4.7 Article

Credibility distribution function based global and regional sensitivity analysis under fuzzy uncertainty

期刊

ENGINEERING WITH COMPUTERS
卷 38, 期 SUPPL 2, 页码 1349-1362

出版社

SPRINGER
DOI: 10.1007/s00366-020-01271-w

关键词

Global sensitivity analysis; Regional sensitivity analysis; Fuzzy inputs; Credibility theory; Fuzzy simulation

资金

  1. National Natural Science Foundation of China [52075442, 11702281]
  2. National Science and Technology Major Project [2017-IV-0009-0046]

向作者/读者索取更多资源

Global sensitivity analysis and regional sensitivity analysis are valuable tools for identifying important inputs and simplifying models, but there is limited research on them in the presence of fuzzy uncertainty. A new Global Sensitivity Index (GSI) and Contribution to this CrDF based index (CCI) plot have been proposed to quantify the impact of important inputs on the output under fuzzy uncertainty.
Global sensitivity analysis (GSA) is useful to recognize important inputs for assigning priority and unimportant inputs for simplifying models by exploring whole distribution ranges. Meanwhile, regional sensitivity analysis (RSA) is also studied for finding the contribution of the critical region of an input, which can be viewed as the complementary of GSA. However, there is a lack of GSA and RSA research in presence of fuzzy uncertainty. Thus, a new global sensitivity index (GSI) under the fuzzy uncertainty is devoted on the credibility distribution function (CrDF), a comprehensive distribution description under the fuzzy uncertainty. The CrDF-based GSI is defined by the fuzzy expectation of the difference between the CrDF and the conditional CrDF of the output on fixing the fuzzy input over its whole distribution range, which can quantify the contribution of the fuzzy input to the output CrDF. Then, a new fuzzy RSA technique, the contribution to this CrDF based index (shortened by CCI) plot, is also proposed, and it can assess the effect of given regions of important inputs on output CrDF. Besides, mathematical properties of the CrDF based GSI and the CCI plot are discussed, and their solution are established by use of the fuzzy simulation with the same set of samples. After the accuracy of established fuzzy simulation solution for the CrDF based GSI and the CCI plot are verified by an analytical example, other examples are used to demonstrate the reasonability and applicability of proposed CrDF based GSI and CCI plot under fuzzy uncertainty.

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