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Improving texture description in remote sensing image multi-scale classification tasks by using visual words | IEEE Conference Publication | IEEE Xplore

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


Abstract:

Although texture features are important for region-based classification of remote sensing images, the literature shows that texture descriptors usually have poor performa...Show More

Abstract:

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.
Date of Conference: 11-15 November 2012
Date Added to IEEE Xplore: 14 February 2013
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Conference Location: Tsukuba, Japan

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