Hyperspectral image classification based on spectral-spatial feature extraction

Zhen Ye, Li-ling Tan, Lin Bai
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引用次数: 8

Abstract

A novel hyperspectral classification algorithm based on spectral-spatial feature extraction is proposed. First, spectral-spatial features are extracted by Gabor transform in PCA-projected space. Following that, Gabor-feature bands are partitioned into multiple subsets. Afterwards, the adjacent features in each subset are fused. Finally, the fused features are processed by recursive filtering before feeding into support vector machine (SVM) classifier. Experimental results demonstrate that the proposed algorithm substantially outperforms the traditional and state-of-the-art methods.
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基于光谱空间特征提取的高光谱图像分类
提出了一种基于光谱空间特征提取的高光谱分类算法。首先,在pca投影空间中通过Gabor变换提取光谱空间特征;然后,将gabor特征带划分为多个子集。然后,对每个子集中的相邻特征进行融合。最后,对融合后的特征进行递归滤波处理,再输入支持向量机分类器。实验结果表明,该算法大大优于传统的和最先进的方法。
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