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Semiparametric support vector machine for accelerated failure time model
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  • Semiparametric support vector machine for accelerated failure time model
  • Semiparametric support vector machine for accelerated failure time model
저자명
Hwang. Chang-Ha,Shim. Joo-Yong
간행물명
한국데이터정보과학회지
권/호정보
2010년|21권 4호|pp.765-775 (11 pages)
발행정보
한국데이터정보과학회
파일정보
정기간행물|ENG|
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기타
이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

For the accelerated failure time (AFT) model a lot of effort has been devoted to develop effective estimation methods. AFT model assumes a linear relationship between the logarithm of event time and covariates. In this paper we propose a semiparametric support vector machine to consider situations where the functional form of the effect of one or more covariates is unknown. The proposed estimating equation can be computed by a quadratic programming and a linear equation. We study the effect of several covariates on a censored response variable with an unknown probability distribution. We also provide a generalized approximate cross-validation method for choosing the hyper-parameters which affect the performance of the proposed approach. The proposed method is evaluated through simulations using the artificial example.