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首页> 外文期刊>International Journal of Health Geographics >Analyzing spatial aggregation error in statistical models of late-stage cancer risk: a Monte Carlo simulation approach
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Analyzing spatial aggregation error in statistical models of late-stage cancer risk: a Monte Carlo simulation approach

机译:在晚期癌症风险的统计模型中分析空间聚集误差:蒙特卡洛模拟方法

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Purpose This paper examines the effect of spatial aggregation error on statistical estimates of the association between spatial access to health care and late-stage cancer. Methods Monte Carlo simulation was used to disaggregate cancer cases for two Illinois counties from zip code to census block in proportion to the age-race composition of the block population. After the disaggregation, a hierarchical logistic model was estimated examining the relationship between late-stage breast cancer and risk factors including travel distance to mammography, at both the zip code and census block levels. Model coefficients were compared between the two levels to assess the impact of spatial aggregation error. Results We found that spatial aggregation error influences the coefficients of regression-type models at the zip code level, and this impact is highly dependent on the study area. In one study area (Kane County), block-level coefficients were very similar to those estimated on the basis of zip code data; whereas in the other study area (Peoria County), the two sets of coefficients differed substantially raising the possibility of drawing inaccurate inferences about the association between distance to mammography and late-stage cancer risk. Conclusions Spatial aggregation error can significantly affect the coefficient values and inferences drawn from statistical models of the association between cancer outcomes and spatial and non-spatial variables. Relying on data at the zip code level may lead to inaccurate findings on health risk factors.
机译:目的本文研究了空间聚集误差对空间获取医疗服务与晚期癌症之间关系的统计估计的影响。方法采用蒙特卡洛模拟方法,按照人口年龄段的组成比例,对两个伊利诺伊县的邮政编码从人口普查区到人口普查区进行分类。分解后,估计了分级逻辑模型,以检查邮政编码和人口普查区级的晚期乳腺癌与风险因素之间的关系,包括到乳腺X射线摄影的行进距离。在两个级别之间比较模型系数,以评估空间聚集误差的影响。结果我们发现,空间聚集误差会在邮政编码级别上影响回归型模型的系数,而这种影响在很大程度上取决于研究领域。在一个研究区域(凯恩县)中,块级系数与基于邮政编码数据估计的系数非常相似。而在另一个研究区域(皮奥里亚县),两组系数却大不相同,这极大地提高了得出与乳房X线照片的距离与晚期癌症风险之间关联的不正确推断的可能性。结论空间聚集误差可显着影响从癌症结局与空间和非空间变量之间的关联的统计模型得出的系数值和推论。依靠邮政编码级别的数据可能会导致对健康风险因素的发现不正确。

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