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Evaluation of Image Descriptors for Urban-Rural Classification of Aerial Images

机译:城乡空中图像分类图像描述符的评价

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摘要

In this paper, fourteen descriptors are evaluated for urban-rural classification of aerial images. Among these fourteen descriptors, eleven descriptors consist of texture-based, color-based con combination of these two descriptors. Rest three descriptors are based on dictionaries generated using the Lempel-Ziv-Welch (LZW) data compression algorithm. The classification is carried out using Support Vector Machine (SVM) with radial basis function as kernel function and KNN algorithm. The performance of these images descriptors are evaluated using accuracy, precision, sensitivity and specificity. From evaluation results, we conclude the Gabor descriptor combined with Dominant Color descriptor provides better performance, obtaining its accuracy more than 91%.
机译:本文评估了十四个描述符,用于城乡航空图像分类。在这十四个描述符中,11个描述符包括基于纹理的基于颜色的Con组合,这两个描述符组合。 REST三个描述符基于使用LEMPEL-ZIV-WELCH(LZW)数据压缩算法生成的词典。使用径向基函数作为内核功能和KNN算法,使用支持向量机(SVM)进行分类。使用精度,精度,灵敏度和特异性来评估这些图像描述符的性能。根据评估结果,我们得出结论Gabor描述符与主导颜色描述符相结合提供更好的性能,从而获得其精度超过91%。

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