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Gridless Sound Field Decomposition Based on Reciprocity Gap Functional in Spherical Harmonic Domain

机译:基于球形谐波域互核缺口功能的无线结构声场分解

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A gridless sound field decomposition method based on the reciprocity gap functional (RGF) is proposed. An intuitive and powerful way of reconstructing a sound field inside a region including sound sources is to decompose the sound field into Green's functions. Current methods based on sparse representation require discretization of the reconstruction region into grid points to construct the dictionary matrix; however, this procedure causes an off-grid problem and has a high computational cost. We apply the RGF, which was first proposed in the field of inverse problems, to sound field decomposition in the spherical harmonic domain. The proposed method enables a sound field to be decomposed in a gridless manner with a computationally efficient algorithm. Numerical simulation results indicated that the reconstruction accuracy as well as the source localization accuracy can be improved by the proposed method compared with current methods, especially at low frequencies.
机译:提出了一种基于互动间隙功能(RGF)的无线声场分解方法。在包括声源的区域内重建声场的直观和强大的方式是将声场分解为绿色的功能。基于稀疏表示的当前方法需要将重建区域的离散化分解为网格点以构建字典矩阵;但是,该过程导致漏洞问题并具有高计算成本。我们应用RGF,首先在逆问题领域提出,在球面谐波域中的声场分解。所提出的方法使得声场能够以计算高效的算法以无线网络方式分解。数值模拟结果表明,通过所提出的方法可以通过当前方法进行改进的重建精度以及源定位精度,尤其是在低频下。

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