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Mixed Replenishment Policy for ATO Supply Chain Based on Hybrid Genetic Simulated Annealing Algorithm

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  • Hui Huang
  • Yan Jin
  • Bo Huang
  • Han-Guang Qiu

Abstract

Timely components replenishment is the key to ATO (assemble-to-order) supply chain operating successfully. We developed a production and replenishment model of ATO supply chain, where the ATO manufacturer adopts both JIT and ( Q , r ) replenishment mode simultaneously to replenish components. The ATO manufacturer’s mixed replenishment policy and component suppliers’ production policies are studied. Furthermore, combining the rapid global searching ability of genetic algorithm and the local searching ability of simulated annealing algorithm, a hybrid genetic simulated annealing algorithm (HGSAA) is proposed to search for the optimal solution of the model. An experiment is given to illustrate the rapid convergence of the HGSAA and the good quality of optimal mixed replenishment policy obtained by the HGSAA. Finally, by comparing the HGSAA with GA, it is proved that the HGSAA is a more effective and reliable algorithm than GA for solving the optimization problem of mixed replenishment policy for ATO supply chain.

Suggested Citation

  • Hui Huang & Yan Jin & Bo Huang & Han-Guang Qiu, 2014. "Mixed Replenishment Policy for ATO Supply Chain Based on Hybrid Genetic Simulated Annealing Algorithm," Mathematical Problems in Engineering, Hindawi, vol. 2014, pages 1-9, March.
  • Handle: RePEc:hin:jnlmpe:574827
    DOI: 10.1155/2014/574827
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    Cited by:

    1. Hui Huang & Yuyu Li & Bo Huang & Xing Pi, 2015. "An Optimization Model for Expired Drug Recycling Logistics Networks and Government Subsidy Policy Design Based on Tri-level Programming," IJERPH, MDPI, vol. 12(7), pages 1-14, July.

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