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A Spatially Disaggregated Areal Interpolation Model Using Light Detection and Ranging-Derived Building Volumes

机译:使用光检测和测距得出的建筑体积的空间分解的区域内插模型

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摘要

Dasymetric areal interpolation is the process by which data are transferred from a spatial unit system for which they are available (source units) to another system for which they are required (target units) with the aid of ancillary information (control units). We propose a spatially disaggregated areal interpolation model for population data using light detection and ranging (LiDAR)-derived building volumes as an ancillary variable. Innovative methods are proposed for model initialization, iterative regression and adjustment, and stopping criteria to deal effectively with control units of unequal size. The model is derived and applied at the control unit level to minimize the modifiable areal unit problem, and an iterative adjustment process is utilized to overcome the spatial heterogeneity problem encountered in earlier approaches. The use of building volume to disaggregate the population into finer scales ensures maximum correspondence with the unit at which the original population data were collected and models not only the horizontal but also the vertical population distribution. A case study for Round Rock, Texas, demonstrates that the proposed spatially disaggregated model using LiDAR-derived building volumes outperforms earlier areal interpolation models using traditional area- and length-based ancillary variables.
机译:轴测面内插法是通过辅助信息(控制单元)将数据从可用数据的空间单元系统(源单元)传输到需要数据的另一系统(目标单元)的过程。我们建议使用光检测和测距(LiDAR)衍生的建筑体积作为辅助变量,针对人口数据提出一种按空间分类的区域插值模型。提出了用于模型初始化,迭代回归和调整以及停止准则的创新方法,以有效处理大小不等的控制单元。该模型被导出并应用于控制单元级别,以最小化可修改的面积单元问题,并且使用迭代调整过程来克服早期方法中遇到的空间异质性问题。使用建筑体积将人口分解为更细的比例可确保与原始人口数据收集单位的最大对应关系,并不仅对水平人口分布而且对垂直人口分布进行建模。德克萨斯州朗德罗克(Round Rock)的案例研究表明,使用基于LiDAR的建筑体积提出的空间分解模型优于使用传统基于面积和长度的辅助变量的早期区域插值模型。

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  • 来源
    《Geographical analysis 》 |2013年第3期| 238-258| 共21页
  • 作者

    Harini Sridharan; Fang Qiu;

  • 作者单位

    Geographic Information Science & Technology, Oak Ridge National Laboratory, Oak Ridge, TN, USA;

    Geospatial Sciences, The University of Texas at Dallas, 800 W. Campbell Road, Richardson, TX 75080;

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  • 正文语种 eng
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