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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Thermal sensor selection for the thermal error modeling of machine tool based on the fuzzy clustering method
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Thermal sensor selection for the thermal error modeling of machine tool based on the fuzzy clustering method

机译:基于模糊聚类的机床热误差建模热传感器选择

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摘要

Thermal sensor selection is a work of great importance when modeling thermal error. The proper selection of thermal sensors and their locations may greatly improve the prediction accuracy. In this article, the fuzzy C means (FCM) clustering method and the ISODATA method are used to group the data of thermal sensors and a genetic algorithm-back propagation artificial neural network thermal model is established to testify the accuracy. A validity criterion for the FCM method is put forward to guarantee the precision of the model. Both the FCM and the ISODATA methods are effective for thermal sensor selection.
机译:在对热误差建模时,热传感器的选择非常重要。正确选择热传感器及其位置可以大大提高预测精度。本文采用模糊C均值(FCM)聚类方法和ISODATA方法对热传感器数据进行分组,并建立了遗传算法-反向传播人工神经网络热模型以验证其准确性。提出了FCM方法的有效性准则,以保证模型的精度。 FCM和ISODATA方法对于选择热传感器都有效。

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