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首页> 外文期刊>International Journal of Automotive Technology >USING FUZZY LOGIC CONTROLLER AND EVOLUTIONARY GENETIC ALGORITHM FOR AUTOMOTIVE ACTIVE SUSPENSION SYSTEM
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USING FUZZY LOGIC CONTROLLER AND EVOLUTIONARY GENETIC ALGORITHM FOR AUTOMOTIVE ACTIVE SUSPENSION SYSTEM

机译:主动悬架系统中模糊逻辑控制器与进化遗传算法的结合

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摘要

This study designs a fuzzy logic controller (FLC) for an active automobile suspension system in which the membership functions and control rules are optimized using a genetic algorithm (GA). The objective of the FLC is to strike an optimal balance between the ride comfort and the vehicle stability. The values of the crossover and mutation parameters in the GA are adapted dynamically during the convergence procedure using a fuzzy control scheme. The convergence state of the GA is determined by using a support vector machine (SVM) method to identify the variation in each of the genes of the best-fit GA chromosome following each iteration loop. The feasibility of the proposed GA-assisted FLC scheme is verified by performing a series of numerical simulations in which the characteristics of the controlled plant are compared with those observed in a passive suspension system and obtained under an optimal linear feedback controller. The results demonstrate that the GA-assisted FLC results in a lower suspension deflection, a reduced sprung mass acceleration and a lower bouncing distance between the tire and the ground.
机译:本研究设计了一种用于主动式汽车悬架系统的模糊逻辑控制器(FLC),其中的隶属函数和控制规则使用遗传算法(GA)进行了优化。 FLC的目标是在行驶舒适性和车辆稳定性之间达到最佳平衡。遗传算法中交叉和变异参数的值在收敛过程中使用模糊控制方案动态调整。通过使用支持向量机(SVM)方法来确定GA的收敛状态,以识别每个迭代循环后最适合的GA染色体的每个基因的变异。通过执行一系列数值模拟,将受控植物的特征与无源悬挂系统中观察到的特征进行比较,并在最佳线性反馈控制器下获得,从而验证了所提出的GA辅助FLC方案的可行性。结果表明,GA辅助FLC导致较低的悬架挠度,减小的簧载质量加速度和较小的轮胎与地面之间的弹跳距离。

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