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基于压缩感知的稀疏三极阵列设计

Compressive Sensing Based Design of Sparse Tripole Arrays.

作者信息

Hawes Matthew, Liu Wei, Mihaylova Lyudmila

机构信息

Department of Automatic Control and Systems Engineering, University of Sheffield, Sheffield S1 3JD, UK.

Department of Electronic and Electrical Engineering, University of Sheffield, Sheffield S1 3JD, UK.

出版信息

Sensors (Basel). 2015 Dec 10;15(12):31056-68. doi: 10.3390/s151229849.

Abstract

This paper considers the problem of designing sparse linear tripole arrays. In such arrays at each antenna location there are three orthogonal dipoles, allowing full measurement of both the horizontal and vertical components of the received waveform. We formulate this problem from the viewpoint of Compressive Sensing (CS). However, unlike for isotropic array elements (single antenna), we now have three complex valued weight coefficients associated with each potential location (due to the three dipoles), which have to be simultaneously minimised. If this is not done, we may only set the weight coefficients of individual dipoles to be zero valued, rather than complete tripoles, meaning some dipoles may remain at each location. Therefore, the contributions of this paper are to formulate the design of sparse tripole arrays as an optimisation problem, and then we obtain a solution based on the minimisation of a modified l1 norm or a series of iteratively solved reweighted minimisations, which ensure a truly sparse solution. Design examples are provided to verify the effectiveness of the proposed methods and show that a good approximation of a reference pattern can be achieved using fewer tripoles than a Uniform Linear Array (ULA) of equivalent length.

摘要

本文考虑了稀疏线性三极子阵列的设计问题。在这种阵列中,每个天线位置有三个正交偶极子,能够对接收到的波形的水平和垂直分量进行全面测量。我们从压缩感知(CS)的角度来阐述这个问题。然而,与各向同性阵列单元(单天线)不同的是,现在每个潜在位置有三个复数值加权系数(由于三个偶极子),必须同时将它们最小化。如果不这样做,我们可能只能将单个偶极子的加权系数设为零值,而不是整个三极子,这意味着每个位置可能会有一些偶极子保留下来。因此,本文的贡献在于将稀疏三极子阵列的设计表述为一个优化问题,然后我们基于修改后的l1范数的最小化或一系列迭代求解的重新加权最小化来获得一个解决方案,这确保了一个真正稀疏的解。提供了设计示例来验证所提方法的有效性,并表明使用比等效长度的均匀线性阵列(ULA)更少的三极子就能实现对参考方向图的良好近似。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d58/4721769/7703368a2420/sensors-15-29849-g001.jpg

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