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Introducing the Mallows Model on Estimation of Distribution Algorithms

机译:在分布算法估计中引入Mallows模型

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Estimation of Distribution Algorithms are a set of algorithms that belong to the field of Evolutionary Computation. Characterized by the use of probabilistic models to learn the (in)dependencies between the variables of the optimization problem, these algorithms have been applied to a wide set of academic and real-world optimization problems, achieving competitive results in most scenarios. However, they have not been extensively developed for permutation-based problems. In this paper we introduce a new EDA approach specifically designed to deal with permutation-based problems. In this paper, our proposal estimates a probability distribution over permutations by means of a distance-based exponential model called the Mallows model. In order to analyze the performance of the Mallows model in EDAs, we carry out some experiments over the Permutation Flowshop Scheduling Problem (PFSP), and compare the results with those obtained by two state-of-the-art EDAs for permutation-based problems.
机译:分布算法的估计是一组属于进化计算领域的算法。通过使用概率模型来学习优化问题变量之间的(相互)依赖关系,这些算法已被应用于各种学术和现实优化问题,在大多数情况下均能获得有竞争力的结果。但是,它们尚未针对基于置换的问题进行广泛开发。在本文中,我们介绍了一种新的EDA方法,该方法专门设计用于处理基于置换的问题。在本文中,我们的建议通过称为Mallows模型的基于距离的指数模型来估计置换的概率分布。为了分析Mallows模型在EDA中的性能,我们对置换流水车间调度问题(PFSP)进行了一些实验,并将结果与​​两种基于置换的问题的最先进EDA所获得的结果进行了比较。 。

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