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Comparison of Classification Algorithms for Various Methods of Preprocessing Radar Images of the MSTAR Base

机译:用于MSTAR基础预处理雷达图像的各种方法的分类算法的比较

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The present work is devoted to comparing the accuracy of the known qualification algorithms in the task of recognizing local objects on radar images for various image preprocessing methods. Preprocessing involves speckle noise filtering and normalization of the object orientation in the image by the method of image moments and by a method based on the Hough transform. In comparison, the following classification algorithms are used: Decision tree; Support vector machine, AdaBoost, Random forest. The principal component analysis is used to reduce the dimension. The research is carried out on the objects from the base of radar images MSTAR. The paper presents the results of the conducted studies.
机译:本作本作致力于比较已知资格算法的准确性,以识别雷达图像上的局部对象以进行各种图像预处理方法。预处理涉及通过图像矩的方法和基于Hough变换的方法涉及图像中的对象方向的斑点噪声滤波和归一化。相比之下,使用以下分类算法:决策树;支持向量机器,adaboost,随机森林。主要成分分析用于减小维度。该研究是在雷达图像MSTAR基础的物体上进行的。本文提出了进行的研究结果。

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