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ESTIMATION OF MACHINING TIME FOR CNC MANUFACTURING USING NEURAL COMPUTING

机译:用神经计算估计数控加工的加工时间

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摘要

An approach to solving the problem of machining time estimation in production of complex products within CNC machining systems is presented in the paper. Heuristic analysis of the process is used to define the attributes of influence to machining time. For the problem of estimating machining time the following, Neural Computing techniques" are used: Back-Propagation Neural Network, Modular Neural Network, Radial Basis Function Neural Network, General Regression Neural Network and Self-Organizing Map Neural Network. Real data from the technological process obtained by measuring are used to design the model used in investigation. The established model is used to carry out the investigation aimed at learning and testing different algorithms of neural networks and the results are given by the RMS error. The best results in the validation phase were achieved by Modular Neural Network (RMSE: 1.89 %) and Back-Propagation Neural Network (RMSE: 2.03 %) while the worst results were achieved by Self-Organizing Map Neural Network (RMSE: 10.05 %).
机译:本文提出了一种解决数控加工系统中复杂产品生产中的加工时间估计问题的方法。过程的启发式分析用于定义对加工时间的影响属性。对于估计加工时间的问题,使用以下“神经计算技术”:反向传播神经网络,模块化神经网络,径向基函数神经网络,广义回归神经网络和自组织映射神经网络。来自技术的真实数据通过测量获得的过程来设计用于调查的模型,使用已建立的模型进行旨在学习和测试不同神经网络算法的调查,并以RMS误差给出结果,验证中的最佳结果通过模块化神经网络(RMSE:1.89%)和反向传播神经网络(RMSE:2.03%)实现了第二阶段,而自组织映射神经网络(RMSE:10.05%)则实现了最差的结果。

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