Refining PID Controllers using Neural Networks

Scott, Gary M., Shavlik, Jude W., Ray, W. Harmon

Neural Information Processing Systems 

We apply this method to the task of controlling the outflow and temperature of a water tank, producing statistically-significant gains in accuracy over both a standard neural network approach and a non-learning PID controller. Furthermore, using the PID knowledge to initialize the weights of the network produces statistically less variation in testset accuracy when compared to networks initialized with small random numbers.

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