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Automatic Target Recognition of SAR images using Random Subspace Ensemble classifier

机译:使用随机子空间集成分类器的SAR图像自动目标识别

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A novel framework for Automatic Target Recognition(ATR) in Synthetic Aperture Radar (SAR) imagery using Ensemble classifier is presented. A combination of Principal Component Analysis (PCA) and Non-negative Factorization (NMF) are used as features to a Random Subspace Ensemble with k-NN as base classifiers. The Random Subspace ensemble offers an elegant approach to feature selection when dealing with high dimensional feature set such as in the present case. Our approach has been benchmarked using the Moving and Stationary Target Acquisition and Recognition (MSTAR) dataset and results indicate our method outperforms other the state-of-the-art SAR ATR techniques reported in the literature.
机译:提出了一种使用Ensemble分类器的合成孔径雷达(SAR)图像中自动目标识别(ATR)的新颖框架。主成分分析(PCA)和非负因子分解(NMF)的组合用作以k-NN为基础分类器的随机子空间集合的特征。当处理高维特征集(例如在当前情况下)时,随机子空间集成提供了一种优雅的特征选择方法。我们的方法已经使用移动和静止目标获取与识别(MSTAR)数据集进行了基准测试,结果表明我们的方法优于文献中报道的其他最新SAR ATR技术。

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