A two stage hybrid space-time adaptive processing algorithm

R. Adve, T. Hale, M. Wicks
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引用次数: 20

Abstract

This research presents two new space-time adaptive processing (STAP) algorithms; a two-dimensional non-statistical method and a hybridisation of this approach with statistically based methods. The non-statistical algorithm developed here allows filtering of uncorrelated interference, such as discrete interferers, within the range cell of interest. However, the performance of these algorithms in homogeneous correlated interference scenarios is inherently inferior to traditional statistical STAP algorithms. The proposed hybrid algorithm alleviates this drawback by implementing a second stage of statistical adaptive processing. This paper illustrates the advantages of using a two stage adaptive process to combine the direct data domain and statistical algorithms. The work presented in this paper brings together two different aspects of STAP research: statistical and direct data domain processing. In doing so, this research fulfils an important need in the context of practical STAP processing.
一种两阶段混合时空自适应处理算法
提出了两种新的时空自适应处理(STAP)算法;一种二维非统计方法和这种方法与基于统计的方法的杂交。这里开发的非统计算法允许在感兴趣的范围单元内过滤不相关的干扰,例如离散干扰。然而,这些算法在同质相关干扰情况下的性能本质上不如传统的统计STAP算法。提出的混合算法通过实施第二阶段的统计自适应处理来减轻这一缺点。本文阐述了采用两阶段自适应过程将直接数据域和统计算法相结合的优点。本文介绍的工作汇集了STAP研究的两个不同方面:统计和直接数据域处理。因此,本研究满足了实际STAP处理背景下的一个重要需求。
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