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Two-Archive Evolutionary Algorithm for Constrained Multi-Objective Optimization

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When solving constrained multi-objective optimization problems, an important issue is how to balance convergence, diversity and feasibility simultaneously. To address this issue, this paper proposes a parameter-free constraint handling technique, two-archive evolutionary algorithm, for constrained multi-objective optimization. It maintains two co-evolving populations simultaneously: one, denoted as convergence archive, is the driving force to push the population toward the Pareto front; the other one, denoted as diversity archive, mainly tends to maintain the population diversity. In particular, to complement the behavior of the convergence archive and provide as much diversified information as possible, the diversity archive aims at exploring areas under-exploited by the convergence archive including the infeasible regions. To leverage the complementary effects of both archives, we develop a restricted mating selection mechanism that adaptively chooses appropriate mating parents from them according to their evolution status. Comprehensive experiments on a series of benchmark problems and a real-world case study fully demonstrate the competitiveness of our proposed algorithm, comparing to five state-of-the-art constrained evolutionary multi-objective optimizers.

Ke Li, Renzhi Chen, Guangtao Fu, Xin Yao• 2017

Related benchmarks

TaskDatasetResultRank
Flexible Supply Chain Network DesignTSPLIB Burma7
GD0.0059
6
Flexible Supply Chain Network DesignTSPLIB Burma14
GD0.0312
6
Flexible Supply Chain Network DesignTSPLIB Ulysses16
GD0.0186
6
Multi-Objective OptimizationRoad Network Strengthening under Seasonal Disruptions 500m radius
Generational Distance (GD)10
6
Multi-Objective OptimizationRoad Network Strengthening under Seasonal Disruptions 1000m radius
GD0.008
6
Multi-Objective OptimizationRoad Network Strengthening under Seasonal Disruptions 1500m radius
Generational Distance (GD)0.011
6
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