy. This investigation examines the matter with computer simulations and measurements.
机译:在过去的十年中,航空声学界已经研究了多种基于反卷积的方法,以改善用麦克风的平面稀疏阵列扫描的声场的可视化。这些方法假定可以通过实际源的分布与波束形成器的点扩展函数(定义为波束形成器对点源的响应)的卷积来近似观察平面中的波束形成图。与传统的波束成形相比,通过对得到的图进行卷积,可以提高分辨率,并减少甚至消除旁瓣效应。尽管这些方法最初是为平面稀疏阵列设计的,但在本研究中,它们仍适用于均匀的圆形阵列,以在360°上映射声音。这种几何形状的优点是,波束形成的输出实际上与聚焦方向无关,这意味着波束形成器的点扩展函数是不变位移的。这样就可以应用在整个感兴趣区域中由频谱过程组成的高效计算反褶积算法,例如用于声源2映射的反褶积方法,基于傅立叶的非负最小二乘法以及Richardson-露西这项调查通过计算机模拟和测量来检查问题。

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