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A panoramic continuous compressive beamformer with cuboid microphone arrays

机译:具有长方体麦克风阵列的全景连续压缩波束成形器

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摘要

Compressive beamforming is a powerful approach for the direction-of-arrival (DOA) estimation and strength quantification of acoustic sources. The conventional grid-based discrete compressive beamformer suffers from the basis mismatch conundrum. Its result degrades under the situation that sources fall off the grid. The existing continuous compressive beamformer with linear or planar microphone arrays can circumvent the conundrum, but work well only for sources in a local region. Here we develop a panoramic continuous compressive beamformer with cuboid microphone arrays based on an atomic norm minimization (ANM) and a matrix pencil and paring method. To solve the positive semidefinite programming equivalent to the ANM efficiently, we formulate a solving algorithm based on the alternating direction method of multipliers. We also present an iterative reweighted ANM to enhance sparsity and resolution. The beamformer is capable of estimating the DOAs and quantifying the strengths of acoustic sources panoramically and accurately, whether a standard uniform or a sparse cuboid microphone array is utilized.
机译:压缩波束成形是用于声源的到达方向(DOA)估计和强度量化的强大方法。常规的基于网格的离散压缩波束形成器遭受基本失配难题。在源掉网的情况下,其结果会降低。现有的具有线性或平面麦克风阵列的连续压缩波束形成器可以绕开难题,但仅适用于局部区域中的源。在这里,我们基于原子规范最小化(ANM)以及矩阵笔和削皮方法,开发了具有长方体麦克风阵列的全景连续压缩波束成形器。为了有效地求解等效于ANM的正半定规划,我们提出了一种基于乘法器交替方向法的求解算法。我们还提出了一种迭代的加权ANM,以增强稀疏性和分辨率。不管使用标准的均匀或稀疏的长方体麦克风阵列,波束形成器都能够全景准确地估计DOA并量化声源的强度。

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