Sensitivity analysis for nonignorable missing responses with application to multivariate Random effect model
被引:2
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作者:
Samani E.B.
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机构:
Department of Statistics, Faculty of Mathematical Science, Shahid Beheshti University, TehranDepartment of Statistics, Faculty of Mathematical Science, Shahid Beheshti University, Tehran
Samani E.B.
[1
]
Ganjali M.
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机构:
Department of Statistics, Faculty of Mathematical Science, Shahid Beheshti University, TehranDepartment of Statistics, Faculty of Mathematical Science, Shahid Beheshti University, Tehran
Ganjali M.
[1
]
机构:
[1] Department of Statistics, Faculty of Mathematical Science, Shahid Beheshti University, Tehran
Longitudinal studies;
Missing responses;
Mixed ordinal and continuous responses;
Random effect;
D O I:
10.1007/BF03263564
中图分类号:
学科分类号:
摘要:
A joint model with random effects for longitudinal mixed ordinal and continuous responses, with potentially non-random missing values in both types of responses is proposed. The presented model simultaneously considers a multivariate probit regression model for the missing mechanisms, which provides the ability of examining the missing data assumptions, and a multivariate mixed model for the responses. Random effects are used to take into account the correlation between longitudinal responses of the same individual. A full likelihood-based approach that allows yielding maximum likelihood estimates of the model parameters is used. The joint modeling of responses with the possibility of missing values requires caution since the interpretation of the fitted model highly depends on the assumptions that are unexaminable in a fundamental sense. A sensitivity of the results to the assumptions is also investigated. To illustrate the application of such modeling the longitudinal data of PIAT (Peabody Individual Achievement Test) is analyzed.
机构:
Peking Univ, Dept Probabil & Stat, Beijing, Peoples R ChinaPeking Univ, Dept Probabil & Stat, Beijing, Peoples R China
Li, Yilin
Miao, Wang
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机构:
Peking Univ, Dept Probabil & Stat, Beijing, Peoples R China
Peking Univ, Dept Probabil & Stat, Beijing 100871, Peoples R ChinaPeking Univ, Dept Probabil & Stat, Beijing, Peoples R China
Miao, Wang
Shpitser, Ilya
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机构:
Johns Hopkins Univ, Dept Comp Sci, Baltimore, MD USAPeking Univ, Dept Probabil & Stat, Beijing, Peoples R China
Shpitser, Ilya
Tchetgen, Eric J. Tchetgen J.
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机构:
Univ Penn, Dept Stat, Wharton Sch, Philadelphia, PA USAPeking Univ, Dept Probabil & Stat, Beijing, Peoples R China
机构:
Yunnan Univ, Key Lab Stat Modeling & Data Anal Yunnan Prov, Kunming, Peoples R ChinaYunnan Univ, Key Lab Stat Modeling & Data Anal Yunnan Prov, Kunming, Peoples R China
Zhu, Yujian
Zhao, Puying
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机构:
Yunnan Univ, Key Lab Stat Modeling & Data Anal Yunnan Prov, Kunming, Peoples R ChinaYunnan Univ, Key Lab Stat Modeling & Data Anal Yunnan Prov, Kunming, Peoples R China