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Wearing prediction of stellite alloys based on opposite degree algorithm 被引量:2
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作者 Xiao-Guang Yue Guang Zhang +4 位作者 Qu Wu Fei Li Xian-Feng Chen Gao-Feng Ren Mei Li 《Rare Metals》 SCIE EI CAS CSCD 2015年第2期125-132,共8页
In order to predict the wearing of stellite alloys, the related methods of rare metals data processing were discussed. The method of opposite degree (OD) algorithm was put forward to predict the wearing of stellite ... In order to predict the wearing of stellite alloys, the related methods of rare metals data processing were discussed. The method of opposite degree (OD) algorithm was put forward to predict the wearing of stellite alloys. OD algorithm is based on prior numerical data, posterior numerical data and the opposite degree between numerical forecast data. To compare the performance of predicted results based on different algorithms, the back propagation (BP) and radial basis function (RBF) neural network methods were introduced. Predicted results show that the relative error of OD algorithm is smaller than those of BP and RBF neural network methods. OD algorithm is an effective method to predict the wearing of stellite alloys and it can be applied in practice. 展开更多
关键词 opposite degree algorithm Stellite alloyswearing Back propagation neural network Radial basisfunction neural network
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