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A Novel Adaptive PSO Algorithm on Schaffer's F6 Function

机译:Schaffer F6功能的新型自适应PSO算法

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Analyzing the distance between the location and the new location, we conclude inertia weight method which linearly decreases from 0.9 to 0.4 has the powerful local search ability on Schaffer’s F6 function. In order to improve the balance between local and global search ability, the novel adaptive PSO algorithm which evaluates a reset function to control the inertia weight value is proposed. Once plunged into the local optimum, inertia weight, pbest and gbest should be reset to get away from the local optimum. Compared with the particle’s traces, the novel algorithm has a great potential advantage. Simulation results show that the novel adaptive algorithm is better than the inertia weight algorithm in terms of the successful searching rate on Schaffer’s F6 function.
机译:分析位置与新位置之间的距离,我们得出了惯性重量方法,从0.9到0.4线性减少,在Schaffer的F6功能上具有强大的本地搜索能力。为了提高本地和全球搜索能力之间的平衡,提出了评估复位函数来控制惯性重量值的新型自适应PSO算法。一旦进入局部最佳,惯性体重,应该重置PBEST和GBEST以远离本地最佳。与粒子的迹线相比,新型算法具有很大的潜在优势。仿真结果表明,在Schaffer的F6功能成功搜索率方面,新型自适应算法优于惯性重量算法。

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