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Robust airborne target recognition based on recurrence plot quantification of micro-Doppler radar signatures

机译:基于微多普勒雷达签名的复发绘图量化的强大空气识别

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A robust target recognition method proposed based on recurrence plot and recurrence quantification analysis (RQA) to generate robust features against noise, target velocity and aspect angle from micro-Doppler (m-D) signatures. The proposed method is tested on simulated data of three different targets using multiclass support vector machine (MSVM) and classification rate of about 95 % is achieved. Also, effect of noise and coherent processing time (CPT) on classification rate is investigated.
机译:基于复发曲线和复发量化分析(RQA)提出的一种鲁棒的目标识别方法,以产生来自微多普通(M-D)签名的噪声,目标速度和方向角度的鲁棒特征。在使用多键式支持向量机(MSVM)的三种不同靶的模拟数据上测试了所提出的方法,并且实现了约95%的分类率。此外,研究了噪声和相干处理时间(CPT)对分类率的影响。

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