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Ordinal logistic regression models: application in quality of life studies

机译:有序逻辑回归模型:在生活质量研究中的应用

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Quality of life has been increasingly emphasized in public health research in recent years. Typically, the results of quality of life are measured by means of ordinal scales. In these situations, specific statistical methods are necessary because procedures such as either dichotomization or misinformation on the distribution of the outcome variable may complicate the inferential process. Ordinal logistic regression models are appropriate in many of these situations. This article presents a review of the proportional odds model, partial proportional odds model, continuation ratio model, and stereotype model. The fit, statistical inference, and comparisons between models are illustrated with data from a study on quality of life in 273 patients with schizophrenia. All tested models showed good fit, but the proportional odds or partial proportional odds models proved to be the best choice due to the nature of the data and ease of interpretation of the results. Ordinal logistic models perform differently depending on categorization of outcome, adequacy in relation to assumptions, goodness-of-fit, and parsimony.
机译:近年来,公共卫生研究越来越强调生活质量。通常,生活质量的结果通过序数刻度来衡量。在这些情况下,必须使用特定的统计方法,因为诸如结果变量分布的二分法或错误信息之类的过程可能会使推理过程复杂化。序数逻辑回归模型适用于许多情况。本文介绍了比例赔率模型,部分比例赔率模型,连续比率模型和刻板印象模型。通过对273名精神分裂症患者的生活质量进行的研究数据说明了模型之间的拟合,统计推断和比较。所有测试的模型都显示出良好的拟合度,但是由于数据的性质和易于解释的结果,比例赔率或部分比例赔率模型被证明是最佳选择。顺序逻辑模型的执行效果取决于结果的分类,相对于假设的适当性,拟合优度和简约性。

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