首页> 外国专利> Backlash compensation with filtered prediction in discrete time nonlinear systems by dynamic inversion using neural networks

Backlash compensation with filtered prediction in discrete time nonlinear systems by dynamic inversion using neural networks

机译:离散时间非线性系统中通过神经网络进行动态反演的带滤波预测的反冲补偿

摘要

Methods and apparatuses for backlash compensation. A dynamics inversion compensation scheme is designed for control of nonlinear discrete-time systems with input backlash. The techniques of this disclosure extend the dynamic inversion technique to discrete-time systems by using a filtered prediction, and shows how to use a neural network (NN) for inverting the backlash nonlinearity in the feedforward path. The techniques provide a general procedure for using NN to determine the dynamics preinverse of an invertible discrete time dynamical system. A discrete-time tuning algorithm is given for the NN weights so that the backlash compensation scheme guarantees bounded tracking and backlash errors, and also bounded parameter estimates. A rigorous proof of stability and performance is given and a simulation example verifies performance. Unlike standard discrete-time adaptive control techniques, no certainty equivalence (CE) or linear-in-the-parameters (LIP) assumptions are needed.
机译:间隙补偿的方法和设备。设计了一种动力学反演补偿方案,用于控制带有输入反冲的非线性离散时间系统。本公开的技术通过使用滤波的预测将动态反演技术扩展到离散时间系统,并且示出了如何使用神经网络(NN)来反演前馈路径中的反冲非线性。该技术提供了使用NN确定可逆离散时间动力系统的动力学预逆的通用过程。针对NN权重给出了离散时间调整算法,以使反冲补偿方案能够保证有限的跟踪和反冲误差以及有限的参数估计。给出了稳定性和性能的严格证明,并通过仿真示例验证了性能。与标准离散时间自适应控制技术不同,不需要确定等价性(CE)或参数线性(LIP)假设。

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