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New algorithm for constructing area-based index with geographical heterogeneities and variable selection: An application to gastric cancer screening

机译:基于地理异质性和可变选择构建基于面积指数的新算法:胃癌筛选的应用

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摘要

To optimally allocate health resources, policy planners require an indicator reflecting the inequality. Currently, health inequalities are frequently measured by area-based indices. However, methodologies for constructing the indices have been hampered by two difficulties: 1) incorporating the geographical relationship into the model and 2) selecting appropriate variables from the high-dimensional census data. Here, we constructed a new area-based health coverage index using the geographical information and a variable selection procedure with the example of gastric cancer. We also characterized the geographical distribution of health inequality in Japan. To construct the index, we proposed a methodology of a geographically weighted logistic lasso model. We adopted a geographical kernel and selected the optimal bandwidth and the regularization parameters by a two-stage algorithm. Sensitivity was checked by correlation to several cancer mortalities/screening rates. Lastly, we mapped the current distribution of health inequality in Japan and detected unique predictors at sampled locations. The interquartile range of the index was 0.0001 to 0.354 (mean: 0.178, SD: 0.109). The selections from 91 candidate variables in Japanese census data showed regional heterogeneities (median number of selected variables: 29). Our index was more correlated to cancer mortalities/screening rates than previous index and revealed several geographical clusters with unique predictors.
机译:为了最佳地分配健康资源,政策规划者需要一个反映不平等的指标。目前,经常通过基于面积的指数来衡量健康不平等。然而,构造指标的方法是通过两个困难而受到阻碍的:1)将地理关系结合到模型中,2)从高维人口普查数据中选择适当的变量。在这里,我们使用地理信息构建了一种新的基于地区的健康覆盖率指数和具有胃癌的例子的可变选择程序。我们还表现了日本健康不平等的地理分布。为了构建指数,我们提出了一个地理加权物流套索模型的方法。我们采用了一个地理核,并通过两阶段算法选择了最佳带宽和正则化参数。通过与几种癌症死亡率/筛选率相关的相关性检查敏感性。最后,我们映射了日本的当前健康不平等的分布,并在采样地点检测到独特的预测因子。指数的四分位数范围为0.0001至0.354(平均值:0.178,SD:0.109)。日本人口普查数据中的91个候选变量的选择显示了区域异质性(所选变量的中位数:29)。我们的指数与癌症死亡率/筛选率比以前的索引更相关,并揭示了几个具有独特预测因子的地理集群。

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