DocumentCode :
245382
Title :
An Efficient Method for Structural Reliability Analysis Using Evidence Theory
Author :
Mi Xiao ; Haihong Xiong ; Liang Gao ; Qiangzhuang Yao
Author_Institution :
State Key Lab. of Digital Manuf. Equip. & Technol., Huazhong Univ. of Sci. & Technol., Wuhan, China
fYear :
2014
fDate :
19-21 Dec. 2014
Firstpage :
144
Lastpage :
149
Abstract :
Due to a lack of complete information, epistemic uncertainty widely exists in engineering structures and mechanical systems. Evidence theory, which has a general and flexible framework, has been used to quantify the epistemic uncertainty and conduct reliability analysis recently. However, the discontinuous nature of uncertainty quantification using evidence theory can cause expensive computational cost. In this work, an efficient method based on evidence theory is proposed for reliability analysis under epistemic uncertainty. In this method, evidence variables in an original reliability problem are transformed into random variables by a method based on equal areas. Then, the most probable point (MPP) of the problem with random variables is obtained by reliability analysis using probability theory. Based on the MPP, the most probable focal element (MPFE) of the original reliability problem with evidence variables is identified. Finally, the contribution of some focal elements to the reliability analysis is judged directly and the calculation of extreme values of the limit-state function is just conducted over the other focal elements. The computing efficiency of the proposed method is demonstrated by two numerical examples. Results indicate that the proposed method can reduce the computational cost on the reliability analysis using evidence theory.
Keywords :
mechanical engineering computing; probability; reliability; MPFE; MPP; engineering structures; epistemic uncertainty; evidence theory; limit-state function; mechanical systems; most probable focal element; most probable point; probability theory; structural reliability analysis; uncertainty quantification; Computational efficiency; Joints; Random variables; Reliability engineering; Reliability theory; Uncertainty; epistemic uncertainty; evidence theory; focal element; most probable focal element; most probable point;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Science and Engineering (CSE), 2014 IEEE 17th International Conference on
Conference_Location :
Chengdu
Print_ISBN :
978-1-4799-7980-6
Type :
conf
DOI :
10.1109/CSE.2014.58
Filename :
7023569
Link To Document :
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