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基于数据驱动的数据故障诊断模型 被引量:4

Data Fault Diagnosis Model Based on Data-Driven
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摘要 针对交通和桥梁监测的数据诊断过程中,噪声掩盖了部分故障信息以及故障信息分布的多尺度性,提出了一种基于数据驱动的数据故障诊断模型。以故障检测为目的,加入了一种改进的小波阈值除噪方法,去除大部分随机高频噪声,提高了数据置信度;将重构信号进行了多尺度小波包分解,结合小波包能量分析法和主元分析法完成了故障检测与故障分离。模型实际应用于桥梁挠度监测数据故障诊断,结果表明,该模型可以减小错报率和漏报率,抗噪能力更强。 During the process of fault diagnosis of traffic and bridge monitoring data, it was found that the fauh information had a property of multi-scale, and sometimes part of it was covered by noise, so a data fault diagnosis model based on data- driven was proposed. In order to diagnose the fault, firstly, an improved wavelet threshold method was joined to remove most of random high frequency noises, which improved the data reliability. Secondly, the reconstructed signals were decomposed by multi-scale wavelet packet. And then, the model finished the mission of the fault detection and isolation by combining Wavelet Packet Energy Analysis and Principal Component Analysis. Finally, the proposed model was applied in a case study of bridge deflection data fault diagnosis. The results show that the model has many advantages such as lower fault and fail rate, and stronger anti-noise ability.
出处 《重庆交通大学学报(自然科学版)》 CAS 北大核心 2014年第5期111-115,共5页 Journal of Chongqing Jiaotong University(Natural Science)
基金 重庆交通大学研究生教育创新基金项目(20120110) 山区桥梁结构与材料教育部工程研究中心开放基金项目(QL2X-2012-6)
关键词 交通工程 数据驱动 小波阈值除噪 交通信息 主元分析 故障诊断 traffic engineering data-driven wavelet threshold denoising traffic information Principal Component Analysis (PCA) fault diagnosis
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参考文献4

  • 1曹佃国,王鹏.小波包-能量谱在提取脉搏信号特征中的应用[J].电子技术(上海),2010(1):19-20. 被引量:4
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  • 3.Addition formulae for non-Abelian theta functions and applications[J].Journal of Geometry and Physics.2003(2)
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