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Land use change prediction of Wuhan city: a Markov-Monte Carlo approach

机译:武汉市土地利用变化预测:Markov-Monte Carlo方法

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Markov model is found to be beneficial in describing and analyzing land cover change process. The probability of transition between each pair of states is recorded as an element of a transition probability matrix, which is the key factor to obtain a higher precision of prediction in Markov model. In this study, a combined use of RS, GIS, Markov stochastic modeling and Monte Carlo simulating techniques are employed in analyzing and prediction land use/cover changes in Wuhan city. The results indicate that the transition probability matrix derived from Monte Carlo experiment is more accurate for land use prediction, and the prediction results of land use change show that there urban growth is has notable, area of forest land continued decreasing, and that the land use/cover change process would be stable in the future. The study demonstrates remote sensing image is an effective data source and statistical information of land use is a valid supplement for land use/land cover research. Integration of these two kinds of data in Markov - Monte Carlo method can adjust the basis of the same observation time when images are not available every year or at a constant time interval in LUCC modeling. Land use/land cover change information from the prediction results will be beneficial in describing, analyzing the change process of land structure in Wuhan city in next 20 years.
机译:发现马尔可夫模型在描述和分析土地覆被变化过程中是有益的。将每对状态之间的转移概率记录为转移概率矩阵的元素,这是在马尔可夫模型中获得更高预测精度的关键因素。在这项研究中,结合使用RS,GIS,Markov随机建模和蒙特卡洛模拟技术,对武汉市的土地利用/覆盖变化进行分析和预测。结果表明,由蒙特卡罗实验得到的过渡概率矩阵对于土地利用的预测更为准确,土地利用变化的预测结果表明,城市增长显着,林地面积持续减少,土地利用变化显着。 / cover更改过程将来会很稳定。研究表明,遥感图像是有效的数据源,土地利用的统计信息是土地利用/土地覆盖研究的有效补充。当在LUCC建模中每年或以固定的时间间隔无法获得图像时,在Markov-Monte Carlo方法中整合这两种数据可以调整同一观测时间的基础。预测结果中的土地利用/土地覆被变化信息将有助于描述,分析武汉市未来20年土地结构的变化过程。

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