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Quality and robustness improvement for real world industrial systems using a fuzzy particle swarm optimization

机译:使用模糊粒子群优化的现实世界工业系统的质量和鲁棒性改进

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This paper presents a novel fuzzy particle swarm optimization with cross-mutated (FPSOCM) operation, where a fuzzy logic system developed based on the knowledge of swarm intelligence is proposed to determine the inertia weight for the swarm movement of particle swarm optimization (PSO) and the control parameter of a newly introduced cross-mutated operation. Hence, the inertia weight of the PSO can be adaptive with respect to the search progress. The new cross-mutated operation intends to drive the solution to escape from local optima. A suite of benchmark test functions are employed to evaluate the performance of the proposed FPSOCM. Experimental results show empirically that the FPSOCM performs better than the existing hybrid PSO methods in terms of solution quality, robustness, and convergence rate. The proposed FPSOCM is evaluated by improving the quality and robustness of two real world industrial systems namely economic load dispatch system and self-provisioning systems for communication network services. These two systems are employed to evaluate the effectiveness of the proposed FPSOCM as they are multi-optima and non-convex problems. The performance of FPSOCM is found to be significantly better than that of the existing hybrid PSO methods in a statistical sense. These results demonstrate that the proposed FPSOCM is a good candidate for solving product or service engineering problems which have multi-optima or non-convex natures.
机译:本文提出了一种新颖的带有交叉变异(FPSOCM)操作的模糊粒子群优化算法,在此基础上,提出了一种基于群体智能知识的模糊逻辑系统,用于确定粒子群优化算法(PSO)的粒子群运动惯性权重。新引入的交叉变异运算的控制参数。因此,PSO的惯性权重可以相对于搜索进度适应。新的交叉变异运算旨在驱动解决方案摆脱局部最优。一套基准测试功能用于评估所提出的FPSOCM的性能。实验结果表明,FPSOCM在解决方案质量,鲁棒性和收敛速度方面比现有的混合PSO方法表现更好。通过改善两个实际工业系统的质量和鲁棒性来评估提出的FPSOCM,这两个工业系统是经济负载分配系统和用于通信网络服务的自我配置系统。这两个系统用于评估所提出的FPSOCM的有效性,因为它们是多最优性和非凸性问题。在统计意义上,发现FPSOCM的性能明显优于现有的混合PSO方法。这些结果表明,提出的FPSOCM是解决具有多最优性或非凸性的产品或服务工程问题的理想选择。

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