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Feedback error learning neural networks for air-to-fuel ratio control in SI engines

机译:反馈误差学习神经网络用于SI发动机的空运比控制

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摘要

A controller is introduced for air-to-fuel ratio management, and the control scheme is based on the feedback error learning method. The controller consists of neural networks with linear feedback controller. The neural networks are radial basis function network (RBFN) that are trained by using the feedback error learning method, and the air-to-fuel ratio is measured from the wide-band oxygen sensor. Because the RBFNs are trained by on-line manner, the controller has adaptation capability, accordingly do not require the calibration effort. The performance of the controller is examined through experiments in transient operation with the engine dynamometer.
机译:引入控制器以进行空气到燃料比管理,控制方案基于反馈误差学习方法。控制器由具有线性反馈控制器的神经网络组成。神经网络是通过使用反馈误差学习方法训练的径向基函数网络(RBFN),并且从宽带氧传感器测量空气到燃料比。由于RBFN通过在线方式训练,因此控制器具有适配能力,因此不需要校准工作。通过使用发动机测功机的瞬态操作实验检查控制器的性能。

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