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Estimation of distribution algorithms for the multi-mode resource constrained project scheduling problem.

机译:多模式资源受限项目调度问题的分布算法估计。

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摘要

Multi-Mode Resource Constrained Project Problem (MRCPSP) is a multi-component problem which combines two interacting sub-problems; activity scheduling and mode assignment. Multi-component problems have been of research interest to the evolutionary computation community as they are more complex to solve. Estimation of Distribution Algorithms (EDAs) generate solutions by sampling a probabilistic model that captures key features of good solutions. Often they can significantly improve search efficiency and solution quality. Previous research has shown that the mode assignment sub-problem can be more effectively solved with an EDA. Also, a competitive Random Key based EDA (RK-EDA) for permutation problems has recently been proposed. In this paper, activity and mode solutions are respectively generated using the RK-EDA and an integer based EDA. This approach is competitive with leading approaches of solving the MRCPSP.
机译:多模式资源受限项目问题(MRCPSP)是一个多组件问题,它结合了两个相互作用的子问题。活动计划和模式分配。多组件问题因其解决起来更加复杂而引起了进化计算界的研究兴趣。分布算法估计(EDA)通过采样捕获良好解决方案关键特征的概率模型来生成解决方案。通常,它们可以显着提高搜索效率和解决方案质量。先前的研究表明,使用EDA可以更有效地解决模式分配子问题。而且,最近已经提出了针对排列问题的竞争性的基于随机密钥的EDA(RK-EDA)。在本文中,分别使用RK-EDA和基于整数的EDA生成活动和模式解。该方法与解决MRCPSP的领先方法相比具有竞争力。

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