TY - JOUR
T1 - A Bilinear Degradation Model Considering Unit-Specific Property
AU - Wen, Xinlei
AU - Wang, Zhihua
AU - Li, Junxing
AU - Liu, Chengrui
AU - Zhang, Yongbo
N1 - Publisher Copyright:
© 2018, King Fahd University of Petroleum & Minerals.
PY - 2019/3/11
Y1 - 2019/3/11
N2 - The Wiener process model has been widely applied in degradation analysis for long-life and highly reliable products. However, the biggest challenge lies in how to properly describe the time-varying degradation mean and variance and the unit-specific property. Meanwhile, the current Wiener process degradation models cannot properly describe the degradation processes with increasing deterioration path and decreasing dispersity which do exist in real applications. Motivated by this practical problem and based on our previous study, an improved Wiener process degradation model is proposed. The degradation model can be widely adopted to depict practical degradation procedures illustrating a linear degradation mean and a quadratic variance. A random drift coefficient is further incorporated to properly consider the heterogeneity among items. The improvements can further expand the applicable scope and improve the statistical inference accuracy. Maximum likelihood estimations of unknown parameters are derived. The mean time to failure and the percentile of the failure time distribution are also constructed. Comparative results with reference methods from comprehensive simulation studies and practical applications both illustrate that the proposed method is more reasonable and can provide superior evaluation accuracy, even in limited sample size circumstances.
AB - The Wiener process model has been widely applied in degradation analysis for long-life and highly reliable products. However, the biggest challenge lies in how to properly describe the time-varying degradation mean and variance and the unit-specific property. Meanwhile, the current Wiener process degradation models cannot properly describe the degradation processes with increasing deterioration path and decreasing dispersity which do exist in real applications. Motivated by this practical problem and based on our previous study, an improved Wiener process degradation model is proposed. The degradation model can be widely adopted to depict practical degradation procedures illustrating a linear degradation mean and a quadratic variance. A random drift coefficient is further incorporated to properly consider the heterogeneity among items. The improvements can further expand the applicable scope and improve the statistical inference accuracy. Maximum likelihood estimations of unknown parameters are derived. The mean time to failure and the percentile of the failure time distribution are also constructed. Comparative results with reference methods from comprehensive simulation studies and practical applications both illustrate that the proposed method is more reasonable and can provide superior evaluation accuracy, even in limited sample size circumstances.
KW - Degradation modeling
KW - Linear degradation path
KW - Quadratic variance
KW - Time-varying characteristic
KW - Unit-specific property
UR - https://www.scopus.com/pages/publications/85063101559
U2 - 10.1007/s13369-018-3510-x
DO - 10.1007/s13369-018-3510-x
M3 - 文章
AN - SCOPUS:85063101559
SN - 2193-567X
VL - 44
SP - 2751
EP - 2762
JO - Arabian Journal for Science and Engineering
JF - Arabian Journal for Science and Engineering
IS - 3
ER -