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Bayesian parameter estimation of strength distribution for highly accelerated life testing data
- Yang, Il Young;
- Bae, Suk Joo;
- Park, Jung Won
초록
HALT(Highly Accelerated Life Test) technique is an accelerated method which uses stresses higher than the field environments to expose and then improve design weakness which can be explained stress-strength model. Because HALT is conducted at the design phase, there are some constraints to analyze the data. For analyzing HALT data through step-stress tests, It is very important to estimate parametersof strength distribution accurately. In estimating parameters of strength distribution, ML (maximum likelihood) methods have been widely used. We propose a Bayesian method to model the HALT data for both complete data and censored data. Metropolis-Hasting algorithm is used to estimate posterior distribution.
키워드
Highly Accelerated Life Test; Bayesian Parameter Estimation; Cecsored data; Markov Chain Monte CARLO Simulation; Step-Stress test; Credible interval
- 제목
- Bayesian parameter estimation of strength distribution for highly accelerated life testing data
- 저자
- Yang, Il Young; Bae, Suk Joo; Park, Jung Won
- 발행일
- 2014-07
- 유형
- Proceeding
- 저널명
- 13th China-Korea Quality Symposium
- 권
- 2014
- 페이지
- 400 ~ 404