Efficient Segmentation of Remote Sensing Images Using New Clustering Algorithm

Abstract

Segmentation of real-world remote sensing images is challenging because of the large size of those data, particularly for very high resolution imagery. For segmentation of remote sensing images, many algorithms have been proposed, to provide accurate results of segmentation by using this new proposed model. Here segmentation can be done by using improved 2D gradient histogram and MMAD (minimum mean absolute deviation) model. This proposed algorithm comes under ‘Thresholding ’ , the optimal threshold value can find by using MMAD model. Experiments on remote sensing images indicate that the new algorithm provides accurate segmentation results, particularly for images characterized by Laplace distribution histograms.

Authors and Affiliations

Reshma. M, P. Lakshmi Devi

Keywords

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  • EP ID EP21053
  • DOI -
  • Views 227
  • Downloads 3

How To Cite

Reshma. M, P. Lakshmi Devi (2015). Efficient Segmentation of Remote Sensing Images Using New Clustering Algorithm. International Journal for Research in Applied Science and Engineering Technology (IJRASET), 3(7), -. https://europub.co.uk./articles/-A-21053