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Performance of a class of adaptive detection algorithms in nonhomogeneous environments

机译:非均匀环境中一类自适应检测算法的性能

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A two-dimensional (2-D) adaptive sidelobe blanker (ASB) detection algorithm was developed through experimentation as an extenuate for false alarms caused by undernulled interference encountered when applying the adaptive matched filter (AMF) in nonhomogeneous environments. The algorithm's utility has been demonstrated empirically. Considering theoretic performance analyses of the ASB detection algorithm as well as the AMF generalized likelihood ratio test (GLRT), and the adaptive cosine estimator (ACE), under nonideal conditions, can become fairly intractable rather quickly, especially in an adaptive processing context involving covariance estimation. In this paper, however, we have developed and exploited a theoretic framework through which the performance of these algorithms under nonhomogeneous conditions can be examined theoretically. It is demonstrated through theoretic analysis that in the presence of undernulled interference, the ASB is a pliable false alarm regulatory (FAR) detector that maintains good target sensitivity. A viable method of ASB threshold selection is also presented and demonstrated.
机译:通过实验开发了一种二维(2-D)自适应旁瓣消隐器(ASB)检测算法,作为对在非均匀环境中应用自适应匹配滤波器(AMF)时由于消零干扰而引起的虚假警报的缓解。实验证明了该算法的实用性。考虑到ASB检测算法以及AMF广义似然比检验(GLRT)和自适应余弦估计器(ACE)的理论性能分析,在非理想条件下会变得相当棘手,特别是在涉及协方差的自适应处理环境中估计。然而,在本文中,我们已经开发并利用了一个理论框架,通过该框架可以从理论上检验这些算法在非均匀条件下的性能。通过理论分析表明,在干扰消除不足的情况下,ASB是一种柔韧性的虚假警报调节(FAR)检测器,可保持良好的目标灵敏度。还提出并证明了一种可行的ASB阈值选择方法。

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