适用于双基地和共形天线阵的STAP知识辅助异质性补偿算法

P. Ries, S. de Greve, F. Lapierre, J. Verly
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引用次数: 2

摘要

时空自适应处理(STAP)是一种非常适合在强干扰背景下检测慢动目标的技术。研究了用共形天线阵列(CAA)记录雷达回波的双基地雷达配置中STAP的应用。用于估计最优权重向量的辅助数据快照通常是异构的,即在范围方面分布不相同,从而阻止了STAP处理器实现其最佳性能。我们提出了一种新的知识辅助(KA),基于配准的预处理器,减轻了辅助数据的异质性。当应用于碗形天线的模拟数据时,该预处理器在与标准样本矩阵反演(SMI)算法或与计算和数据效率更高的联合域本地化(JDL)算法结合使用时显示出增强的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knowledge-aided Heterogeneity-compensation Algorithm for STAP Applicable to Bistatic Configurations and Conformal Antenna Arrays
Space-time adaptive processing (STAP) is a well-suited technique to detect slow-moving targets in the presence of a strong interference background. We consider the application of STAP in a bistatic radar configuration when the radar returns are recorded by a conformal antenna array (CAA). The secondary data snapshots used to estimate the optimum weight vector are typically heterogeneous, i.e., not identically distributed with respect to range, thus preventing the STAP processor from achieving its optimum performance. We present a novel knowledge- aided (KA), registration-based pre-processor that mitigates the heterogeneity of the secondary data. When applied to simulated data for a bowl-shaped antenna, this pre-processor is shown to provide enhanced performance when used in conjunction either with the standard sample matrix inversion (SMI) algorithm or with the more computationally- and data-efficient joint domain localized (JDL) algorithm.
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