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Spatially disaggregated population estimates in the absence of national population and housing census data

机译:在没有全国人口和住房普查数据的情况下按人口分类的人口估计

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摘要

Population numbers at local levels are fundamental data for many applications, including the delivery and planning of services, election preparation, and response to disasters. In resource-poor settings, recent and reliable demographic data at subnational scales can often be lacking. National population and housing census data can be outdated, inaccurate, or missing key groups or areas, while registry data are generally lacking or incomplete. Moreover, at local scales accurate boundary data are often limited, and high rates of migration and urban growth make existing data quickly outdated. Here we review past and ongoing work aimed at producing spatially disaggregated local-scale population estimates, and discuss how new technologies are now enabling robust and cost-effective solutions. Recent advances in the availability of detailed satellite imagery, geopositioning tools for field surveys, statistical methods, and computational power are enabling the development and application of approaches that can estimate population distributions at fine spatial scales across entire countries in the absence of census data. We outline the potential of such approaches as well as their limitations, emphasizing the political and operational hurdles for acceptance and sustainable implementation of new approaches, and the continued importance of traditional sources of national statistical data.
机译:地方一级的人口数量是许多应用程序的基本数据,包括服务的提供和计划,选举的准备以及对灾难的响应。在资源匮乏的环境中,经常会缺少国家以下级别的最新可靠的人口统计数据。全国人口和住房普查数据可能过时,不准确或缺少关键组或关键区域,而注册表数据通常缺少或不完整。此外,在地方尺度上,准确的边界数据通常受到限制,而且高迁移率和城市增长速度使得现有数据很快过时了。在这里,我们回顾了过去和正在进行的工作,这些工作旨在得出按空间分类的本地人口估计数,并讨论了新技术如何现在能够提供可靠且具有成本效益的解决方案。在获得详细的卫星图像,用于现场调查的地理定位工具,统计方法和计算能力方面的最新进展,使得能够开发和应用能够在没有人口普查数据的情况下在整个国家的精细空间范围内估计人口分布的方法。我们概述了这种方法的潜力及其局限性,强调了接受和可持续实施新方法的政治和操作障碍,以及传统的国家统计数据来源的持续重要性。

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