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Spatial modeling of HIV and HSV-2 among women in Kenya with spatially varying coefficients

机译:肯尼亚妇女HIV和HSV-2的空间模型其空间变化系数

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摘要

BackgroundDisease mapping has become popular in the field of statistics as a method to explain the spatial distribution of disease outcomes and as a tool to help design targeted intervention strategies.Most of these models however have been implemented with assumptions that may be limiting or altogether lead to less meaningful results and hence interpretations. Some of these assumptions include the linearity, stationarity and normality assumptions. Studies have shown that the linearity assumption is not necessarily true for all covariates. Age for example has been found to have a non-linear relationship with HIV and HSV-2 prevalence. Other studies have made stationarity assumption in that one stimulus e.g. education, provokes the same response in all the regions under study and this is also quite restrictive. Responses to stimuli may vary from region to region due to aspects like culture, preferences and attitudes.
机译:背景疾病作图作为一种解释疾病结局的空间分布的方法以及作为帮助设计有针对性的干预策略的工具而在统计领域中变得很流行,但是这些模型中的大多数已在可能限制或完全导致不太有意义的结果,因此也无法解释。其中一些假设包括线性,平稳性和正态性假设。研究表明,线性假设不一定对所有协变量都成立。例如,已经发现年龄与HIV和HSV-2患病率呈非线性关系。其他研究在其中一种刺激(例如刺激)中做出了平稳性假设。教育在所有被研究的地区引起了同样的反应,这也有很大的局限性。由于文化,喜好和态度等因素,对刺激的反应可能因地区而异。

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