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WEIGHTED RANK REGRESSION WITH DUMMY VARIABLES FOR ANALYZING ACCELERATED LIFE TESTING DATA

Authors
Park, Jong InBae, Suk Joo
Issue Date
Mar-2010
Publisher
University of Texas at El Paso
Keywords
dummy variable technique; weighted least squares; rank regression method; probability plot; accelerated life test; stress-life relationship
Citation
International Journal of Industrial Engineering : Theory Applications and Practice, v.17, no.3, pp 236 - 245
Pages
10
Indexed
SCIE
SCOPUS
Journal Title
International Journal of Industrial Engineering : Theory Applications and Practice
Volume
17
Number
3
Start Page
236
End Page
245
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/175317
ISSN
1072-4761
1943-670X
Abstract
In this article, we propose a new rank regression model to extrapolate the product lifetimes at normal operation environment from accelerated testing data. Weighted least squares method is used to compensate for nonconstant error variance in the regression model. A group of dummy variables is incorporated to check model adequacy. We also developed customizing software for quick-and-easy implementation of the method so that reliability engineers can easily exploit it. Simulation studies show that, under light censoring, the proposed method performs comparatively well in predicting the lifetimes even with small sample sizes. With its computational ease and graphical presentation, the proposed method is expected to be more popular among reliability engineers.
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