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首页> 外文期刊>Journal of Mechanical Science and Technology >Mean-value first-order saddlepoint approximation based collaborative optimization for multidisciplinary problems under aleatory uncertainty
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Mean-value first-order saddlepoint approximation based collaborative optimization for multidisciplinary problems under aleatory uncertainty

机译:不确定不确定性下基于均值一阶鞍点逼近的协同优化

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摘要

Reliability-based multidisciplinary design optimization (RBMDO) has received increasing attention in engineering design for achieving high reliability and safety in complex and coupling systems (e.g., multidisciplinary systems). Mean-value first-order saddlepoint approximation (MVFOSA) is introduced in this paper and is combined with the collaborative optimization (CO) method for reliability analysis under aleatory uncertainty in RBMDO. Similar to the mean-value first-order second moment (MVFOSM) method, MVFOSA approximated the performance function with the first-order Taylor expansion at the mean values of random variables. MVFOSA uses saddlepoint approximation rather than the first two moments of the random variables to estimate the probability density and cumulative distribution functions. MVFOSA-based CO (MVFOSA-CO) is also formulated and proposed. Two examples are provided to show the accuracy and efficiency of the MVFOSA-CO method.
机译:基于可靠性的多学科设计优化(RBMDO)在工程设计中越来越受到关注,以在复杂和耦合系统(例如多学科系统)中实现高可靠性和安全性。介绍了均值一阶鞍点逼近(MVFOSA),并与协同优化(CO)方法相结合,用于RBMDO不确定性下的可靠性分析。与平均值一阶二阶矩(MVFOSM)方法相似,MVFOSA在随机变量的平均值处用一阶泰勒展开来近似性能函数。 MVFOSA使用鞍点近似而不是随机变量的前两个时刻来估计概率密度和累积分布函数。还制定并提出了基于MVFOSA的CO(MVFOSA-CO)。提供了两个示例来说明MVFOSA-CO方法的准确性和效率。

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