Volume : IV, Issue : VII, July - 2015
Agile Segmentation And Classification For Hyper Spectral Image Using Harris Corner Detector
S. Pavithra, A. Sathiyavani
Abstract :
A set of high–resolution remote sensing images covering multiple spatial features, we propose an classification based on unsupervised technique including pixel–wise and sub–pixel–wise methods to detect possible built–up areas from remote sensing images. The motivation behind is that the frequently recurring appearance patterns or repeated textures corresponding to common objects of interest in the input image data set can help us distinguish built–up areas from other features. In our proposed method have two main steps First, extract a large set of corners from each input image by an improved Harris corner detector. In the second step we incorporate the extracted corners into a likelihood function to locate candidate regions in input image. Experimental results demonstrated that the proposed approach have got accurate estimation compare to the existing algorithms in terms of detection accuracy.
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DOI : 10.36106/ijsr
Cite This Article:
S.Pavithra, A.Sathiyavani Agile Segmentation and Classification for
Hyper Spectral Image Using Harris Corner
Detector International Journal of Scientific Research, Vol : 4, Issue : 7 July 2015
Number of Downloads : 615
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S.Pavithra, A.Sathiyavani Agile Segmentation and Classification for Hyper Spectral Image Using Harris Corner Detector International Journal of Scientific Research, Vol : 4, Issue : 7 July 2015
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