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SAS macro programs for geographically weighted generalized linear modeling with spatial point data: Applications to health research

机译:具有空间点数据的地理加权广义线性建模的SAS宏程序:在健康研究中的应用

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摘要

An increasing interest in exploring spatial non-stationarity has generated several specialized analytic software programs; however, few of these programs can be integrated natively into a well-developed statistical environment such as SAS. We not only developed a set of SAS macro programs to fill this gap, but also expanded the geographically weighted generalized linear modeling (GWGLM) by integrating the strengths of SAS into the GWGLM framework. Three features distinguish our work. First, the macro programs of this study provide more kernel weighting functions than the existing programs. Second, with our codes the users are able to better specify the bandwidth selection process compared to the capabilities of existing programs. Third, the development of the macro programs is fully embedded in the SAS environment, providing great potential for future exploration of complicated spatially varying coefficient models in other disciplines. We provided three empirical examples to illustrate the use of the SAS macro programs and demonstrated the advantages explained above.
机译:人们对探索空间非平稳性的兴趣日益浓厚,产生了一些专门的分析软件程序;但是,这些程序很少能本地集成到发达的统计环境(例如SAS)中。我们不仅开发了一套SAS宏程序来填补这一空白,而且通过将SAS的优势整合到GWGLM框架中来扩展了地理加权的广义线性建模(GWGLM)。三个特点使我们的工作与众不同。首先,本研究的宏程序比现有程序提供更多的内核加权功能。其次,与现有程序的功能相比,使用我们的代码,用户可以更好地指定带宽选择过程。第三,宏程序的开发完全嵌入到SAS环境中,为将来在其他学科中探索复杂的空间变化系数模型提供了巨大的潜力。我们提供了三个经验示例来说明SAS宏程序的用法,并演示了上述优点。

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