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基于鲁棒最近邻超圆盘的齿轮箱智能故障诊断
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Gearbox Intelligent Fault Diagnosis Based on Robust Nearest Neighbor Hyperdisk
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    摘要:

    针对超圆盘分类器存在分类精度和分类效率较低等问题,引入松弛变量,并考虑当前类样本和异类样本的约束以避免超圆盘相交,从而得到更合理的类别区域估计,得到鲁棒超圆盘模型(Robust Hyperdisk Model,RHD),将RHD模型与最近邻分类方法结合,提出一种鲁棒最近邻超圆盘分类器(Robust Nearest Neighbor Hyperdisk Classifiers,RNNHDC). RNNHDC只需计算未知样本点到各类别RHD的距离,计算效率高,且可以直接用于多分类任务. 最后将RNNHDC应用于齿轮箱故障诊断,在2个不同的齿轮箱数据集上进行实验验证,结果表明,RNNHDC分类精度高、鲁棒性强,可有效用于齿轮箱智能故障诊断.

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    Aiming at the low classification accuracy and efficiency of the original hyperdisk classifier, a Robust Hyperdisk Model (RHD) is proposed, where the relaxation variable is introduced based on the original hyperdisk model, and the constraints of current class samples and heterogeneous samples are considered at the same time to avoid the intersection of hyperdisks, so as to obtain a more reasonable category region estimation. Then, a Robust Nearest Neighbor Hyperdisk Classifier (RNNHDC) is proposed,which combines the RHD model with the nearest neighbor classification method. The RNNHDC only needs to calculate the distance from unknown sample points to each category RHD. And the RNNHDC has high computational efficiency and can be directly applied to multi-classification tasks. The RNNHDC has good classification efficiency. Finally, RNNHDC is applied to gearbox fault diagnosis. Experimental verification is carried out on two different gearbox datasets. The experimental results show that RNNHDC has better classification accuracy, robustness, and efficiency. The RNNHDC can be effectively used for gearbox intelligent fault diagnosis.

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宋立杰 ,胡天桢 ,李宝庆 ,蒋永健 ,杨宇 ,胡晖 ?.基于鲁棒最近邻超圆盘的齿轮箱智能故障诊断[J].湖南大学学报:自然科学版,2022,49(12):20~29

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  • 在线发布日期: 2023-01-02
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