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A Novel Chaotic PSO Algorithm Based on Tent Map and Its Application to Mechanical Design

机译:基于帐篷图的混沌PSO算法及其在机械设计中的应用

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To prevent the Particle Swarm Optimization algorithm (PSO) plunging into the local minima with low convergence speed in the later stage of iteration, especially for multimodal functions with lots of local minima, a novel hybrid algorithm combining PSO with the chaotic optimization algorithm based on Tent map is proposed in this paper. In view of the advantages of Tent map, the chaotic sequences generated by it are used to implement chaotic searching at zones nearby individual and global optimum points for particles escaping from the local minima. Optimization results of typical test functions and practical application in mechanical design show that the new algorithm has higher global search capability, convergence precision and faster speed for multimodal functions.
机译:为了防止粒子群优化算法(PSO)在迭代后期陷入低收敛速度的局部极小值,特别是对于具有大量局部极小值的多峰函数,将PSO与基于Tent的混沌优化算法相结合的新型混合算法本文提出了地图。考虑到帐篷图的优点,由它生成的混沌序列可用于在单个和全局最佳点附近的区域进行混沌搜索,以逃避局部极小值的粒子。典型测试函数的优化结果和在机械设计中的实际应用表明,新算法具有更高的全局搜索能力,收敛精度和更快的多峰函数速度。

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