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Equivalent target probability of failure to convert high-reliability model to low-reliability model for efficiency of sampling-based RBDO

机译:将基于高可靠性模型转换为低可靠性模型的等效目标失败概率,以提高基于采样的RBDO的效率

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This study presents a methodology to convert an RBDO problem requiring very high reliability to an RBDO problem requiring relatively low reliability by appropriately increasing the input standard deviations for efficient computation in sampling-based RBDO. First, for linear performance functions with independent normal random inputs, an exact probability of failure is derived in terms of the ratio of the input standard deviation, which is denoted by $oldsymbol {delta } $. Then, the probability of failure estimation is generalized for other types of random inputs and performance functions. For the generalization of the probability of failure estimation, two types of coefficients need to be determined by equating the probability of failure and its sensitivities with respect to the input standard deviation at the given design point. The sensitivities of the probability of failure with respect to the standard deviation are obtained using the first-order score function for the standard deviation. To apply the proposed method to an RBDO problem, a concept of an equivalent target probability of failure, which is an increased target probability of failure corresponding to the increased input standard deviations, is also introduced. Numerical results indicate that the proposed method can estimate the probability of failure accurately as a function of the input standard deviation compared to the Monte Carlo simulation results. As anticipated, the sampling-based RBDO using equivalent target probability of failure helps find the optimum design very efficiently while yielding reasonably accurate optimum design, which is close to the one obtained using the original target probability of failure.
机译:这项研究提出了一种方法,通过适当地增加输入标准差以在基于采样的RBDO中进行有效计算,从而将需要非常高可靠性的RBDO问题转换为需要相对低可靠性的RBDO问题。首先,对于具有独立法向随机输入的线性性能函数,根据输入标准偏差的比率得出精确的失效概率,用$ boldsymbol { delta} $表示。然后,针对其他类型的随机输入和性能函数,对故障估计的概率进行了概括。为了使失效概率的一般化,需要通过在给定的设计点上使失效概率及其相对于输入标准偏差的灵敏度相等,来确定两种系数。使用标准偏差的一阶得分函数,可以得出相对于标准偏差的失效概率的敏感性。为了将所提出的方法应用于RBDO问题,还引入了等效的目标失效概率的概念,该等效目标失效概率是与增加的输入标准偏差相对应的增加的失效目标概率。数值结果表明,与蒙特卡罗模拟结果相比,该方法可以准确地估计故障概率与输入标准偏差的关系。如预期的那样,使用等效目标故障概率的基于采样的RBDO帮助非常有效地找到最佳设计,同时产生合理准确的最佳设计,这与使用原始目标故障概率获得的设计接近。

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