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A genetic algorithm for capital budgeting problem with fuzzy parameters
International Conference on Computer Applications and Industrial Electronics (ICCAIE) (2010)
  • Hannaneh Rashidi-Bajgan
  • Javad Rezaeian
  • Taravatsadat Nehzati
  • Napsiah Ismail
Abstract
When an organization utilizes modern technology in its manufacturing process, it needs to update and upgrade its facilities repetitively by efficient ways to stay with great productivity along with efficiency so. Capital Budgeting (CB) problem is one of the most important issues in decision makings about capital in the manufacturing management. Sometimes all variables and parameters are not necessarily deterministic and enough experiments are not available. Current study develops a chance constrained integer programming in the fuzzy environment for capital budgeting. Considering the complexity theory, a good answer could not be found in reasonable time, so that an intelligent Genetic Algorithm (GA) as a metaheuristic approach is provided to trace this problem with satisfying solutions. Thereupon, a fuzzy simulation-based genetic algorithm is provided for solving chance constrained integer programming model with fuzzy parameters.
Publication Date
Winter December 7, 2010
Citation Information
Hannaneh Rashidi-Bajgan, Javad Rezaeian, Taravatsadat Nehzati and Napsiah Ismail. "A genetic algorithm for capital budgeting problem with fuzzy parameters" International Conference on Computer Applications and Industrial Electronics (ICCAIE) (2010)
Available at: http://works.bepress.com/hannaneh_rashidi/15/