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首页> 外文期刊>The USV Annals of Economics and Public Administration >PARALLEL HYBRID METHODS USED IN OPTIMIZATION PROBLEMS SOLVING
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PARALLEL HYBRID METHODS USED IN OPTIMIZATION PROBLEMS SOLVING

机译:优化问题求解中的并行混合方法

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摘要

This paper presents different models of hybrid algorithms that can be run on parallel architectures being used in optimization problems solving. In these models we used several techniques: genetic algorithms, ant colony and tabu search. Optimization problems can achieve a high degree of complexity, which is the main reason for the necessity of using of these methods in such incursions. With their cooperation, we tried to obtain satisfactory results in much better running time than the sequential versions. These models have been run using various parallel configurations on a cluster cores, which belong to ?Stefan cel Mare” University. The results obtained for these models were compared with each other and with the results obtained for models described in other personal papers. The paper highlights the advantages of the parallel hybrid cooperation in solving of complex optimization problems. This paper is structured in four chapters: Introduction, Cooperative heterogeneous model, Cooperative hybrid models and Conclusions.
机译:本文介绍了可在优化问题解决中使用的并行体系结构上运行的混合算法的不同模型。在这些模型中,我们使用了多种技术:遗传算法,蚁群和禁忌搜索。优化问题可以实现高度的复杂性,这是在此类入侵中必须使用这些方法的主要原因。通过他们的合作,我们试图在比连续版本更好的运行时间上获得满意的结果。这些模型已在群集核心上使用各种并行配置运行,这些核心属于“ Stefan cel Mare”大学。将这些模型获得的结果相互比较,并与其他个人论文中描述的模型获得的结果进行比较。本文强调了并行混合合作在解决复杂优化问题方面的优势。本文分为四章:简介,合作异构模型,合作混合模型和结论。

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