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A Shaking Optimization Algorithm for Solving Job Shop Scheduling Problem
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  • A Shaking Optimization Algorithm for Solving Job Shop Scheduling Problem
  • A Shaking Optimization Algorithm for Solving Job Shop Scheduling Problem
저자명
Abdelhafiez. Ehab A.,Alturki. Fahd A.
간행물명
Industrial engineering & management systems : an international journal
권/호정보
2011년|10권 1호|pp.7-14 (8 pages)
발행정보
대한산업공학회
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정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

In solving the Job Shop Scheduling Problem, the best solution rarely is completely random; it follows one or more rules (heuristics). The Genetic Algorithm (GA), Particle Swarm Optimization (PSO), Simulated Annealing, and Tabu search, which belong to the Evolutionary Computations Algorithms (ECs), are not efficient enough in solving this problem as they neglect all conventional heuristics and hence they need to be hybridized with different heuristics. In this paper a new algorithm titled "Shaking Optimization Algorithm" is proposed that follows the common methodology of the Evolutionary Computations while utilizing different heuristics during the evolution process of the solution. The results show that the proposed algorithm outperforms the GA, PSO, SA, and TS algorithms, while being a good competitor to some other hybridized techniques in solving a selected number of benchmark Job Shop Scheduling problems.