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Ant colony optimization for Cuckoo Search algorithm for permutation flow shop scheduling problem

机译:用于排列流水车间调度问题的布谷鸟搜索算法的蚁群优化

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TA Cuckoo Search (CS) algorithm based on ant colony algorithm is proposed for scheduling problem in permutation flow shop scheduling problem (PFSP). When the raised CS algorithm obtains the position of the bird nest to be updated, it is used as a set of initial solution of the ant colony optimization algorithm (ACO), and ACO algorithm search optimization is performed in a very small range. After that, the solution obtained by the ACO search is taken as a new candidate solution, compared with the candidate bird nest according to the fitness degree. When the candidate solution of the ACO search optimization is better than the one generated by the Lévy flight, the latter is replaced. Finally, the CS algorithm is selected, changing the new bird nest position according to the abandonment probability. The updated position tends to be more optimal, which improves the quality of the solution as well as the convergence speed and accuracy of the algorithm. Comparing the performance of the proposed algorithm with the standard Cuckoo one, by testing function, the optimized performance was verified. Finally, the Car benchmark test served as test data, and the performance in the PFSP was compared. The effectiveness and superiority in the algorithm in solving problem were confirmed.
机译:针对置换流水车间调度问题(PFSP)中的调度问题,提出了一种基于蚁群算法的TA Cuckoo Search(CS)算法。当提出的CS算法获得要更新的鸟巢的位置时,它被用作蚁群优化算法(ACO)的一组初始解,并且ACO算法的搜索优化在很小的范围内进行。此后,将ACO搜索获得的解作为新的候选解,并根据适应度与候选鸟巢进行比较。当ACO搜索优化的候选解决方案优于Lévy航班生成的解决方案时,将替换后者。最后,选择CS算法,根据放弃概率更改新的鸟巢位置。更新后的位置倾向于更优化,从而提高了解决方案的质量以及算法的收敛速度和准确性。将所提算法与标准布谷鸟算法的性能进行比较,通过测试功能验证了算法的优化性能。最后,将汽车基准测试用作测试数据,并对PFSP中的性能进行了比较。证明了该算法在解决问题上的有效性和优越性。

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