Nada I. Alrashed

Work place: Princess Noura bint AbdAlrahman University, Riyadh, KSA

E-mail: nada12.ksa@gmail.com

Website:

Research Interests: Computer Science & Information Technology, Computer systems and computational processes, Theoretical Computer Science

Biography

Nada I. Alrashed received B.Sc. degree in Computer Science from College of Computer Science and Information at Princess Noura bint AbdulRahman University in 2014,Saudi Arabia, and now I’m working as teacher in Computer Sciences department in Princess Noura bint AbdulRahman University

Author Articles
Supervised Classification Approaches to Analyze Hyperspectral Dataset

By Sahar A. El Rahman Wateen A. Aliady Nada I. Alrashed

DOI: https://doi.org/10.5815/ijigsp.2015.05.05, Pub. Date: 8 Apr. 2015

In this paper, Spectral Angle Mapper (SAM) and Spectral Information Divergence (SID) classification approaches were used to classify hyperspectral image of Georgia, USA, using Environment of Visualizing Images (ENVI). It is a software application used to process and analyze geospatial imagery. Spatial, spectral subset and atmospheric correction have been performed for SAM and SID algorithms. Results showed that classification accuracy using the SAM approach was 72.67%, and SID classification accuracy was 73.12%. Whereas, the accuracy of SID approach is better than SAM approach. Consequently, the two approaches (SID and SAM) have proven to be accurately converged in classification of hyperspectral image of Georgia, USA.

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