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Transient Chaotic Discrete Neural Network for Flexible Job-Shop Scheduling

机译:瞬态混沌离散神经网络,用于灵活的工作店计划

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As an extension of the classical job-shop scheduling problem, the flexible job-shop scheduling problem (FJSP) allows an operation to be performed by one machine out of a set of machines. To solve the problem in real job shops, this paper presents a method of the discrete neural network with transient chaos (TDNN). The method considers various constraints in a FJSP. Furthermore, a new computational energy function for FJSP is proposed. A production scheduling program is developed in this research for validation and implementation of the proposed method in practical engineering situations. The experimental results show that the method can converge to the global optimum or near to the global optimum in reasonable and finite time.
机译:作为典型作业商店调度问题的扩展,灵活的作业商店调度问题(FJSP)允许由一组机器执行一个机器的操作。为了解决实际工作商店中的问题,本文提出了一种具有瞬态混沌(TDNN)的离散神经网络的方法。该方法考虑FJSP中的各种约束。此外,提出了一种用于FJSP的新计算能量函数。在本研究中开发了生产调度计划,用于实际工程情况下提出的方法。实验结果表明,该方法可以在合理和有限的时间内收敛到全球最佳或接近全球最佳。

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