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首页> 外文期刊>International journal of remote sensing >Unsupervised PolSAR image classification based on sparse representation
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Unsupervised PolSAR image classification based on sparse representation

机译:基于稀疏表示的无监督PolSAR图像分类

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摘要

A novel unsupervised image classification algorithm which based on the sparse representation theory for polarimetric synthetic aperture radar (PolSAR) image is introduced in this paper. The algorithm conjunctively uses sparse representation-based classification (SRC) theory, dictionary updating method, and label smoothness constraint to update class labels. The unsupervised H//A Wishart classification method is introduced to provide the preliminary classification result, from which the initial dictionary and class labels can be extracted. An energy function is defined, and it contains two terms. The first term is based on the sparse representation theory. It reflects the cost of assigning different class labels to a pixel. The second term is label smoothness constraint. It constrains that class labels of neighbouring pixels in flat regions should be the same. By alternately minimizing the energy function, two unknown variables, dictionary and class labels are updated. Optimized class labels are the outputs to compose the final classification result. Extensive experimental results for three PolSAR datasets are analysed to verify the validity of the proposed method. Comparison with other unsupervised/supervised classification methods indicates its superiority.
机译:提出了一种基于稀疏表示理论的极化合成孔径雷达(PolSAR)图像无监督图像分类算法。该算法结合使用基于稀疏表示的分类(SRC)理论,字典更新方法和标签平滑度约束来更新类标签。引入无监督的H // A Wishart分类方法以提供初步分类结果,从中可以提取初始词典和类别标签。定义了一个能量函数,其中包含两个项。第一项基于稀疏表示理论。它反映了为像素分配不同类别标签的成本。第二项是标签平滑度约束。它限制了平坦区域中相邻像素的类别标签应该相同。通过交替最小化能量函数,更新了两个未知变量,字典和类标签。优化的类别标签是组成最终分类结果的输出。分析了三个PolSAR数据集的大量实验结果,以验证该方法的有效性。与其他非监督/监督分类方法的比较表明了其优越性。

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