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The logistic regression model with response variables subject to randomized response

机译:响应变量服从随机响应的逻辑回归模型

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The univariate and multivariate logistic regression model is discussed where response variables are subject to randomized response (RR). RR is an interview technique that can be used when sensitive questions have to be asked and respondents are reluctant to answer directly. RR variables may be described as misclassified categorical variables where conditional misclassification probabilities are known. The univariate model is revisited and is presented as a generalized linear model. Standard software can be easily adjusted to take into account the RR design. The multivariate model does not appear to have been considered elsewhere in an RR setting; it is shown how a Fisher scoring algorithm can be used to take the RR aspect into account. The approach is illustrated by analyzing RR data taken from a study in regulatory non-compliance regarding unemployment benefit.
机译:讨论了单变量和多元逻辑回归模型,其中响应变量受随机响应(RR)的影响。 RR是一种采访技术,可用于必须提出敏感问题且受访者不愿直接回答的情况。在已知条件错误分类概率的情况下,RR变量可以描述为错误分类的类别变量。再次讨论单变量模型并将其表示为广义线性模型。可以轻松调整标准软件,以考虑到RR设计。在RR设置的其他地方似乎没有考虑过多元模型;展示了如何使用Fisher评分算法来考虑RR方面。通过分析从有关失业救济的法规不遵从研究中获得的RR数据来说明这种方法。

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