Array signal processing: DOA estimation for missing sensors

Lalita Gupta, R. Singh
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引用次数: 6

Abstract

Array signal processing involves signal enumeration and source localization. Array signal processing is centered on the ability to fuse temporal and spatial information captured via sampling signals emitted from a number of sources at the sensors of an array in order to carry out a specific estimation task: source characteristics (mainly localization of the sources) and/or array characteristics (mainly array geometry) estimation. Array signal processing is a part of signal processing that uses sensors organized in patterns or arrays, to detect signals and to determine information about them. Beamforming is a general signal processing technique used to control the directionality of the reception or transmission of a signal. Using Beamforming we can direct the majority of signal energy we receive from a group of array. Multiple signal classification (MUSIC) is a highly popular eigenstructure-based estimation method of direction of arrival (DOA) with high resolution. This Paper enumerates the effect of missing sensors in DOA estimation. The accuracy of the MUSIC-based DOA estimation is degraded significantly both by the effects of the missing sensors among the receiving array elements and the unequal channel gain and phase errors of the receiver.
阵列信号处理:缺失传感器的DOA估计
阵列信号处理包括信号枚举和信号源定位。阵列信号处理的核心是融合通过在阵列传感器上从多个源发出的采样信号捕获的时空信息的能力,以便执行特定的估计任务:源特性(主要是源的定位)和/或阵列特性(主要是阵列几何)估计。阵列信号处理是信号处理的一部分,它使用按模式或阵列组织的传感器来检测信号并确定有关信号的信息。波束形成是一种通用的信号处理技术,用于控制接收或发射信号的方向性。使用波束形成,我们可以引导我们从一组阵列接收的大部分信号能量。多信号分类(MUSIC)是一种非常流行的基于特征结构的高分辨率到达方向估计方法。本文列举了缺失传感器对DOA估计的影响。由于接收阵元间传感器缺失的影响以及接收机的信道增益和相位误差不等,导致基于music的DOA估计精度显著降低。
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