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Mixture surrogate models based on Dempster-Shafer theory for global optimization problems

机译:基于Dempster-Shafer理论的混合代理模型用于全局优化问题

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Recent research in algorithms for solving global optimization problems using response surface methodology has shown that it is in general not possible to use one surrogate model for solving different kinds of problems. In this paper the approach of applying Dempster-Shafer theory to surrogate model selection and their combination is described. Various conflict redistribution rules have been examined with respect to their influence on the results. Furthermore, the implications of the surrogate model type, i.e. using combined, single or a hybrid of both, have been studied. The suggested algorithms were applied to several well-known global optimization test problems. The results indicate that the used approach leads for all problems to a thorough exploration of the variable domain, i.e. the vicinities of global optima could be detected, and that the global minima could in most cases be approximated with high accuracy.
机译:使用响应面方法解决全局优化问题的算法的最新研究表明,通常不可能使用一个代理模型来解决各种问题。本文描述了应用Dempster-Shafer理论替代模型选择及其组合的方法。已经研究了各种冲突重新分配规则对结果的影响。此外,已经研究了替代模型类型的含义,即使用组合的,单个的或两者的混合。所建议的算法已应用于几个众所周知的全局优化测试问题。结果表明,所使用的方法针对所有问题导致了对可变域的透彻探索,即可以检测到全局最优的附近,并且在大多数情况下可以以高精度近似全局最小值。

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