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There is Noisy Lunch: A Study of Noise in Evolutionary Optimization Problems

机译:有嘈杂的午餐:对进化优化问题的噪声研究

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Noise or uncertainty appear in many optimization processes when there is not a single measure of optimality or fitness but a random variable representing it. These kind of problems have been known for a long time, but there has been no investigation of the statistical distribution those random variables follow, assuming in most cases that it is distributed normally and, thus, it can be modelled via an additive or multiplicative noise on top of a non-noisy fitness. In this paper we will look at several uncertain optimization problems that have been addressed by means of Evolutionary Algorithms and prove that there is no single statistical model the evaluations of the fitness functions follow, being different not only from one problem to the next, but in different phases of the optimization in a single problem.
机译:当没有单一的最优性或适应度但是表示它的随机变量时,噪音或不确定性出现在许多优化过程中。这些问题已知很长时间,但是没有调查这些随机变量的统计分布遵循,假设在大多数情况下它通常是分布的,因此,它可以通过添加剂或乘法噪声进行建模在一个非嘈杂的健身之上。在本文中,我们将研究通过进化算法解决的几个不确定的优化问题,并证明没有单一的统计模型,对健身功能的评估遵循,不仅不同于下一个问题,而且在在一个问题中优化的不同阶段。

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