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Discrete linear control enhanced by adaptive neural networks in application to a HDD-servo-system

机译:自适应神经网络增强的离散线性控制在HDD伺服系统中的应用

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The performance of a linear, discrete high performance track following controller in a hard disk drive is improved for its disturbance rejection by the introduction of a discrete non-linear, adaptive neural network (NN) element. The NN-element is deemed to be particularly effective for rejection of bias forces and friction. Theoretical, simulation and experimental results have been obtained. It is shown theoretically that an NN-element is effective in counteracting these non-linear, system-specific, model-dependent disturbances. The disturbance, i.e. the bias and friction force, is assumed to be unknown, with the exception that the disturbance is known to be matched to the plant actuator input range and the disturbance is an (unknown) continuous function of the plant output measurements. For a non-linear simulation model and a laboratory HDD-servo-system, it is shown that the NN-control element improves performance and appears particularly effective for a reasonably small number of NN-nodes.
机译:通过引入离散的非线性自适应神经网络(NN)元素,可以改善硬盘驱动器中线性,离散高性能磁道跟踪控制器的性能,以改善其抗干扰能力。 NN元素被认为对消除偏压力和摩擦特别有效。获得了理论,仿真和实验结果。理论上表明,NN元件可以有效地抵消这些非线性的,系统特定的,与模型有关的干扰。假定干扰(即偏压力和摩擦力)未知,但已知干扰与设备执行器输入范围相匹配,并且干扰是设备输出测量值的(未知)连续函数。对于非线性仿真模型和实验室HDD伺服系统,已表明NN控制元素提高了性能,并且对于相当数量的NN节点显得特别有效。

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