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Learning and Cooperating Multi-agent Scheduling Repair Using a Provenance-Centred Approach

机译:使用居源的方法学习和协作多代理调度修复

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The timetabling problem is to find a timetable solution by assigning time and resources to sessions that satisfy a set of constraints. Traditionally, research has focused on optimization towards a final solution but this paper focuses on minimizing disturbance impact due to changing conditions. A Multi-Agent System (MAS) is proposed in which users are represented as autonomous agents negotiating with one another to repair a timetable. From repeated negotiations, agents learn to develop a model of other agent's preferences. The MAS is simulated on a factorial experiment set up and varying the cooperation level, learning model and selection strategy. A provenance-centred approach is adopted to improve the human aspect of timetabling to allow users to derive the steps towards a solution and make changes to influence the solution.
机译:时间表问题是通过将时间和资源分配给满足一组约束的会话来找到时间表解决方案。 传统上,研究专注于优化最终解决方案,但本文重点介绍导致由于变化的条件导致的干扰撞击。 提出了一种多代理系统(MAS),其中用户表示为自治代理互相协商以修复时间表。 来自反复谈判,代理商学会制定其他代理人的偏好的模型。 MAS是在建立和改变合作水平,学习模式和选择策略的阶乘实验中模拟的。 采用了以居源为中心的方法来改进时间表的人类方面,以允许用户导出朝向解决方案的步骤并改变影响解决方案。

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