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Single-machine scheduling problems with general truncated sum-of-actual-processing-time-based learning effect
Authors:Jiang  Zhongyi  Chen  Fangfang  Zhang  Xiandong
Affiliation:1.Aliyun School of Big Data, Changzhou University, Jiangsu, 213164, People’s Republic of China
;2.Jiangsu Engineering Research Center of Digital Twinning Technology for Key Equipment in Petrochemical Process, Changzhou University, Jiangsu, 213164, People’s Republic of China
;3.Department of Management Science, School of Management, Fudan University, Shanghai, 200433, People’s Republic of China
;
Abstract:

We study single machine scheduling problems with general truncated sum-of-actual-processing-time-based learning effect. In the general truncated learning model, the actual processing time of a job is affected by the sum of actual processing times of previous jobs and by a job-dependent truncation parameter. We show that the single machine problems to minimize makespan and to minimize the sum of weighted completion times are both at least ordinary NP-hard and the single machine problem to minimize maximum lateness is strongly NP-hard. We then show polynomial solvable cases and approximation algorithms for these problems. Computational experiments are also conducted to show the effectiveness of our approximation algorithms.

Keywords:
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