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Towards practical control design using neural computation

机译:利用神经计算实现实际控制设计

摘要

The objective is to develop neural network based control design techniques which address the issue of performance/control effort tradeoff. Additionally, the control design needs to address the important issue if achieving adequate performance in the presence of actuator nonlinearities such as position and rate limits. These issues are discussed using the example of aircraft flight control. Given a set of pilot input commands, a feedforward net is trained to control the vehicle within the constraints imposed by the actuators. This is achieved by minimizing an objective function which is the sum of the tracking errors, control input rates and control input deflections. A tradeoff between tracking performance and control smoothness is obtained by varying, adaptively, the weights of the objective function. The neurocontroller performance is evaluated in the presence of actuator dynamics using a simulation of the vehicle. Appropriate selection of the different weights in the objective function resulted in the good tracking of the pilot commands and smooth neurocontrol. An extension of the neurocontroller design approach is proposed to enhance its practicality.
机译:目的是开发基于神经网络的控制设计技术,以解决性能/控制工作权衡问题。另外,如果在执行器非线性(例如位置和速率限制)存在的情况下获得足够的性能,则控制设计需要解决重要问题。这些问题将以飞机飞行控制为例进行讨论。给定一组飞行员输入命令,对前馈网络进行训练,以将车辆控制在执行器施加的约束内。这是通过最小化目标函数来实现的,该目标函数是跟踪误差,控制输入速率和控制输入偏移之和。通过自适应地改变目标函数的权重,可以在跟踪性能和控制平滑度之间进行权衡。在存在执行器动力学的情况下,使用车辆的仿真来评估神经控制器的性能。在目标函数中适当选择不同的权重会导致对飞行员命令的良好跟踪和平稳的神经控制。提出了神经控制器设计方法的扩展,以增强其实用性。

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