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A noval approach of genetic algorithm for solving examination timetabling problems: A case study of Thai Universities

机译:一种解决考试时间表问题的遗传算法的新方法 - 以泰国大学为例

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Arranging examination timetable is problematic. It differs from other timetabling problems in terms of conditions. A complete timetable must reach several requirements involving course, group of student sitting the exam in that course, etc. It is similar to the course's timetable but not the same. Many differences between them include the way to create and the requirements. This paper proposes an adaptive genetic algorithm model applied for improving effectiveness of automatic arranging examination timetable. Hard constraints and soft constraints for this specific problem were discussed. In addition, the genetic elements were designed and the penalty cost function was proposed. Three genetic operators: crossover, mutation, and selection were employed. A simulation was conducted to obtain some results. The results show that the proposed GA model works well in arranging an examination timetable. With 0.75 crossover rate, there is no hard constraints appeared in the timetable.
机译:安排考试时间表是有问题的。它与条件方面的其他时间表问题不同。完整的时间表必须达到涉及课程,坐在考试的课程中的几个要求等。它与课程的时间表相似但不一样。它们之间的许多差异包括创建和要求的方式。本文提出了一种适应性遗传算法模型,用于提高自动布置检测时间表的有效性。讨论了对该特定问题的硬约束和软限制。此外,设计了遗传元件,提出了罚款成本函数。三种遗传算子:采用交叉,突变和选择。进行模拟以获得一些结果。结果表明,建议的GA模型在安排考试时效果很好。在0.75交叉速率下,在时间表中没有难以限制。

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