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A neural network based methodology for the prediction of roll force and roll torque in fuzzy form for cold flat rolling process

机译:基于神经网络的冷平板轧制过程中模糊形式的轧制力和轧制转矩的预测方法

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摘要

Neural network models can be effectively used to predict any type of functional relationship. In this paper, a neural network model is used to predict roll force and roll torque in a cold flat rolling process, as a function of various process parameters. A strategy is developed to obtain a prescribed accuracy of prediction with a minimum number of data for training and testing. The effect of increasing the size of training and testing data set is also examined. After the prediction of most likely value, upper and lower bound estimates are also found with the help of the neural network. With these estimates, the predicted value can be represented as a fuzzy number for use in fuzzy-logic based systems.
机译:神经网络模型可以有效地用于预测任何类型的功能关系。在本文中,使用神经网络模型来预测冷扁轧过程中的轧制力和轧制扭矩,作为各种工艺参数的函数。开发了一种策略,以最少的培训和测试数据量来获得规定的预测准确性。还检查了增加训练和测试数据集大小的效果。在预测出最可能的值之后,还可以借助神经网络找到上限和下限估计值。通过这些估计,可以将预测值表示为模糊数,以用于基于模糊逻辑的系统。

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