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Particle Swarm Optimization with Double Learning Patterns

机译:具有双重学习模式的粒子群优化

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摘要

Particle Swarm Optimization (PSO) is an effective tool in solving optimization problems. However, PSO usually suffers from the premature convergence due to the quick losing of the swarm diversity. In this paper, we first analyze the motion behavior of the swarm based on the probability characteristic of learning parameters. Then a PSO with double learning patterns (PSO-DLP) is developed, which employs the master swarm and the slave swarm with different learning patterns to achieve a trade-off between the convergence speed and the swarm diversity. The particles in the master swarm and the slave swarm are encouraged to explore search for keeping the swarm diversity and to learn from the global best particle for refining a promising solution, respectively. When the evolutionary states of two swarms interact, an interaction mechanism is enabled. This mechanism can help the slave swarm in jumping out of the local optima and improve the convergence precision of the master swarm. The proposed PSO-DLP is evaluated on 20 benchmark functions, including rotated multimodal and complex shifted problems. The simulation results and statistical analysis show that PSO-DLP obtains a promising performance and outperforms eight PSO variants.
机译:粒子群优化(PSO)是解决优化问题的有效工具。但是,由于群体多样性的快速丧失,PSO通常会过早收敛。在本文中,我们首先根据学习参数的概率特征来分析群体的运动行为。然后,开发了一种具有双重学习模式的PSO(PSO-DLP),它采用具有不同学习模式的主群和从群来实现收敛速度和群多样性之间的权衡。鼓励主群和从群中的粒子分别探索以保持群的多样性,并从全球最佳粒子中学习以完善有前途的解决方案。当两个群体的进化状态相互作用时,将启用相互作用机制。这种机制可以帮助从群跳出局部最优解,提高主群的收敛精度。拟议的PSO-DLP在20个基准功能上进行了评估,包括旋转多峰和复杂移位问题。仿真结果和统计分析表明,PSO-DLP获得了令人鼓舞的性能,并且优于八个PSO变体。

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