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Multi-temporal monitoring of cotton growth through the vegetation profile classification for Tashkent province, Uzbekistan Cover

Multi-temporal monitoring of cotton growth through the vegetation profile classification for Tashkent province, Uzbekistan

Open Access
|Jun 2020

Abstract

As satellite data of the Earth surface seems to be of vital importance for many applications, classification of land use and land cover has been found to vary dramatically in different approaches. In this paper, modified classification algorithm of remote sensing data is presented for processing medium and high spatial resolution satellite images like Landsat and Sentinel in Tashkent province of Uzbekistan. The results of NDVI (Normalized difference vegetation index) profile analysis via Spectral Correlation Mapper classification are shown for the period 1994-2017. It is implied, that combination of optical and radar data with application of Spectral Correlation Mapper classification improve the results of classification for a specific dataset by considering such factors as overall classification accuracy and time and labor involved.

Language: English
Page range: 62 - 69
Submitted on: Jan 23, 2019
Accepted on: Jun 4, 2020
Published on: Jun 29, 2020
Published by: Jan Evangelista Purkyně University in Ústí nad Labem
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2020 Jasmina Gerts, Mukhiddin Juliev, Alim Pulatov, published by Jan Evangelista Purkyně University in Ústí nad Labem
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.