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RELIABILITY CALCULATION METHOD OF THE THERMAL ERROR MODEL OF A MACHINE TOOL BASED ON DEEP NEURAL NETWORK AND THE MONTE CARLO METHOD

机译:基于深神经网络和蒙特卡罗方法的机床热误差模型的可靠性计算方法

摘要

A method for calculating the reliability of the thermal error model of a machine tool based on deep neural network (DNN) and the Monte Carlo method, which belongs to the field of the thermal error compensation of computer numerical control (CNC) machine tools. Firstly, according to the probability distribution of the thermal parameters and thermal error model, a set of data for training the DNN is generated. Next, the DNN is constructed based on the deep belief networks (DBNs) and trained with the training data. Then, a group of random sampling data is obtained according to the probability distribution of the thermal characteristic parameters of the machine tool, and the group of random sampling is taken as the input and the output is obtained by the trained depth neural network. Finally, the reliability of the thermal error model is calculated based on the Monte Carlo method.
机译:一种基于深神经网络(DNN)和蒙特卡罗方法计算机床热误差模型的可靠性的方法,属于计算机数控(CNC)机床的热误差补偿领域。首先,根据热参数和热误差模型的概率分布,产生用于训练DNN的一组数据。接下来,基于深度信仰网络(DBN)构建DNN并用训练数据训练。然后,根据机床的热特性参数的概率分布获得了一组随机采样数据,并且将随机采样组作为输入,并通过训练的深度神经网络获得输出。最后,基于Monte Carlo方法计算了热误差模型的可靠性。

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