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首页> 外文期刊>The Indian Journal of Statistics >Inference for Singly Imputed Synthetic Data Based on Posterior Predictive Sampling under Multivariate Normal and Multiple Linear Regression Models
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Inference for Singly Imputed Synthetic Data Based on Posterior Predictive Sampling under Multivariate Normal and Multiple Linear Regression Models

机译:多元正态和多元线性回归模型下基于后验预测采样的单插值合成数据推断

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摘要

Likelihood-based finite sample inference for singly imputed synthetic data generated via posterior predictive sampling is developed in this paper for multivariate normal and multiple linear regression models. Currently available methodology for drawing valid inference on population parameters using synthetic data is based on concepts of multiple imputation for missing data, and therefore requires the release of multiple synthetic datasets. The methodology developed in this paper demonstrates that, contrary to the usual belief, valid inference about meaningful model parameters can indeed be drawn based on a singly imputed synthetic dataset under the multivariate normal and multiple linear regression models, by fully utilizing the model structure.
机译:本文针对多元正态和多元线性回归模型,开发了基于似然性的有限样本推断方法,用于通过后验预测采样生成的单个估算合成数据。当前使用合成数据在总体参数上得出有效推论的可用方法基于对缺失数据的多重估算的概念,因此需要发布多个合成数据集。本文开发的方法论证明,与通常的看法相反,在多元正态和多元线性回归模型下,通过充分利用模型结构,可以基于单个估算的合成数据集对有意义的模型参数进行有效推断。

著录项

  • 来源
    《The Indian Journal of Statistics》 |2015年第2期|293-311|共19页
  • 作者

    Martin Klein; Bimal Sinha;

  • 作者单位

    Research Mathematical Statistician in the Center for Statistical Research and Methodology, U.S. Census Bureau, 4600 Silver Hill Road, Washington, DC 20233, USA;

    U.S. Census Bureau, Washington, USA University of Maryland, Baltimore County, Baltimore, USA,Research Mathematical Statistician in the Center for Disclosure Avoidance Research, U.S. Census Bureau, 4600 Silver Hill Road, Washington, DC 20233, USA Department of Mathematics and Statistics, University of Maryland, Baltimore County, 1000 Hilltop Circle, Baltimore, MD 21250, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Maximum likelihood estimator; Pivot; Posterior predictive sampling; Single imputation; Statistical disclosure control;

    机译:最大似然估计器;枢;后验预测抽样;单一插补;统计披露控制;

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