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首页> 外文期刊>Arabian journal of geosciences >An integrated object-based image analysis and CA-Markov model approach for modeling land use/land cover trends in the Sarab plain
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An integrated object-based image analysis and CA-Markov model approach for modeling land use/land cover trends in the Sarab plain

机译:基于集成对象的图像分析和CA-Markov模型方法,用于落地落地落地土地利用/土地覆盖趋势

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摘要

The present paper is an attempt to integrate a semiautomated object-based image analysis (OBIA) classification framework and a cellular automata-Markov model to study land use/land cover (LULC) changes. Land use maps for the Sarab plain in Iran for the years 2000, 2006, and 2014 were created from Landsat satellite data, by applying an OBIA classification using the normalized difference vegetation index, salinity index, moisture stress index, soil-adjusted vegetation index, and elevation and slope indicators. The classifications yielded overall accuracies of 91, 93, and 94% for 2000, 2006, and 2014, respectively. Finally, using the transition matrix, the spatial distribution of land use was simulated for 2020. The results of the study revealed that the number of orchards with irrigated agriculture and dry-farm agriculture in the Sarab plain is increasing, while the amount of bare land is decreasing. The results of this research are of great importance for regional authorities and decision makers in strategic land use planning.
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