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首页> 外文期刊>Asia-Pacific Journal of Operational Research >Derivative-Free Feasible Backtracking Search Methods for Nonlinear Multiobjective Optimization with Simple Boundary Constraint
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Derivative-Free Feasible Backtracking Search Methods for Nonlinear Multiobjective Optimization with Simple Boundary Constraint

机译:具有简单边界约束的非线性多目标优化的无衍生不可行的回溯搜索方法

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摘要

In this paper, a derivative-free linear feasible direction models with backtracking search technique is considered for solving nonlinear multiobjective optimization problems subject to simple boundary constraint. The algorithm is designed to build linear interpolation models for each function of problem (P). We build the linear programming subproblem using linear interpolation function without the second-order derivative information. The new backtracking search step size function is given in our algorithm which guarantees both the monotone descent property of each function and the feasibility of the iterative point. Under reasonable assumptions, we prove that the algorithm converges to a weakly Pareto critical point of problem. The results of numerical experiments are reported to show the effectiveness of the proposed algorithm.
机译:在本文中,考虑了具有回溯搜索技术的无衍生线性可行方向模型,用于解决经受简单边界约束的非线性多目标优化问题。该算法旨在为问题(P)的每个功能构建线性插值模型。我们使用没有二阶衍生信息的线性插值函数构建线性编程子问题。新的回溯搜索步长函数在我们的算法中给出,保证了每个功能的单调脱康属性和迭代点的可行性。在合理的假设下,我们证明该算法会聚到弱据危险的问题。据报道,数值实验结果表明了所提出的算法的有效性。

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