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Global Sensitivity Analysis of Fuzzy Distribution Parameter on Failure Probability and Its Single-Loop Estimation

机译:故障概率模糊分布参数的全局敏感性分析及其单回路估计

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摘要

An extending Borgonovo’s global sensitivity analysis is proposed to measure the influence of fuzzy distribution parameters on fuzzy failure probability by averaging the shift between the membership functions (MFs) of unconditional and conditional failure probability. The presented global sensitivity indices can reasonably reflect the influence of fuzzy-valued distribution parameters on the character of the failure probability, whereas solving the MFs of unconditional and conditional failure probability is time-consuming due to the involved multiple-loop sampling and optimization operators. To overcome the large computational cost, a single-loop simulation (SLS) is introduced to estimate the global sensitivity indices. By establishing a sampling probability density, only a set of samples of input variables are essential to evaluate the MFs of unconditional and conditional failure probability in the presented SLS method. Significance of the global sensitivity indices can be verified and demonstrated through several numerical and engineering examples.
机译:提出了扩展Borgonovo的全局敏感性分析,以通过平均无条件和条件失败概率的隶属函数(MF)之间的转变来测量模糊分布参数对模糊失效概率的影响。所呈现的全局敏感指数可以合理地反映模糊值分布参数对故障概率的特征的影响,而求解无条件和条件失效概率的MF是由于涉及的多环采样和优化运算符而耗时。为了克服大的计算成本,引入了单环仿真(SLS)来估计全局灵敏度指数。通过建立采样概率密度,只有一组输入变量样本对于评估所提出的SLS方法中的无条件和条件失效概率的MF是必不可少的。通过几个数值和工程示例可以验证和证明全局敏感指数的重要性。

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