Adaptive Detection and Correction of Faulty Elements in Frequency Diverse Array

Abdul Basit, S. Y. Nusenu, Shujhat Khan, Waqar Khan, M. A. Khan, M. U. Farooq
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Abstract

In array beamforming, main lobe steering towards intended position and null placement towards interferers’ positions are the main objectives. Unfortunately, if some array elements fail to work, the array beamforming performance is seriously deteriorated. Therefore, detection of faulty array element and correction of beampattern are two different issues but are very inter-linked tasks that need to be developed for efficient beamforming performance. In literature, these two tasks have been thoroughly investigated, separately. However, in this paper, we propose an adaptive closed-loop joint faulty element detection and beam pattern correction design. Moreover, we are considering frequency diverse array (FDA) with Bat algorithm (BA) based beamformer to detect the faulty elements first and, consequently, correct the beampattern to impose nulls in the interferences range-angle positions. The range-angle based pattern nulls are obtained by controlling the weights of the remaining array elements. The convergence performance of the FDA with Bat algorithm design has been compared with that of genetic algorithm (GA) and particle swarm optimization (PSO), while SINR performance of healthy and faulty arrays is compared for an interference dominant case.
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分频阵列故障元件的自适应检测与校正
在阵列波束形成中,主要目标是主瓣向预定位置转向和零瓣向干扰源位置放置。然而,如果某些阵列单元失效,则会严重影响阵列的波束形成性能。因此,故障阵元的检测和波束方向的校正是两个不同的问题,但却是相互关联的任务,需要开发有效的波束形成性能。在文献中,这两项任务分别进行了彻底的研究。然而,本文提出了一种自适应闭环关节故障元件检测和光束方向图校正设计。此外,我们考虑使用基于Bat算法(BA)的分频阵列(FDA)来首先检测故障元件,从而纠正波束方向图以在干扰距离角位置施加零值。通过控制剩余阵列元素的权重,获得基于距离角的模式空值。将采用Bat算法设计的FDA收敛性能与遗传算法(GA)和粒子群优化(PSO)的收敛性能进行了比较,并对健康阵列和故障阵列在干扰优势情况下的SINR性能进行了比较。
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