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首页> 外文期刊>Sensors and Actuators, A. Physical >Parameter identification of Jiles-Atherton model for magnetostrictive actuator using hybrid niching coral reefs optimization algorithm
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Parameter identification of Jiles-Atherton model for magnetostrictive actuator using hybrid niching coral reefs optimization algorithm

机译:使用杂交核珊瑚礁优化算法磁致伸缩执行器Jile-Atherton模型的参数识别

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The Jiles-Atherton model is widely applied in the description of hysteresis in ferromagnetic, ferroelectric, magnetostrictive and piezoelectric materials, however the parameter identification of it constitutes a challenging problem. In this paper, a hybrid niching coral reefs optimization algorithm (HNCRO) is proposed and implemented for parameter identification of the Jiles-Atherton model for magnetostrictive actuator. To prevent the algorithm from converging to the local optimum, the niche technology based on fitness sharing is introduced into original coral reefs optimization algorithm (OCRO). In order to enhance the local search capability of OCRO, Rosenbrock's rotational direction method is applied to refine the best solution. Compared with OCRO, genetic algorithm, particle swarm optimization, hybrid particle swarm optimization and gravitational search algorithm and differential evolution algorithm with a hybrid mutation operator, the proposed algorithm has better performance in terms of convergence speed, success rate, and accuracy in benchmark functions test. At last, experiments are carried out to verify the effectiveness of the proposed approach on a magnetostrictive actuator. The results demonstrate that the HNCRO is a promising method for parameter identification of the Jiles-Atherton model. (C) 2017 Elsevier B.V. All rights reserved.
机译:所述Jiles-阿瑟顿模型被广泛应用于滞后在铁磁,铁电,磁致伸缩 - 压电描述,然而,参数识别的它构成了一个具有挑战性的问题。在本文中,一种混合​​小生境珊瑚礁优化提出并用于Jiles-阿瑟顿模型磁致伸缩致动器的参数识别执行的算法(HNCRO)。为了防止算法收敛于局部最优的基础上,适应值共享小生境技术引入到原始的珊瑚礁优化算法(OCRO)。为了增强OCRO的局部搜索能力,被施加的ROSENBROCK的旋转方向的方法来缩小的最佳解决方案。与OCRO,遗传算法,粒子群算法,混合粒子群优化和引力搜索算法和差分进化算法的混合变异算相比,该算法在测试函数测试的收敛速度,成功率和精确度方面更好的性能。最后,进行了实验,以验证在磁致伸缩致动器所提出的方法的有效性。该结果表明,该HNCRO对于Jiles-阿瑟顿模型参数识别一个有前途的方法。 (c)2017年Elsevier B.V.保留所有权利。

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