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An algorithm for a class of functional inequality constrained optimization problems

机译:一类函数不等式约束优化问题的算法

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In this paper, we develop a new computational method for solving a class of functional inequality constrained optimization problems. The main idea of this method is that the inequality constraint is transformed into a equality constraint which is smoothed via a twice continuously differentiable function, and treated as a penalty function. On this basis, the smoothed problem can be solved using any second-order gradient algorithm. Finally, the validity of the proposed method is shown by four numerical experiments.
机译:在本文中,我们开发了一种新的计算方法来解决一类函数不等式约束优化问题。该方法的主要思想是将不等式约束转换为等式约束,该等式约束可通过两次连续可微分函数进行平滑处理,并作为惩罚函数处理。在此基础上,可以使用任何二阶梯度算法来解决平滑问题。最后,通过四个数值实验证明了该方法的有效性。

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