Design and development of deep Proximal support vector machine Based filtering and classification Technique for hyper spectral Image datasets
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Abstract
The importance of remote sensing applications and the need required
newlinefor the study on earth science, geography and related military based
newlineapplications, hyperspectral image and its data have become significant all
newlineover the world. Due to which, in this thesis work it is intended to develop
newlinetechniques for improving the quality of hyperspectral images and perform
newlinevarious analysis over them to extract useful information and do necessary
newlineoperations. Earlier multispectral remote sensing methods were more common
newlineand this involves acquiring the near and short wave infrared images pertaining
newlineto broad wavelength patterns. But the limitation of multispectral imaging is
newlinethat it lacks in direct identification and hence is the growth of hyperspectral
newlineimaging that performs identification and material characterization. These
newlinehyperspectral imaging process is capable of attaining images over hundreds of
newlineneighbouring spectral bands.
newlineHyperspectral sensing devices pose the ability for identifying and
newlinequantifying each and every molecule based absorptions. These hyperspectral
newlineimages with higher resolution permits detecting, identifying and quantifying
newlinethe earth surface materials and minerals, and also are able to infer their
newlinebiological and chemical mechanisms. These characteristics of hyperspectral
newlineimaging and the importance of earth science study has intended in the
newlinedevelopment of this research contribution made on the various stages of
newlinehyperspectral imaging process. This thesis is designed for contributions on
newlinepre-processing, filtering, feature extract on classification of hyperspectral
newlineimages. The research contributions made in this thesis are elucidated below.
newline