Fernandez-Grande Efren, Xenaki Angeliki, Gerstoft Peter
Acoustic Technology, Department of Electrical Engineering, Technical University of Denmark, Building 352, Ørsteds Plads, DK-2800 Kongens Lyngby, Denmark.
Scripps Institution of Oceanography, University of California San Diego, La Jolla, California 92093, USA.
J Acoust Soc Am. 2017 Jan;141(1):532. doi: 10.1121/1.4974047.
This study examines a near-field acoustic holography method consisting of a sparse formulation of the equivalent source method, based on the compressive sensing (CS) framework. The method, denoted Compressive-Equivalent Source Method (C-ESM), encourages spatially sparse solutions (based on the superposition of few waves) that are accurate when the acoustic sources are spatially localized. The importance of obtaining a non-redundant representation, i.e., a sensing matrix with low column coherence, and the inherent ill-conditioning of near-field reconstruction problems is addressed. Numerical and experimental results on a classical guitar and on a highly reactive dipole-like source are presented. C-ESM is valid beyond the conventional sampling limits, making wide-band reconstruction possible. Spatially extended sources can also be addressed with C-ESM, although in this case the obtained solution does not recover the spatial extent of the source.
本研究考察了一种基于压缩感知(CS)框架的近场声全息方法,该方法由等效源法的稀疏公式组成。该方法称为压缩等效源法(C-ESM),它鼓励空间稀疏解(基于少数波的叠加),当声源在空间上局部化时,这种解是准确的。文中讨论了获得非冗余表示(即具有低列相干性的传感矩阵)的重要性以及近场重建问题固有的病态性。给出了在古典吉他和高反应性偶极子样源上的数值和实验结果。C-ESM在传统采样极限之外仍然有效,使得宽带重建成为可能。C-ESM也可以处理空间扩展源,尽管在这种情况下获得的解不能恢复源的空间范围。