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Controlling a turbine with a recurrent neural network

机译:用递归神经网络控制涡轮机

摘要

A method for controlling a turbine is proposed, which is characterized at any point in the control by a hidden state. The dynamic behavior of the turbine is modeled with a recurrent neural network comprising a recurrent hidden layer. In this case, the recurrent hidden layer is formed from vectors of neurons, which describe the hidden state of the turbine at the time points of the regulation, wherein two vectors are chronologically linked for each time point with a first connection bridging a time and second connection bridging at least two points in time. Short-term effects can be controlled by means of the first connections and long-term effects can be adjusted by means of the second connections. Secondly, emissions and also occurring dynamics in the turbine can be minimized. Furthermore, a regulating device and a turbine with such a regulating device are proposed.
机译:提出了一种用于控制涡轮机的方法,该方法的特征在于,在控制中的任何时候都具有隐藏状态。用包含递归隐藏层的递归神经网络对涡轮机的动态行为进行建模。在这种情况下,递归隐藏层由神经元矢量构成,这些矢量描述了调节时间点涡轮机的隐藏状态,其中两个矢量在每个时间点按时间顺序链接,第一连接桥接时间和第二连接桥接至少两个时间点。短期效果可以通过第一个连接进行控制,长期效果可以通过第二个连接进行调整。其次,可以最小化涡轮机中的排放以及发生的动力学。此外,提出了一种调节装置和具有这种调节装置的涡轮机。

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