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MODIFIED REDUCED GRADIENT WITH REALIZATIONS SORTING FOR HARD EQUALITY CONSTRAINTS IN RELIABILITY-BASED DESIGN OPTIMIZATION

机译:基于可靠度的设计优化中针对硬性等式约束的带实现实现的修正约简梯度

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In this work, the presence of equality constraints in reliability-based design optimization (RBDO) problems is studied. Relaxation of soft equality constraints in RBDO and its challenges are briefly discussed while the main focus is on hard equalities that can not be violated even under uncertainty. Direct elimination of hard equalities to reduce problem dimensions is usually suggested; however, for nonlinear or black-box functions, variable elimination requires expensive root-finding processes or inverse functions that are generally unavailable. We extend the reduced gradient methods in deterministic optimization to handle hard equalities in RBDO. The efficiency and accuracy of the first and the second order predictions in reduced gradient methods are compared. Results show the first order prediction being more efficient when realizations of random variables are available. A gradient-weighted sorting with these random samples is proposed to further improve the solution efficiency of the reduced gradient method. Feasible design realizations subject to hard equality constraints are then available to be implemented with the state-of-the-art sampling techniques for RBDO problems. Numerical and engineering examples show the strength and simplicity of the proposed method.
机译:在这项工作中,研究了基于可靠性的设计优化(RBDO)问题的平等约束的存在。在RBDO中放宽软平等限制及其挑战的虽然主要重点是在不确定性下不能侵犯的艰苦平衡。通常建议直接消除努力降低问题尺寸;但是,对于非线性或黑盒功能,可变消除需要昂贵的根本查找过程或通常不可用的逆函数。我们在确定性优化中扩展了减少的梯度方法,以处理RBDO中的硬质量。比较了梯度方法的第一和二阶预测的效率和准确性。结果显示,当随机变量的实现时,第一订单预测更有效。提出了具有这些随机样品的梯度加权分选,以进一步提高降低梯度法的溶液效率。然后可以利用用于RBDO问题的最先进的采样技术来实现经过硬平等约束的可行的设计实现。数值和工程示例显示了所提出的方法的强度和简单性。

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