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基于灰色理论的设备状态预测
引用本文:于德介,臧献国,刘坚,李德刚.基于灰色理论的设备状态预测[J].湖南大学学报(自然科学版),2007,34(11):33-36.
作者姓名:于德介  臧献国  刘坚  李德刚
作者单位:湖南大学,机械与汽车工程学院,湖南,长沙,410082
基金项目:国家自然科学基金资助项目(70601010)
摘    要:针对一般GM(1,1)多步预测方法的不足,提出了一种基于代谢递补GM(1,1)的状态预测方法.该方法首先对原始信号进行预处理,再通过递补思想进行多步预测,然后利用更新数据进行代谢预测,最后计算设备状态的预测值与真实值误差,根据预测值的趋势判断设备的未来状态.实例分析结果表明,该方法所需数据样本少且数据训练时间短,后八步的预测精度可满足工程精度,能有效地应用于设备的中长期在线状态预测.

关 键 词:灰色理论  代谢递补  状态预测
文章编号:1000-2472(2007)11-0033-04
修稿时间:2007-03-09

Condition Prediction of Equipment Based on Grey Theory
YU De-jie,ZANG Xian-guo,LIU Jian,LI De-gang.Condition Prediction of Equipment Based on Grey Theory[J].Journal of Hunan University(Naturnal Science),2007,34(11):33-36.
Authors:YU De-jie  ZANG Xian-guo  LIU Jian  LI De-gang
Institution:College of Mechanical and Automotive Engineering, Hunan Univ, Changsha,Hunan 410082,China
Abstract:Considering the deficiencies of general multi-step predictive method based on GM(1,1)(grey model),a condition prediction method based on metabolic filling GM(1,1) was proposed.First,the multi-step predictive value was computed by filling idea after the original signals were pretreated.Then,the data was predicted metabolically using the refresh data.Finally,the error between the predictive value and the real value of equipment condition was computed,and the future condition of equipment was estimated according to the trend of predictive value.Practical examples demonstrated that only a few samples were required and the training time was short.The predictive precision of the following eight steps can reach the engineering precision.The method can be applied to medium and long term on-line condition prediction of equipment.
Keywords:grey theory  metabolic filling  condition prediction
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