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基于遗传算法和最小二乘支持向量机的织物剪切性能预测 被引量:2

Prediction of Fabric Shearing Property with Least Square Support Vector Machines
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摘要 提出了一种基于最小二乘支持向量机的织物剪切性能预测模型,并且采用遗传算法进行最小二乘支持向量机的参数优化,将获得的样本进行归一化处理后,将其输入预测模型以得到预测结果.仿真结果表明,基于最小二乘支持向量机的预测模型比BP神经网络和线性回归方法具有更高的精度和范化能力. Abstract: A new method is proposed to predict the fabric shearing property with least square support vector machines ( LS-SVM ). The genetic algorithm is investigated to select the parameters of LS-SVM models as a means of improving the LS- SVM prediction. After normalizing the sampling data, the sampling data are inputted into the model to gain the prediction result. The simulation results show the prediction model gives better forecasting accuracy and generalization ability than BP neural network and linear regression method.
出处 《计量学报》 CSCD 北大核心 2009年第6期-,共4页 Acta Metrologica Sinica
基金 安徽省自然科学基金,安徽省教育厅青年教师科研资助计划,安徽工程科技学院青年教师基金
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