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A fully and discriminatorily informed particle swarm optimization with different sharing strategies for superior and inferior information

机译:具有完全区别信息的粒子群优化方法,具有不同的优劣信息共享策略

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摘要

What kind of information is used and in which way the particles interact with each other have direct effects on the particle swarm optimization (PSO) algorithm efficiency. In order to use the information more fully, effectively and reasonably, the paper proposes a fully and discriminatorily informed PSO (FDIPSO) algorithm. Unlike the traditional PSO algorithm, the algorithm takes the positive effects of all the superior neighbors and the negative effects of the inferior particles into account and employs different mechanisms for attractive and repulsive effects to prevent confusion of swarm evolution caused by the different effects. The superior information is fully used to build high quality equilibrium points as attractors to guide particles while the repulsive effect from inferior information is embodied by introducing an 'escape coefficient' to help adjust the movement of particles. Experimental studies are conducted on a set of well-known benchmark functions including unimodal, multimodal and rotated problems. Computational results show positive effect and negative effect work collaboratively in FIDPSO, verify the relative superiority of this strategy over four other information sharing strategies and indicate that the approach outperforms several other state-of-art PSO variants on the test problems.
机译:使用哪种类型的信息以及粒子相互之间的交互方式直接影响粒子群优化(PSO)算法的效率。为了更充分,有效和合理地使用信息,本文提出了一种完全和区分性的PSO(FDIPSO)算法。与传统的PSO算法不同,该算法考虑了所有上级邻居的积极影响和劣等粒子的消极影响,并采用了不同的吸引和排斥效果机制,以防止因不同效果而导致的群体进化混乱。优越的信息被完全用来建立高质量的平衡点,作为吸引粒子的导引器,而劣等信息的排斥作用则通过引入“逃逸系数”来帮助调整粒子的运动来体现。对一组著名的基准函数(包括单峰,多峰和旋转问题)进行了实验研究。计算结果表明,在FIDPSO中协同发挥了积极作用和消极作用,证明了该策略相对于其他四种信息共享策略的相对优越性,并且表明该方法在测试问题上优于其他几种最新的PSO变体。

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