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A hybrid prognostic method based on gated recurrent unit network and an adaptive Wiener process model considering measurement errors

机译:基于门控复发单元网络的混合预测方法和考虑测量误差的自适应维纳工艺模型

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摘要

Remaining useful life (RUL) prediction is fundamental to prognostics and health management (PHM). Considering the advantages of both model-based and data-driven prognostic approaches, this paper develops a hybrid prognostic method for machinery degradation. First, a 3a criterion-based algorithm is introduced to detect the initial timepoint of degradation. Second, gated recurrent unit (GRU) network is utilized to learn the degradation characteristics based on the available data and thereby predict the long-term degradation trend by a multi-prediction procedure. Then, an adaptive Wiener process model considering measurement errors is constructed. The states of this model consisting of the drift rate and the underlying degradation value are updated adaptively based on the monitored observations and the predictions by GRU using a Kalman filtering algorithm. The predicted values of the RUL can be determined according to the underlying degradation and the failure threshold. Finally, to account for the drift adaptivity in the future degradation, exponentially weighted average method is adopted to aggregate the estimated drift sequence from the current time until failure for the derivation of real-time RUL distributions. The effectiveness and superiority are illustrated by a simulation study and an application to rolling element bearings.
机译:剩余的使用寿命(RUL)预测是预后和健康管理(PHM)的基础。考虑到基于模型和数据驱动的预后方法的优点,这篇论文开发了用于机械降解的混合预后方法。首先,引入了基于3A标准的算法来检测初始降级的初始调度。其次,使用基于可用数据的劣化特性,从而通过多预测过程预测长期降级趋势来学习劣化特性。然后,构造考虑测量误差的自适应维纳过程模型。基于使用Kalman滤波算法的监视观察和GRU的预测,自适应地更新由漂移率和底层劣化值组成的该模型。 RUL的预测值可以根据底层的劣化和故障阈值确定。最后,为了解释未来的劣化中的漂移适应性,采用指数加权的平均方法从当前时间聚合估计的漂移序列,直到导出实时RUL分布的失败。通过模拟研究和滚动元件轴承的应用说明了有效性和优越性。

著录项

  • 来源
    《Mechanical systems and signal processing》 |2021年第9期|107785.1-107785.21|共21页
  • 作者单位

    State Key Laboratory of Mechanical System and Vibration Department of Industrial Engineering & Management Shanghai Jiao Tong University Shanghai 200240 China;

    State Key Laboratory of Mechanical System and Vibration Department of Industrial Engineering & Management Shanghai Jiao Tong University Shanghai 200240 China;

    State Key Laboratory of Mechanical System and Vibration Department of Industrial Engineering & Management Shanghai Jiao Tong University Shanghai 200240 China;

    State Key Laboratory of Mechanical System and Vibration Department of Industrial Engineering & Management Shanghai Jiao Tong University Shanghai 200240 China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Remaining useful life prediction; Hybrid method; Gate recurrent unit network; Adaptive wiener process; Measurement errors;

    机译:剩下的使用寿命预测;杂交方法;栅极复发单元网络;自适应维纳流程;测量误差;

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