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Linking GRNN and neighborhood selection algorithm to assess land suitability in low-slope hilly areas

机译:结合GRNN和邻域选择算法评估低坡度丘陵区土地适宜性

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摘要

Land resources in mountainous areas have become severely inadequate because of accelerated urbanization and industrialization, rational land exploitation in low-slope hilly areas can solve this issue. Under the protection of ecological security, this study applied a new method that combined generalized regression neural network (GRNN) and neighborhood selection algorithm (NSA) to evaluate the land suitability with a case study in Dali Prefecture, China. Land development potential was also measured and mapped according to the area proportion of land suitable to be exploited in each township. The results demonstrated that 2139 km2and 871 km2of low-slope hilly land were suitable for development of farmland and construction land, respectively. Of this resource, 1687 km2and 419 km2were identified as single-suitability area for farmland and construction land respectively, with 452 km2of multi-suitability area. After trade-off analysis based on NSA, the final area suitable for development of farmland and construction land were 1909 km2and 387 km2respectively, with 4600 km2restricted to development. The township development priority was determined according to the land development potential, which helped for local development planning. The methodology applied in this study provides an effective way to make decisions on land development and management in mountainous areas.
机译:由于城市化和工业化进程的加快,山区土地资源严重不足,低坡度山区合理的土地开发可以解决这一问题。在生态安全的保护下,本研究应用了一种结合广义回归神经网络(GRNN)和邻域选择算法(NSA)的新方法,以大理州为例,对土地的适宜性进行了评估。还根据每个乡镇适合开发的土地面积比例,测量和绘制了土地开发潜力。结果表明:2139 hillkm2和871 km2的低坡丘陵地带分别适合农田建设和建设用地开发。在该资源中,分别确定了1687平方公里和419平方公里的耕地和建设用地单一适宜区,其中452平方公里的综合适宜区。经过基于NSA的权衡分析,适合耕地和建设用地开发的最终面积分别为1909 km2和387 km2,限制发展的面积为4600 km2。根据土地开发潜力确定乡镇发展优先级,这有助于地方发展规划。本研究中使用的方法学为决策山区的土地开发和管理提供了有效的方法。

著录项

  • 来源
    《Ecological indicators》 |2018年第10期|581-590|共10页
  • 作者单位

    Laboratory for Earth Surface Processes, Ministry of Education, College of Urban and Environmental Sciences, Peking University,Key Laboratory for Environmental and Urban Sciences, School of Urban Planning and Design, Shenzhen Graduate School, Peking University;

    State Key Laboratory of Earth Surface Processes and Resource Ecology, Faculty of Geographical Science, Beijing Normal University;

    Laboratory for Earth Surface Processes, Ministry of Education, College of Urban and Environmental Sciences, Peking University,Key Laboratory for Environmental and Urban Sciences, School of Urban Planning and Design, Shenzhen Graduate School, Peking University;

    Laboratory for Earth Surface Processes, Ministry of Education, College of Urban and Environmental Sciences, Peking University;

    Department of Sociology, University of Central Florida;

    Laboratory for Earth Surface Processes, Ministry of Education, College of Urban and Environmental Sciences, Peking University;

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

    Low-slope hilly areas; Land suitability; GRNN; Neighborhood selection algorithm;

    机译:低坡丘陵区土地适宜性GRNN邻域选择算法;

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