An integrated approach for simulation and prediction of land use and land cover changes and urban growth (Case study: Sanandaj city in Iran)

M. Shabani, Shadman Darvishi, H. Rabiei-Dastjerdi, A. Alavi, T. Choudhury, K. Solaimani
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引用次数: 1

Abstract

One of the growing areas in the west of Iran is Sanandaj city, the center of Kordestan province, which requires the investigation of the city's growth and the estimation of land degradation. Today, the combination of remote sensing data and spatial models is a useful tool for monitoring and modeling land use and land cover (LULC) changes. In this study, LULC changes and the impact of Sanandaj city growth on land degradation in geographical directions during the period 1989 to 2019 were investigated. Also, the accuracy of three models, artificial neural network-cellular automata (ANN-CA), logistic regressioncellular automata (LR-CA), and the weight of evidence-cellular automata (WOE-CA) for modeling LULC changes was evaluated, and the results of these models were compared with the CA-Markov model. According to the results of the study, ANN-CA, LR-CA, and WOE-CA models, with an accuracy of more than 80%, are efficient and effective for modeling LULC changes and growth of urban areas.
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模拟和预测土地利用和土地覆盖变化与城市增长的综合方法(案例研究:伊朗Sanandaj市)
位于库尔德斯坦省(Kordestan)中心的萨南达季市(Sanandaj)是伊朗西部的一个增长地区,需要对该城市的增长进行调查,并估计土地退化情况。目前,遥感数据和空间模型的结合是监测和模拟土地利用和土地覆盖变化的有用工具。研究了1989 - 2019年萨南达杰城市发展对土地退化的影响。同时,对人工神经网络-元胞自动机(ANN-CA)、logistic回归-元胞自动机(LR-CA)和证据-元胞自动机权重(WOE-CA)三种模型对LULC变化的建模精度进行了评价,并与CA-Markov模型进行了比较。研究结果表明,ANN-CA、LR-CA和WOE-CA模型对城市LULC变化和增长的模拟效率较高,精度均在80%以上。
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来源期刊
CiteScore
2.00
自引率
16.70%
发文量
16
审稿时长
12 weeks
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