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arxiv: 1904.08823 · v1 · pith:G7X5ZX7Ynew · submitted 2019-04-18 · 🧮 math.OC · cs.NE

Uncrowded Hypervolume Improvement: COMO-CMA-ES and the Sofomore framework

classification 🧮 math.OC cs.NE
keywords frameworksolutionsalgorithmsingle-objectivecomo-cma-esindicatoraddressesbi-objective
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We present a framework to build a multiobjective algorithm from single-objective ones. This framework addresses the $p \times n$-dimensional problem of finding p solutions in an n-dimensional search space, maximizing an indicator by dynamic subspace optimization. Each single-objective algorithm optimizes the indicator function given $p - 1$ fixed solutions. Crucially, dominated solutions minimize their distance to the empirical Pareto front defined by these $p - 1$ solutions. We instantiate the framework with CMA-ES as single-objective optimizer. The new algorithm, COMO-CMA-ES, is empirically shown to converge linearly on bi-objective convex-quadratic problems and is compared to MO-CMA-ES, NSGA-II and SMS-EMOA.

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