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Single-Machine Scheduling with Learning Effects and Maintenance: A Methodological Note on Some Polynomial-Time Solvable Cases

研究成果: 期刊貢獻文章同行評審

1 引文 斯高帕斯(Scopus)

摘要

This work addresses four single-machine scheduling problems (SMSPs) with learning effects and variable maintenance activity. The processing times of the jobs are simultaneously determined by a decreasing function of their corresponding scheduled positions and the sum of the processing times of the already processed jobs. Maintenance activity must start before a deadline and its duration increases with the starting time of the maintenance activity. This work proposes a polynomial-time algorithm for optimally solving two SMSPs to minimize the total completion time and the total tardiness with a common due date.

原文English
文章編號7532174
期刊Mathematical Problems in Engineering
2017
DOIs
出版狀態Published - 2017

文獻附註

Publisher Copyright:
© 2017 Kuo-Ching Ying et al.

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