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GaussianPSL: Soft partitioning for complex PSL problem

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Many practical applications of multi-objective optimization (MOO), including engineering design, autonomous systems, and machine learning, often yield complex Pareto frontiers (e.g., discontinuous, degenerate, or non-convex), which pose challenges for traditional scalarization and Pareto Set Learning (PSL) methods that struggle to approximate them accurately. In this paper, we propose GaussianPSL, a novel framework that uses soft partitions of the Pareto decision/objective space to address the challenges posed by complex Pareto frontiers. Our method dynamically partitions the space, enabling simple MLP networks to learn localized features within each region and then aggregate this information for the final prediction. This partition-aware strategy enhances both exploration and convergence, reduces sensitivity to initialization, and improves robustness against local optima. Experimental results demonstrate that the proposed approach consistently outperforms standard PSL models in learning complex Pareto fronts while maintaining model simplicity. Overall, GaussianPSL offers a new direction for effective, scalable MOO in challenging frontier geometries.

Phuong Mai Dinh, Van-Nam Huynh• 2025

Related benchmarks

TaskDatasetResultRank
Multi-Objective OptimizationRE33
Log Hypervolume Difference-0.808
16
Multi-Objective OptimizationRE36
Log Hypervolume Difference-2.812
16
Multi-Objective OptimizationRE37
Log Hypervolume Difference-6.875
16
Multi-Objective OptimizationDTLZ7
Log Hypervolume Difference-2.555
16
Multi-Objective OptimizationZDT3
Log Hypervolume Difference-5.655
16
Multi-Objective OptimizationRE21
Log HV Difference1.484
16
Multi-Objective OptimizationDTLZ 5
Log Hypervolume Difference-6.854
16
Multi-Objective OptimizationRE37
IGD0.058
15
Multi-Objective OptimizationDTLZ7
IGD0.046
15
Multi-Objective OptimizationZDT3
IGD0.012
15
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