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Enhancing Areal Interpolation Frameworks through Dasymetric Refinement to Create Consistent Population Estimates across Censuses

机译:通过等轴测距细化增强地域插值框架以创建跨人口普查的一致人口估计

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摘要

To assess micro-scale population dynamics effectively, demographic variables should be available over temporally consistent small area units. However, fine-resolution census boundaries often change between survey years. This research advances areal interpolation methods with dasymetric refinement to create accurate consistent population estimates in 1990 and 2000 (source zones) within tract boundaries of the 2010 census (target zones) for five demographically distinct counties in the U.S. Three levels of dasymetric refinement of source and target zones are evaluated. First, residential parcels are used as a binary ancillary variable prior to regular areal interpolation methods. Second, Expectation Maximization (EM) and its data-extended version leverage housing types of residential parcels as a related ancillary variable. Finally, a third refinement strategy to mitigate the overestimation effect of large residential parcels in rural areas uses road buffers and developed land cover classes. Results suggest the effectiveness of all three levels of dasymetric refinement in reducing estimation errors. They provide a first insight into the potential accuracy improvement achievable in varying geographic and demographic settings but also through the combination of different refinement strategies in parts of a study area. Such improved consistent population estimates are the basis for advanced spatio-temporal demographic research.
机译:为了有效评估微观规模的人口动态,应在时间上一致的小面积单位上提供人口统计学变量。但是,高分辨率的普查边界通常在调查年之间发生变化。这项研究改进了采用插值法的面插值方法,以在1990年和2000年(美国地区)的五个人口统计学上不同的县的2010年人口普查区域(目标区)内创建准确一致的人口估计值。评估目标区域。首先,在常规面积插值方法之前,将住宅地块用作二进制辅助变量。其次,期望最大化(EM)及其数据扩展版本将住宅包裹的住房类型作为相关的辅助变量。最后,为缓解农村地区大型住宅地块的高估效应而提出的第三种改进策略是使用道路缓冲带和发达的土地覆盖类别。结果表明,在减少估计误差的过程中,所有三个级别的细化精炼都是有效的。他们提供了对在不同地理和人口环境中可以实现的潜在准确性提高的初步见解,而且还结合了研究区域某些部分中不同的提炼策略。这样改进的一致的人口估计数是进行高级时空人口统计学研究的基础。

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