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基于LS-SVM与遗传算法的数控机床热误差辨识温度传感器优化策略
引用本文:林伟青,傅建中,许亚洲,陈子辰.基于LS-SVM与遗传算法的数控机床热误差辨识温度传感器优化策略[J].光学精密工程,2008,16(9):1682-1687.
作者姓名:林伟青  傅建中  许亚洲  陈子辰
作者单位:1. 浙江大学,机械工程学系,浙江,杭州,310027;福建农林大学机电学院,福建,福州,350002
2. 浙江大学,机械工程学系,浙江,杭州,310027
基金项目:国家自然科学基金,浙江省科技计划
摘    要:提出一种在数控机床热误差辨识建模过程中,利用最小二乘支持向量机结合遗传算法对温度传感器进行筛选与优化的新方法。对布置在一台数控车床上的温度传感器进行了优化,首先根据热模态理论,对传感器进行分组,利用最小二乘支持向量机方法构建数控机床热误差辨识模型,再根据遗传算法对其进行传感器优化布置。结果表明,遗传算法与最小二乘支持向量机方法的结合,不但很好地避免温度测点的相互影响,保证模型精度,而且节约了硬件成本,提高了辨识建模速度。

关 键 词:遗传算法  温度传感器  最小二乘支持向量机  数控机床
收稿时间:2007-11-21
修稿时间:2008-03-21

Optimal sensor placement for thermal error identification of NC machine tools based on LS-SVM and genetic algorithms
LIN Wei-qing,FU Jian-zhong,XU Ya-zhou,CHEN Zi-chen.Optimal sensor placement for thermal error identification of NC machine tools based on LS-SVM and genetic algorithms[J].Optics and Precision Engineering,2008,16(9):1682-1687.
Authors:LIN Wei-qing  FU Jian-zhong  XU Ya-zhou  CHEN Zi-chen
Abstract:A novel method based on Least Square Support Vector Machine(LS-SVM) and genetic algorithm to select the temperature sensors of a Numerical Control(NC) machine tool was presented.The measurement points in a CNC lathe were grouped based on the thermal mode theory,Then,the genetic algorithm was used to determine the positions of optimum sensors.Finally,a thermal error regression model was established by the LS-SVM and a compensation model for the machine tool was given also.The results show that the novel method combined genetic algorithms and LS-SVM well avoids the correlation of the temperature sensors and ensures the accuracy of the model.In the experiments of the CNC lathe,the mean absolute percentage error of the LS-SVM model is 1.89% in axial direction and 2.04% in radial direction,it also can reduce costs and shorten modeling time for less temperature sensors.
Keywords:genetic algorithms  temperature sensor  least squares support vector machine  NC machine tool
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