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Improved Fixed-Budget Results via Drift Analysis

机译:通过漂移分析改善固定预算结果

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Fixed-budget theory is concerned with computing or bounding the fitness value achievable by randomized search heuristics within a given budget of fitness function evaluations. Despite recent progress in fixed-budget theory, there is a lack of general tools to derive such results. We transfer drift theory, the key tool to derive expected optimization times, to the fixed-budged perspective. A first and easy-to-use statement concerned with iterating drift in so-called greed-admitting scenarios immediately translates into bounds on the expected function value. Afterwards, we consider a more general tool based on the well-known variable drift theorem. Applications of this technique to the LEADIN-GONES benchmark function yield statements that are more precise than the previous state of the art.
机译:固定预算理论涉及在给定的适应度函数评估预算内,计算或限制通过随机搜索试探法可达到的适应度值。尽管最近在固定预算理论方面取得了进展,但仍缺乏获得此类结果的通用工具。我们将漂移理论(得出预期优化时间的关键工具)转移到固定预算的角度。与所谓的贪婪允许场景中的迭代漂移有关的第一个易于使用的陈述立即转化为预期函数值的界限。之后,我们考虑基于众所周知的变量漂移定理的更通用工具。该技术在LEADIN-GONES基准函数中的应用产生了比现有技术更精确的陈述。

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