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A Modified Landscape Expansion Index Algorithm for Urban Growth Classification Using Satellite Remote Sensing Image

机译:一种使用卫星遥感图像的城市增长分类修改横向扩展指标算法

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摘要

Traditional landscape indices are only able to specify the characteristics of urban area at one particular time. The same landscape index applied at different time would generate different result. A new landscape index, called landscape expansion index (LEI) is able to reflect the specificgrowth type of the urban area using multi-temporal datasets. This paper evaluates the efficiency of LEI algorithm for urban growth classification using several Landsat Thematic Mapper images of Klang Valley, one of the most rapid urban growth areas in Malaysia. The images are pre-processedinto binary images containing the undeveloped and existing region of the study area. The identified new urban region are then classified by incorporating LEI in the classification algorithm. Result shows that LEI has the limitations to properly identify infill and expansion growth. A modifiedLEI is proposed by taking into accounts two parameters: location of the new urban region and the existence of existing region surrounding it. Experiments with all available images produced positive output whereby the modified LEI is capable of correctly classifying urban growth types.
机译:传统的景观指数只能在一个特定的时间指定城市地区的特征。在不同时间应用的相同景观指数会产生不同的结果。一种新的景观指数,称为景观扩展指数(LEI)能够使用多时间数据集反映城市地区的特定生长。本文评估了利用克朗谷的几个Landsat专题映射器射入城市增长分类算法的效率,是马来西亚最迅速的城市增长区之一。图像是包含研究区域未开发和现有区域的预处理型二进制图像。然后通过在分类算法中纳入LEI来分类所确定的新城区。结果表明,LEI具有正确识别填充和扩展增长的局限性。通过考虑到两个参数提出了一种修改的灵秀:新的城市地区的位置以及它周围的现有区域的存在。所有可用图像的实验产生了正输出,修改的LEI能够正确地分类城市生长类型。

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