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Hierarchical coordinated control of a multi-procedure CSPS system by learning optimisation methods

Author

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  • Hao Tang
  • Chao Wang
  • Masayuki Matsui
  • Bing Liu

Abstract

We consider the hierarchical coordinated control of a multi-procedure conveyor-serviced production station system with flexible stations deployed between adjacent procedures, which includes a dynamic intra-procedure switching control of the flexible stations for the goal of balancing different procedures and a dynamic inter-procedure production coordination of all of the stations within each procedure. It is complicated in terms of modelling and optimisation, and thus, it is difficult to find a solution using numerical methods; as a result, we refer to model-free learning optimisation methods. First, we establish a neuro-dynamic programming algorithm by utilising cerebellar model articulation controllers (CMACs) to approximate state-action values at an upper hierarchy. Second, according to the reaction-diffusion phenomenon, we combine a Wolf-PHC algorithm with a local information-interaction scheme to learn look-ahead control policies at the lower hierarchy. Simulation results show that, compared with traditional Q-learning and the backward Q-learning based Q-learning, our proposed CMAC-based learning optimisation methods have the advantages of yielding a higher processing rate and having a faster optimisation speed with a lower storage requirement.

Suggested Citation

  • Hao Tang & Chao Wang & Masayuki Matsui & Bing Liu, 2015. "Hierarchical coordinated control of a multi-procedure CSPS system by learning optimisation methods," International Journal of Production Research, Taylor & Francis Journals, vol. 53(7), pages 2055-2072, April.
  • Handle: RePEc:taf:tprsxx:v:53:y:2015:i:7:p:2055-2072
    DOI: 10.1080/00207543.2014.952797
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