An Algorithm for Separable Nonconvex Programming Problems
James E. Falk, Richard M. Soland
Management Science
- 주제수리최적화 알고리즘 · 생산·최적화
In this paper we present an algorithm for solving mathematical programming problems of the form: Find x = (x 1 ,…, x n ) to minimize ∑φ i (x i ) subject to x ∈ G and l ≤ x ≤ L. Each φ i is assumed to be lower semicontinuous, possibly nonconvex, and G is assumed to be closed. The algorithm is of the branch and bound type and solves a sequence of problems in each of which the objective function is convex. These problems correspond to successive partitions of the feasible set. Two different rules for refining the partitions are considered; these lead to convergence of the algorithm under different requirements on the problem functions. Examples are given, and computational considerations are discussed.
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- 저널Management Science · 15(9) · 550–569
- 토픽Optimization and Packing Problems · Industrial and Manufacturing Engineering
- DOI10.1287/mnsc.15.9.550
- 저자James E. Falk, Richard M. Soland