Improved Runtime Guarantees for the SPEA2 Multi-Objective Optimizer
Benjamin Doerr, Martin S. Krejca, Milan Stankovic
摘要
Together with the NSGA-II, the SPEA2 is one of the most widely used domination-based multi-objective evolutionary algorithms. For both algorithms, the known runtime guarantees are linear in the population size; for the NSGA-II, matching lower bounds exist. With a careful study of the more complex selection mechanism of the SPEA2, we show that it has very different population dynamics. From these, we prove runtime guarantees for the OneMinMax, LeadingOnesTrailingZeros, and OneJumpZeroJump benchmarks that depend less on the population size. For example, we show that the SPEA2 with parent population size mu >= n - 2k + 3 and offspring population size lambda computes the Pareto front of the OneJumpZeroJump benchmark with gap size k in an expected number of O((lambda+mu)n + n^(k+1)) function evaluations. This shows that the best runtime guarantee of O(n^(k+1)) is not only achieved for mu = Theta(n) and lambda = O(n) but for arbitrary mu, lambda = O(n^k). Thus, choosing suitable parameters - a key challenge in using heuristic algorithms - is much easier for the SPEA2 than the NSGA-II.
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它引用的顶会 Paper7
- A First Mathematical Runtime Analysis of the Non-dominated Sorting Genetic Algorithm II (NSGA-II)Weijie Zheng, Yufei Liu, Benjamin DoerrAAAI 2022 · 被引用 87 次
- From Understanding the Population Dynamics of the NSGA-II to the First Proven Lower BoundsBenjamin Doerr, Zhongdi QuAAAI 2023 · 被引用 54 次
- Theoretical Analyses of Multi-Objective Evolutionary Algorithms on Multi-Modal ObjectivesBenjamin Doerr, Weijie ZhengAAAI 2021 · 被引用 51 次
- Runtime Analysis of the SMS-EMOA for Many-Objective OptimizationWeijie Zheng, Benjamin DoerrAAAI 2024 · 被引用 26 次
- Rigorous Runtime Analysis of MOEA/D for Solving Multi-Objective Minimum Weight Base ProblemsAnh Viet Do, Aneta Neumann, Frank Neumann, Andrew M. SuttonNeurIPS 2023 · 被引用 22 次
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