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Genetic algorithm based production planning for alternative process production

  • Fa Ping Zhang*
  • , Hou Fang Sun
  • , I. Butt Shahid
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Production planning under flexible job shop environment is studied. A mathematic model is formulated to help improve alternative process production. This model, in which genetic algorithm is used, is expected to result in better production planning, hence towards the aim of minimizing production cost under the constraints of delivery time and other scheduling conditions. By means of this algorithm, all planning schemes which could meet all requirements of the constraints within the whole solution space are exhaustively searched so as to find the optimal one. Also, a case study is given in the end to support and validate this model. Our results show that genetic algorithm is capable of locating feasible process routes to reduce production cost for certain tasks. Copyright Protection.

Original languageEnglish
Pages (from-to)278-282
Number of pages5
JournalJournal of Beijing Institute of Technology (English Edition)
Volume18
Issue number3
Publication statusPublished - Sept 2009

Keywords

  • Alternative process production
  • Flexible job shop
  • Genetic algorithm
  • Production planning

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