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The Analysis of Misclassified Ordinal Data from Designed Experiments

机译:设计实验对序数数据分类错误的分析

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Standard analyses of ordinal data from designed experiments assume that the data are not misclassified. This article considers the impact of ignoring misclassification and presents a Bayesian approach to account for it. Misclassification depends on the probabilities of misclassifying an item with a given true category to the other categories. Both the cases of known and estimated misclassification probabilities are considered. The analysis methodology is illustrated with data from a real experiment and is assessed using a simulation study. Copyright (c) 2014 John Wiley & Sons, Ltd.
机译:来自设计实验的序数数据的标准分析假设该数据没有错误分类。本文考虑了忽略错误分类的影响,并提出了一种贝叶斯方法来解决它。分类错误取决于将具有给定真实类别的项目错误分类为其他类别的可能性。已知和估计错误分类概率的情况都被考虑。分析方法用真实实验中的数据进行说明,并使用模拟研究进行评估。版权所有(c)2014 John Wiley&Sons,Ltd.

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