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Titlebook: Analysis of Multivariate Survival Data; Philip Hougaard Book 2000 Springer-Verlag New York, Inc. 2000 Multivariate Survival Data.STATISTIC

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期刊全称Analysis of Multivariate Survival Data
影响因子2023Philip Hougaard
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学科分类Statistics for Biology and Health
图书封面Titlebook: Analysis of Multivariate Survival Data;  Philip Hougaard Book 2000 Springer-Verlag New York, Inc. 2000 Multivariate Survival Data.STATISTIC
影响因子Survival data or more general time-to-event data occur in many areas, including medicine, biology, engineering, economics, and demography, but previously standard methods have requested that all time variables are univariate and independent. This book extends the field by allowing for multivariate times. Applications where such data appear are survival of twins, survival of married couples and families, time to failure of right and left kidney for diabetic patients, life history data with time to outbreak of disease, complications and death, recurrent episodes of diseases and cross-over studies with time responses. As the field is rather new, the concepts and the possible types of data are described in detail and basic aspects of how dependence can appear in such data is discussed. Four different approaches to the analysis of such data are presented. The multi-state models where a life history is described as the subject moving from state to state is the most classical approach. The Markov models make up an important special case, but it is also described how easily more general models are set up and analyzed. Frailty models, which are random effects models for survival data, made
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Dimensions of Practical Necessityhe frailties. In other words, it is a conditional independence model. The value of . is constant over time and common to the individuals in the group and thus is responsible for creating dependence. This is the reason for the word ., although it would be more correct to call the models of this chapt
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The Viking Approach to Project Managementtation, whereas a frailty model has an interpretation as a random effects model. In particular for frailty models, it is an advantage to have short-term dependence models for checking the fit of the ordinary shared frailty model. The aim of this chapter is to extend the frailty models to describe bo
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https://doi.org/10.1007/978-3-030-04076-5h, where the estimate is found under the (incorrect) assumption of independence between the coordinates. This yields directly the final estimate of the regression coefficients. The uncertainty of the regression coefficient estimate is evaluated by means of an estimator that accounts for the dependen
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