2020
DOI: 10.1007/s40808-020-00842-6
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Monitoring and modeling of spatio-temporal urban expansion and land-use/land-cover change using markov chain model: a case study in Siliguri Metropolitan area, West Bengal, India

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Cited by 66 publications
(29 citation statements)
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“…The total population of Delhi exceeds 11 million inhabitants, and the annual growth rate was recorded as 3.9 percent during 1991-2001, which is twice the national average [38]. The rapid urban expansion in Delhi has led to the loss of large areas of arable land, which has had a negative impact on urban sustainability [39,40]. Therefore, the issue of urban expansion is considered one of the most urgent issues in Delhi.…”
Section: Study Areamentioning
confidence: 99%
“…The total population of Delhi exceeds 11 million inhabitants, and the annual growth rate was recorded as 3.9 percent during 1991-2001, which is twice the national average [38]. The rapid urban expansion in Delhi has led to the loss of large areas of arable land, which has had a negative impact on urban sustainability [39,40]. Therefore, the issue of urban expansion is considered one of the most urgent issues in Delhi.…”
Section: Study Areamentioning
confidence: 99%
“…To summarise, it was found that GEE aids in the study of LULC shift in a cost-effective and timeconsuming manner, and it is commonly used in the literature (Agarwal and Nagendra 2019;Gomes et al 2020;Noi Phan et al 2020;Sidhu et al 2018;Tamiminia et al 2020;Tassi and Vizzari 2020;Xing et al 2021). CA -Markov chain model helps in determining the future land cover change and their land-use patterns for decision-makers to provide sustainable development (Aburas et al 2018;Ansari and Golabi 2019;Bose and Chowdhury 2020;Faichia et al 2020;Fu et al 2018;116 Ghosh et al 2017;Gidey et al 2017;Halmy et al 2015;Hamad et al 2018;Ozturk 2015). 117 In this work, LULC was classified in the GEE platform using two standard machine learning 118 approaches, the Random Forest (RF) classifier and the Support Vector Machines (SVM).…”
Section: Ca-markov Chain Analysismentioning
confidence: 99%
“…Berg, Alexander C and Grabler, Floraine et.al [14] proposed a methods of parsing images of architectural scenes, where the parsing contents including roof, vegetation, Windows, building boundaries and doors etc part by training feature information of color and texture. Bose, Arghadeep and Chowdhury et.al [15] take the Siliguri metropolitan area in West Bengal, India as the research object, proposes a novelty study methods of Markov Chain model and analyzing the spatial distribution of urban land. Liu, Xudong and Tian, Yongzhong et.al [16] to scientifically plan the urbanization layout and improve the utilization rate of land space, the urban functional areas are identified and analyzed from the perspective of data mining, and taxi trajectory data is used as the research basis for urban functional areas.…”
Section: The Traditional Image Perception Of City and Villagesmentioning
confidence: 99%