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Compressive Sensing Based Approach to the Design of Linear Robust Sparse Antenna Arrays with Physical Size Constraint

机译:基于压缩感知的物理尺寸约束线性鲁棒稀疏天线阵设计方法

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摘要

In sparse arrays, the randomness of antenna locations avoids the introduction of grating lobes, while allowing adjacent antenna spacings to be greater than half a wavelength. This means a larger array size can be implemented using a relatively small number of antennas. However, careful consideration has to be given to antenna locations to ensure that an acceptable performance level is achieved. Model perturbations can also cause steering vector errors, which in turn cause discrepancies in the array's response, making robust arrays desirable. This study presents various compressive sensing-based methods that can solve this problem, while also imposing the antenna size as a constraint on the minimum adjacent antenna separations. Narrowband and multiband design examples are presented to verify the effectiveness of the proposed design methods, with comparisons being drawn with a previously proposed genetic algorithm-based approach.
机译:在稀疏阵列中,天线位置的随机性避免了引入光栅波瓣,同时允许相邻的天线间距大于波长的一半。这意味着可以使用较少数量的天线来实现更大的阵列尺寸。但是,必须仔细考虑天线位置,以确保达到可接受的性能水平。模型扰动还可能导致导引向量错误,进而导致阵列响应差异,从而使鲁棒阵列成为可取的。这项研究提出了各种基于压缩感测的方法,可以解决此问题,同时还将天线尺寸作为最小相邻天线间距的约束。提出了窄带和多频带设计实例,以验证所提出的设计方法的有效性,并与先前提出的基于遗传算法的方法进行比较。

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  • 作者

    Hawes M.B.; Liu W.;

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  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 en
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