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Research on Thermal Error Modeling of NC Machine Tool Based on BP Neural Networks

机译:基于BP神经网络的数控机床热误差建模研究。

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摘要

Through analysis of the thermal errors affected NC machine tool, a new prediction model based on BP neural networks is presented, and ant colony algorithm is applied to train the weights of neural network model. Finally, thermal error compensation experiment is implemented, and the thermal error is reduced from 35μm to 6μm. The result shows that the local minimum problem of BP neural network is overcome, and the model accuracy is improved.
机译:通过对影响数控机床热误差的分析,提出了一种新的基于BP神经网络的预测模型,并采用蚁群算法训练神经网络模型的权重。最后,进行了热误差补偿实验,将热误差从35μm减小到6μm。结果表明,该方法克服了BP神经网络的局部极小问题,提高了模型的精度。

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