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PSO-Based Optimal Selection of Zernike Moments for Target Discrimination in High-Resolution SAR Imagery

机译:基于PSO的Zernike矩最优选择用于高分辨率SAR图像中的目标识别

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摘要

Target discrimination is the key step of automatic target detection in synthetic aperture radar (SAR) images. In this paper, a new algorithm, effective and robust feature sets for target discrimination in high resolution SAR images has been proposed. Two main steps in target discrimination of SAR images have been developed, the feature extraction based on Zernike moments (ZMs) having linear transformation invariance properties and the PSO based feature selection to select the optimal feature subset of Zernike moments for decreasing computational complexity of feature extraction step. The input regions of interest (ROIs) have been segmented and passed to a number of preprocessing stages such as histogram equalization, position and size normalization. Two groups of Zernike moments (shape and margin (intensity) characteristic) have been extracted from the preprocessed images and they have been applied to the feature selection step. Each group includes 34 moments with different orders and iterations. The selected moments have been applied to a SVM classifier. The proposed scheme has been tested on the MSTAR database. The Receiver Operational Characteristics (ROC) curve and the performance of proposed method using some measured data have been analyzed. Experimental results demonstrate the efficiency of the proposed approach in target discrimination of SAR imagery.
机译:目标识别是合成孔径雷达(SAR)图像中自动目标检测的关键步骤。本文提出了一种新的算法,有效和鲁棒的特征集用于高分辨率SAR图像中的目标识别。 SAR图像目标识别的两个主要步骤是:基于具有线性变换不变性的Zernike矩(ZMs)的特征提取和基于PSO的特征选择,以选择Zernike矩的最佳特征子集以降低特征提取的计算复杂性步。输入的感兴趣区域(ROI)已被分割并传递到许多预处理阶段,例如直方图均衡化,位置和大小归一化。从预处理图像中提取了两组Zernike矩(形状和边界(强度)特性),并将它们应用于特征选择步骤。每个组包括34个具有不同顺序和迭代次数的矩。所选力矩已应用于SVM分类器。该提议的方案已经在MSTAR数据库上进行了测试。分析了接收器的工作特性(ROC)曲线和使用一些实测数据提出的方法的性能。实验结果证明了该方法在SAR图像目标识别中的有效性。

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