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Modeling Vertical Roller Mill Raw Meal Residue by Implementing Neural Network

机译:通过实施神经网络建模垂直滚筒磨生膳食残留物

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This study proposes a method for modeling the Vertical Roller Mill (VRM) to predict residue 90 micron and residue 200 micron of the raw meal product using Back Propagation Neural Network (BPNN). The modelling step is input preparation, Artificial Neural Network (ANN) structure determination, optimizer and loss function selection, training ANN and model evaluation. In this research, RMSprop optimizer and MSE loss function are used, and show better modelling results than others to predict residue data quality of the VRM raw meal products.
机译:该研究提出了一种用于使用背部传播神经网络(BPNN)预测垂直辊磨机(VRM)以预测残留物90微米和残留膳食产品的残留物200微米。建模步骤是输入准备,人工神经网络(ANN)结构确定,优化器和丢失功能选择,培训ANN和模型评估。在本研究中,使用RMSProp优化器和MSE损耗功能,并显示比其他产品更好的建模结果,以预测VRM生膳产品的残留数据质量。

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