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Test-Based Interval Estimation Under the Accelerated Failure Time Model
Authors:Yichuan Zhao  Yijian Huang
Institution:1. Department of Mathematics and Statistics , Georgia State University , Atlanta, Georgia, USA yzhao@mathstat.gsu.edu;3. Department of Biostatistics , School of Public Health, Emory University , Atlanta, Georgia, USA
Abstract:Some new results of a distance—based (DB) model for prediction with mixed variables are presented and discussed. This model can be thought of as a linear model where predictor variables for a response Y are obtained from the observed ones via classic multidimensional scaling. A coefficient is introduced in order to choose the most predictive dimensions, providing a solution to the problem of small variances and a very large number n of observations (the dimensionality increases as n). The problem of missing data is explored and a DB solution is proposed. It is shown that this approach can be regarded as a kind of ridge regression when the usual Euclidean distance is used.
Keywords:Confidence region  Counting process  Estimating equation  Right-censoring  Wilks's theorem
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