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Proposal of Particle Swarm Optimization Methods with Nonlinear Dissipative Term

机译:具有非线性耗散项的粒子群优化方法的建议

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Optimization methods based on metaheuristics are proposed as a class of global optimization methods, by which the global minimum can be obtained without being trapped in local minima. Particle swarm optimization (PSO), which is one of these methods, is known for its high searching ability and easy implementation. However, it might be difficult to find the global optimum for optimization problems with a number of decision variables and multiple local optima. In this paper, we propose three types of new PSO methods to overcome this difficulty. One is a model with nonlinear dissipative term introduced by Fujita and colleagues [4] to prohibit the search point's velocity from being zero. The others are models with the nonlinear dissipative term with the pbest or the gbest information to disturb the search around them.
机译:提出了基于元启发式的优化方法作为一类全局优化方法,通过该方法可以获得全局最小值而不会陷入局部最小值。这些方法之一就是粒子群优化(PSO),以其高搜索能力和易于实现而著称。但是,可能难以找到具有多个决策变量和多个局部最优值的优化问题的全局最优值。在本文中,我们提出了三种新的PSO方法来克服这一难题。一种是由Fujita及其同事[4]引入的具有非线性耗散项的模型,该模型禁止搜索点的速度为零。其他的则是具有非线性耗散项的模型,这些模型具有最坏的信息或最坏的信息,会干扰周围的搜索。

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