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A Feasible Method for Constrained Derivative-Free Optimization

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arxiv 2402.11920 v1 pith:TI6YARKW submitted 2024-02-19 math.OC

classification math.OC
keywords functionmethodobjectiveconstraintsderivativesconstrainedconstraintfeasible
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This paper explores a method for solving constrained optimization problems when the derivatives of the objective function are unavailable, while the derivatives of the constraints are known. We allow the objective and constraint function to be nonconvex. The method constructs a quadratic model of the objective function via interpolation and computes a step by minimizing this model subject to the original constraints in the problem and a trust region constraint. The step computation requires the solution of a general nonlinear program, which is economically feasible when the constraints and their derivatives are very inexpensive to compute compared to the objective function. The paper includes a summary of numerical results that highlight the method's promising potential.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Introduction to Model-Based Derivative-Free Optimization

    math.OC 2025-10 accept novelty 2.0 of 10

    A graduate-level introduction to interpolation-based derivative-free optimization, consolidating trust-region algorithms, interpolation-model accuracy theory, and worst-case complexity bounds for unconstrained, constr...

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