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Investigating the power of goodness-of-fit tests for multinomial logistic regression

机译:研究拟合优度检验对多项逻辑回归的影响

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Goodness-of-fit tests are important to assess if the model fits the data. In this paper we investigate the Type I error and power of two goodness-of-fit tests for multinomial logistic regression via a simulation study. The GoF test using partitioning strategy (clustering) in the covariate space, was compared with another test, C-g which was based on grouping of predicted probabilities. The power of both tests was investigated when the quadratic term or an interaction term were omitted from the model. The proposed test shows good Type I error and ample power except for models with highly skewed covariate distribution. The proposed test also has good power in detecting omission of continuous interaction term.The application on a real dataset was performed to illustrate the use of goodness-of-fit test for multinomial logistic regression in practice using R.
机译:拟合优度测试对于评估模型是否适合数据很重要。在本文中,我们通过模拟研究调查了多项拟合优度检验的多项式逻辑回归的I型误差和功效。将在协变量空间中使用分区策略(聚类)的GoF检验与另一项检验C-g(基于预测概率的分组)进行了比较。当模型中省略了二次项或相互作用项时,研究了两种检验的功效。所提出的测试显示出良好的I型错误和强大的功效,但协变量分布高度偏斜的模型除外。所提出的测试在检测连续交互项的遗漏方面也具有很好的功效。在实际数据集上的应用说明了拟合优度检验在实际使用R进行多项式逻辑回归中的应用。

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