Remaining useful life estimation of rolling bearings based on sparse representation

Likun Ren, Weimin Lv
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引用次数: 7

Abstract

This paper proposes a novel methodology of rolling bearings remaining useful life (RUL) estimation based on sparse representation theory. By analyzing the inner relationships among monitored data, three particular properties of remaining useful life estimation tasks are concluded as the key prior knowledge: monotonicity and continuity of RUL evaluation show the relationships of monitored data and the evaluated RUL; similarity of adjacent monitored data lays the foundation of data driven RUL evaluation methodologies. These properties are then integrated into dictionary learning and sparse coding of sparse representation progress to build a remaining useful life estimation model. In the dictionary learning step, monotonicity and similarity are integrated through a matrix operator to learn more effective and concise dictionary; in the sparse coding step, new sparse model is proposed involving continuity and similarity. In the last step, the life ratio of training set to testing set is calculated through a Hough voting with sparse codes acquired from sparse coding step. With this ratio, the useful life of testing set can be calculated. So, the RUL of the testing set can be evaluated through useful life subtracting the running duration. Experiments are conducted on the ball bearing data provided by FEMTO-ST Institute and the results show the efficiency of our methodologies.
基于稀疏表示的滚动轴承剩余使用寿命估计
提出了一种基于稀疏表示理论的滚动轴承剩余使用寿命估计方法。通过分析监测数据之间的内在关系,得出剩余使用寿命估计任务的三个特性作为关键先验知识:RUL评估的单调性和连续性表明了监测数据与被评估RUL之间的关系;相邻监测数据的相似性是数据驱动RUL评价方法的基础。然后将这些属性集成到字典学习和稀疏表示过程的稀疏编码中,以构建剩余使用寿命估计模型。在字典学习步骤中,通过矩阵算子对单调性和相似性进行积分,学习到更有效、简洁的字典;在稀疏编码步骤中,提出了包含连续性和相似性的稀疏模型。最后一步,利用稀疏编码步骤获得的稀疏码,通过霍夫投票计算训练集与测试集的寿命比。利用该比值,可以计算出测试集的使用寿命。因此,可以通过使用寿命减去运行时间来评估测试集的RUL。在FEMTO-ST研究所提供的滚珠轴承数据上进行了实验,结果表明了本文方法的有效性。
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