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Land-use regionalization based on landscape pattern indices using rough set theory and catastrophe progression method

机译:基于景观格局指数的粗糙集理论和巨灾进展方法的土地利用分区

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摘要

This study presents the rough set theory and catastrophe progression method to regionalize the land-use change and to analyze the land ecological process. It uses the land-use database of Yixing City of Jiangsu Province, an urbanized and industrialized city in Yangtze River Delta of China, as an exemplification. The study area is divided into six kinds of land-use types according to the national standard of land-use classification. It includes arable land, garden, woodland, urban-rural construction land, water, and unused land. The six kinds of land-use types are formed into their corresponding landscape types in the scale of 1:10,000 by the aid of ArcGIS9.3 software of ESRI. In ArcGIS9.3, the landscape pattern indices are calculated by using Fragstats (raster version 3.3) software. Based on these landscape pattern indices, an integrated indicator system of landscape regionalization of land use in Yixing was established, and land-use regionalization models are set up using the catastrophe theory. Rough set theory is introduced to avoid the subjectivity in the indicator's importance in catastrophe models. The hidden rule among the raw data is acquired by knowledge reduction of the data mining in the rough set theory. In the process, indicators needed to be arranged according to the computed importance of an attribute without considering the determination of weight function. This greatly avoids the subjectivity in the process of weight factor determination. The zoning of land use based on landscape indices finally is made by the multi-indicator integrated catastrophe progression method. According to these indices, Yixing is divided into four grading land-use zones when the rough set and catastrophe progression methods are combined. The zones include high-, medium-, low-, and weak-intensity zones, indicating that land use primarily varies the landscape pattern. With the increase of water and forest area proportion, the human disturbance to land system wanes; patch fragmentation reduces; patch shape complexity enhances; and landscape diversity decreases. Moreover, it can mostly avoid the subjective evaluation in artificially determining factor weights by using rough set theory. It makes the zoning results more objective and exact.
机译:本研究提出了粗糙集理论和巨灾进展方法,对土地利用变化进行区域划分并分析了土地生态过程。它以江苏省宜兴市的土地利用数据库为例,江苏宜兴市是中国长三角的城市化和工业化城市。根据国家土地利用分类标准,研究区域分为六种土地利用类型。它包括耕地,花园,林地,城乡建设用地,水和未使用的土地。借助ESRI的ArcGIS9.3软件,将六种土地利用类型以1:10,000的比例转换为它们对应的景观类型。在ArcGIS9.3中,使用Fragstats(光栅版本3.3)软件计算景观格局指数。基于这些景观格局指数,建立了宜兴市土地利用景观分区的综合指标体系,并建立了基于突变理论的土地利用分区模型。引入粗糙集理论是为了避免在巨灾模型中指标的重要性具有主观性。原始数据之间的隐藏规则是通过粗糙集理论中数据挖掘的知识约简而获得的。在此过程中,需要根据计算出的属性的重要性来安排指标,而无需考虑权重函数的确定。这极大地避免了权重因子确定过程中的主观性。最后,通过多指标综合突变级数法对基于景观指数的土地利用进行分区。根据这些指标,将粗糙集和巨灾递进方法相结合,宜兴被分为四个等级的土地利用区。这些区域包括高强度,中强度,低强度和弱强度区域,表明土地利用主要改变了景观格局。随着水和森林面积比例的增加,人类对土地系统的干扰逐渐减弱。补丁碎片减少;贴片形状的复杂性增强;和景观多样性减少。而且,在使用粗糙集理论人为确定因子权重时,它可以在很大程度上避免主观评估。它使分区结果更加客观和准确。

著录项

  • 来源
    《Environmental earth sciences》 |2015年第4期|1611-1620|共10页
  • 作者单位

    Chongqing Land Resources and Housing Surveying and Planning Institute, Chongqing 400020, China,Chongqing Engineering Research Center of Land Use and Remote-Sense Monitoring, Chongqing 400020, China,School of Geographic and Oceanographic Sciences, Nanjing University, Nanjing 210093, China;

    School of Geographic and Oceanographic Sciences, Nanjing University, Nanjing 210093, China;

    School of Geographic and Oceanographic Sciences, Nanjing University, Nanjing 210093, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Land-use regionalization; Landscape pattern indices; Rough set theory; Catastrophe progression method;

    机译:土地利用区域化;景观格局指数;粗糙集理论;突变进展法;

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