Two Metaheuristics for Multiobjective Stochastic Combinatorial Optimization

Two general-purpose metaheuristic algorithms for solving multiobjective stochastic combinatorial optimization problems are introduced: SP-ACO (based on the Ant Colony Optimization paradigm) which combines the previously developed algorithms S-ACO and P-ACO, and SPSA, which extends Pareto Simulated A...

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Bibliographische Detailangaben
1. Verfasser: Gutjahr, Walter J.
Format: Buchkapitel
Sprache:eng
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Zusammenfassung:Two general-purpose metaheuristic algorithms for solving multiobjective stochastic combinatorial optimization problems are introduced: SP-ACO (based on the Ant Colony Optimization paradigm) which combines the previously developed algorithms S-ACO and P-ACO, and SPSA, which extends Pareto Simulated Annealing to the stochastic case. Both approaches are tested on random instances of a TSP with time windows and stochastic service times.
ISSN:0302-9743
1611-3349
DOI:10.1007/11571155_12