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Improving texture description in remote sensing image multi-scale classification tasks by using visual words

机译:利用视觉词改善遥感图像多尺度分类任务中的纹理描述

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Although texture features are important for region-based classification of remote sensing images, the literature shows that texture descriptors usually have poor performance when compared and combined with color descriptors. In this paper, we propose a bag-of-visual-words (BOW) “propagation” approach to extract texture features from a hierarchy of regions. This strategy improves efficacy of feature as it encodes texture information independently of the region shape. Experiments show that the proposed approach improves the classification results when compared with global descriptors using the bounding box padding strategy.
机译:尽管纹理特征对于基于区域的遥感图像分类非常重要,但文献表明,纹理描述符与颜色描述符进行比较和组合时通常性能较差。在本文中,我们提出了一种视觉袋(BOW)“传播”方法,以从区域层次结构中提取纹理特征。该策略提高了特征的功效,因为它独立于区域形状来编码纹理信息。实验表明,与使用边界框填充策略的全局描述符相比,该方法改善了分类结果。

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