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Assessing Influence in Multiple Linear Regression With Incomplete Data

 

作者: WeichungJ. Shih,   Sanford Weisberg,  

 

期刊: Technometrics  (Taylor Available online 1986)
卷期: Volume 28, issue 3  

页码: 231-239

 

ISSN:0040-1706

 

年代: 1986

 

DOI:10.1080/00401706.1986.10488130

 

出版商: Taylor & Francis Group

 

关键词: Diagnostics;Cook's distance

 

数据来源: Taylor

 

摘要:

The problem of assessing influence and detecting influential cases in multiple linear regression with incomplete data is considered. A case is said to be influential if appreciable changes in fitted regression coefficients occur when it is removed from the data. A one-step influence measure is derived, based on the EM algorithm for detecting cases that are influential in the maximum likelihood estimation of the regression coefficients. Results are compared with the (complete data) Cook's distance measure. Techniques are demonstrated by examples.

 

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