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Novel Classification Technique for Hyperspectral Imaging using Multinomial Logistic Regression and Morphological Profiles with Composite Kernels

机译:基于多项式Lo​​gistic回归和复合核形态特征的高光谱成像新分类技术

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Hyperspectral imaging (HI) is getting much more attention among researchers in different fields like agriculture, defense, medical, and geographical surveys. In this work, we have proposed a novel automated system for the classification and segmentation of landscapes using hyperspectral images. The proposed semi-supervised based approach has improved the extraction of spatial characteristics of the scene that has employed an extended multi-attribute profile (EMAP) by stacking of several attributes. The unlabeled data points located near the classifier boundaries are selected on the basis of entropy related to the corresponding class labels. In the next segmentation phase, MLR probabilities are computed against the output of classifier. Finally, maximum-a-posteriori segmentation is carried out on the multilevel logistic prior labels. The simulated results have obtained classification accuracy of 95.50% by comparing predicted labels with original ones. The segmentation accuracy, after developing regions on the output of classification, is 98.31%. A performance comparison of the proposed approach with several approaches has also been carried out.
机译:高光谱成像(HI)在农业,国防,医学和地理调查等不同领域的研究人员中越来越受到关注。在这项工作中,我们提出了使用高光谱图像对景观进行分类和分割的新型自动化系统。所提出的基于半监督的方法通过堆叠多个属性改进了场景的空间特征提取,该场景采用扩展的多属性配置文件(EMAP)。基于与相应类别标签相关的熵来选择位于分类器边界附近的未标记数据点。在下一个细分阶段,将根据分类器的输出计算MLR概率。最后,对多级逻辑后验标记进行最大后验分割。通过将预测标签与原始标签进行比较,仿真结果获得了95.50%的分类精度。在分类输出上发展区域后,分割精度为98.31 \%。还对提议的方法与几种方法进行了性能比较。

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