A four-Phase Meta-Heuristic Algorithm for Solving Large Scale Instances of the Shift Minimization Personnel Task Scheduling Problem

Sebastian Nechita, L. Dioşan
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Abstract

The Shift minimization personnel task scheduling problem (SMPTSP) is a known NP-hard problem. The present paper introduces a novel four-phase meta-heuristic approach for solving the Shift minimization personnel task scheduling problem which consists of an optimal assignment of jobs to multi-skilled employees, such that a minimal number of employees is used and no job is left unassigned. The computational results show that the proposed approach is able to find very good solutions in a very short time. The approach was tested and validated on the benchmarks from existing literature, managing to find very good solutions.
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求解轮班最小化人员任务调度问题的四阶段元启发式算法
轮班最小化人员任务调度问题(smpstp)是一个已知的np难题。本文介绍了一种新的四阶段元启发式方法来解决轮班最小化人员任务调度问题,该问题包括对多技能员工的最优工作分配,这样使用的员工数量最少,没有工作未分配。计算结果表明,该方法能够在很短的时间内找到很好的解。该方法在现有文献的基准上进行了测试和验证,设法找到了非常好的解决方案。
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