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A multi-component based volumetric directional pattern for texture feature extraction from hyperspectral imagery

机译:基于多分量的体积方向性图案,用于从高光谱图像中提取纹理特征

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Texture information has shown a significant contribution to pattern recognition in hyperspectral image (HSI) analysis. In this paper, a multi-component based the volumetric directional pattern (MC-VDP) is proposed for HSI classification. The original VDP operator extracts a three-dimensional texture feature from three consecutive bands by applying eight directional Kirsch filters to the raw intensity values. However, the local sign and local magnitude components, that are generated by a local difference sign-magnitude transform, are not incorporated before Kirsch masking. In this work, we first compute the local sign and local magnitude components followed by VDP operator and then combine them with the original VDP feature to form MC-VDP. By analyzing the local sign and local magnitude components, two volumetric texture features are obtained, namely VDP-Sign (VDP-S) and VDP-Magnitude (VDP-M). Thus MC-VDP operator is constituted of VDP-S, VDP-M, and the original VDP features. In details, VDP-S and VDP-M preserve additional discriminant information to describe the volumetric local structures in HSI, and they can be readily fused since their scheme are constructed in the same fashion. From experimental results, it is observed that a fusion of VDP-S, VDP-M, and the original VDP coded maps provides more discriminant information and thus better classification accuracy compared to the other popular spatial feature extraction methods.
机译:纹理信息已显示出对高光谱图像(HSI)分析中的模式识别的重要贡献。本文提出了一种基于多分量的体积方向图(MC-VDP)用于HSI分类。原始的VDP运算符通过对原始强度值应用八个定向Kirsch滤波器,从三个连续的带中提取三维纹理特征。但是,在Kirsch掩蔽之前未合并由局部差异符号幅度转换生成的局部符号和局部幅度分量。在这项工作中,我们首先计算局部符号和局部幅度分量,然后计算VDP运算符,然后将它们与原始VDP功能结合起来以形成MC-VDP。通过分析局部符号和局部幅度分量,获得了两个体积纹理特征,即VDP-Sign(VDP-S)和VDP-Magnitude(VDP-M)。因此,MC-VDP操作员由VDP-S,VDP-M和原始VDP功能组成。详细地讲,VDP-S和VDP-M保留了附加的判别信息来描述HSI中的体积局部结构,由于它们的方案以相同的方式构造,因此它们很容易融合。从实验结果可以看出,与其他流行的空间特征提取方法相比,VDP-S,VDP-M和原始VDP编码图的融合提供了更多的判别信息,从而提供了更好的分类准确性。

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