Inferences About the Probability of Success, Given the Value of a Covariate, Using a Nonparametric Smoother

Q3 Mathematics
R. Wilcox
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引用次数: 1

Abstract

For a binary random variable Y, let p(x) = P(Y = 1 | X = x) for some covariate X. The goal of computing a confidence interval for p(x) is considered. In the logistic regression model, even a slight departure difficult to detect via a goodness-of-fit test can yield inaccurate results. The accuracy of a confidence interval can deteriorate as the sample size increases. The goal is to suggest an alternative approach based on a smoother, which provides a more flexible approximation of p(x).
使用非参数平滑器对给定协变量值的成功概率的推断
对于二元随机变量Y,设p(x)=p(Y=1|x=x)对于某些协变量x。在逻辑回归模型中,即使是难以通过拟合优度检验检测到的微小偏差也可能产生不准确的结果。置信区间的准确性可能随着样本量的增加而恶化。目标是提出一种基于平滑器的替代方法,该方法提供了p(x)的更灵活的近似。
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来源期刊
CiteScore
0.50
自引率
0.00%
发文量
5
期刊介绍: The Journal of Modern Applied Statistical Methods is an independent, peer-reviewed, open access journal designed to provide an outlet for the scholarly works of applied nonparametric or parametric statisticians, data analysts, researchers, classical or modern psychometricians, and quantitative or qualitative methodologists/evaluators.
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