Title of article :
A new nonlinear stochastic staff scheduling model
Author/Authors :
Sadjadi, S.J. iran university of science and technology - Department of Industrial Engineering, تهران, ايران , Soltani, R. iran university of science and technology - Department of Industrial Engineering, تهران, ايران , Izadkhah, M. iran university of science and technology - Department of Industrial Engineering, تهران, ايران , Saberian, F. iran university of science and technology - Department of Industrial Engineering, تهران, ايران , Darayi, M. iran university of science and technology - Department of Industrial Engineering, تهران, ايران
From page :
699
To page :
710
Abstract :
This paper presents a new mixed integer nonlinear stochastic staff scheduling model, where the workforce demands are under uncertainty, with a general probability distribution. To validate the proposed model, a simulation technique is employed and an optimization technique is used to solve the resulted model. As the problem is combinatorial, a meta-heuristic approach, i.e. a genetic algorithm, is implemented with tuned parameters, using the Taguchi design of experiment method. The preliminary results indicate that the proposed method of this paper can be effectively used to manage staff schedules for many real-world applications.
Keywords :
Staff scheduling , Stochastic optimization , Nonlinear programming , Mixed integer programming , Simulation technique , Validation and verification , Genetic Algorithm (GA) , Taguchi’s design of experiments , Robust design.
Journal title :
Scientia Iranica(Transactions B:Mechanical Engineering)
Journal title :
Scientia Iranica(Transactions B:Mechanical Engineering)
Record number :
2718241
Link To Document :
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