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Constructing geographic areas for cancer data analysis: a case study on late-stage breast cancer risk in Illinois.

机译:构建用于癌症数据分析的地理区域:伊利诺伊州晚期乳腺癌风险的案例研究。

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摘要

Analysis of cancer data, particularly with a small geographic unit, often suffers from the small population (numbers) problem, which causes unstable rate estimates and data suppression in sparsely populated areas. This research proposes a regionalization approach to mitigate the problem by constructing larger areas in Geographic Information Systems (GIS) that are more coherent than geopolitical areas or arbitrary zip code area and census units in terms of attribute and spatial closeness. The method is applied to analysis of late-stage breast cancer risks in Illinois in 2000. Cancer rates in these newly-constructed areas have sufficiently large base population, and are thus more reliable and also conform to a normal distribution. This permits direct mapping, exploratory spatial data analysis, and even simple OLS regression. The method can be used to effectively mitigate the small population problem commonly encountered in analysis of public health data.
机译:癌症数据的分析,特别是在地理区域较小的情况下,通常会遇到人口(数量)少的问题,这会导致人口稀少地区的速率估算不稳定和数据抑制。这项研究提出了一种区域化方法,通过在地理信息系统(GIS)中构建比地缘政治区域或任意邮政编码区域和人口普查单位在属性和空间紧密度方面更连贯的更大区域来缓解该问题。该方法用于分析2000年伊利诺伊州的晚期乳腺癌风险。这些新近建成地区的癌症发生率具有足够大的基本人口,因此更加可靠,并且符合正态分布。这允许直接映射,探索性空间数据分析,甚至是简单的OLS回归。该方法可用于有效缓解公共卫生数据分析中经常遇到的人口少的问题。

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