测绘通报 ›› 2018, Vol. 0 ›› Issue (3): 60-65.doi: 10.13474/j.cnki.11-2246.2018.0076

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Improvement of CA-Markov Model for Extended Modeling of Urban Built-up Area

LI Jing1, CHEN Yunbo2, LIU Xiaoqian3,4, PEI Tao3, SHI Kun1, LI Xiangxin1,5   

  1. 1. Kunming University of Science and Technology, Kunming 650093, China;
    2. Kunming Urban Planning & Information Center, Kunming 650500, China;
    3. Institute of Geographic Sciences and Natural Resources Research State Key Laboratory of Resources and Environmental Information System, Beijing 100101, China;
    4. College of Arts and Science of Beijing Union University, Beijing 100191, China;
    5. Surveying and Mapping Geo-informatics Technology Research Center on Plateau Montains of Yunnan Higher Education, Kunming 650093, China
  • Received:2017-09-19 Revised:2018-01-26 Online:2018-03-25 Published:2018-04-03

Abstract:

The prediction of the expansion of urban built-up areas is an important management basis for preventing the spread of cities.At present,the CA-Markov model has become an important method for the expansion of urban built-up areas.The model is more sensitive to the method of index weight assignment.In the past,the single index assignment method affected the accuracy and credibility of the extended prediction of urban built-up areas.To this end,this paper proposes to improve the CA-Markov model by integrating AHP and logistic regression models based on the traditional weighted assignment method.The paper selects Dali city,Yunnan province as a case study to simulate and forecast the expansion of urban built-up areas in 2020 and 2030,and finally verifies the accuracy.The results show that:①Kappa index can reach 96.8%,the prediction results have a good consistency.②The expansion of urban built-up areas in Dali City continues to expand outward,with the southeast and northwest directions as the main expansion direction between the two built-up areas.Research provides a combination of weight assignment method to improve the CA-Markov model,which will provide planners with strong support in the future planning.

Key words: urban expansion simulation, CA-Markov model, analytical hierarchy process, logistic regression model, integrated analytic hierarchy process and logistic regression model

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