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Efficient Evolutionary Algorithm for Single-Objective Bilevel Optimization

1 Pith paper cite this work. Polarity classification is still indexing.

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abstract

Bilevel optimization problems are a class of challenging optimization problems, which contain two levels of optimization tasks. In these problems, the optimal solutions to the lower level problem become possible feasible candidates to the upper level problem. Such a requirement makes the optimization problem difficult to solve, and has kept the researchers busy towards devising methodologies, which can efficiently handle the problem. Despite the efforts, there hardly exists any effective methodology, which is capable of handling a complex bilevel problem. In this paper, we introduce bilevel evolutionary algorithm based on quadratic approximations (BLEAQ) of optimal lower level variables with respect to the upper level variables. The approach is capable of handling bilevel problems with different kinds of complexities in relatively smaller number of function evaluations. Ideas from classical optimization have been hybridized with evolutionary methods to generate an efficient optimization algorithm for generic bilevel problems. The efficacy of the algorithm has been shown on two sets of test problems. The first set is a recently proposed SMD test set, which contains problems with controllable complexities, and the second set contains standard test problems collected from the literature. The proposed method has been evaluated against two benchmarks, and the performance gain is observed to be significant.

fields

cs.LG 1

years

2025 1

verdicts

REJECT 1

representative citing papers

BILBO: BILevel Bayesian Optimization

cs.LG · 2025-02-04 · reject · novelty 7.0

BILBO is a single-query-per-round Bayesian optimization method for bilevel problems that uses confidence-bound trusted sets to bound lower-level suboptimality.

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  • BILBO: BILevel Bayesian Optimization cs.LG · 2025-02-04 · reject · none · ref 9 · internal anchor

    BILBO is a single-query-per-round Bayesian optimization method for bilevel problems that uses confidence-bound trusted sets to bound lower-level suboptimality.