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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Nonlinear clutter cancellation and detection using a memory-basedpredictor
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Nonlinear clutter cancellation and detection using a memory-basedpredictor

机译:使用基于存储器的预测器进行非线性杂波消除和检测

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摘要

In this paper, a nonlinear prediction (NLP) method is proposed as an alternative to the conventional linear prediction (LP) method for clutter cancellation. Because of the nonlinearity and non-Gaussianity of a clutter process, a nonlinear predictor is therefore needed to suppress clutter optimally. A memory-based predictor which uses a table look-up strategy to perform NLP is used in this work. The advantages of the memory-based approach are fast learning, algorithmic simplicity, robustness and suitability for parallel implementation. The memory-based predictor is then used as an adaptive detector for small surface target detection embedded in clutter. The effectiveness of the new method is demonstrated using real sea clutter data, and the results show improvement when compared with the conventional LP techniques
机译:在本文中,提出了一种非线性预测(NLP)方法来替代常规的用于消除杂波的线性预测(LP)方法。由于杂波过程的非线性和非高斯性,因此需要非线性预测器来最佳地抑制杂波。在这项工作中使用了基于内存的预测器,该预测器使用表查找策略执行NLP。基于内存的方法的优点是学习速度快,算法简单,健壮性和适用于并行实现。然后将基于内存的预测器用作自适应检测器,用于嵌入杂波的小表面目标检测。使用实际海杂波数据证明了该新方法的有效性,并且与传统的LP技术相比,结果显示出了改进

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