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吕欣

作品数:3 被引量:2H指数:1
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DAMAGE CLASSIFICATION BY PROBABILISTIC NEURAL NETWORKS BASED ON LATENT COMPONENTS FOR TIME-VARYING SYSTEM被引量:2
2009年
A new approach to damage classification for health monitoring of a time-varylng system is presented. The functional-series time-dependent auto regressive moving average (FS-TARMA) time series model is applied to the vibration signal observed in the time-varying system for estimating the TAR/TMA parameters and the innovation variance. These parameters are the functions of the time, represented by a group of projection coefficients on the certain functional subspace with specific basis functions. The estimated TAR/TMA parameters and the innovation variance are further used to calculate the latent components (LCs) as the more informative data for health monitoring evaluation, based on an eigenvalue decomposition technique. LCs are then combined and reduced to numerical values (NVs) as feature sets, which are input to a probabilistic neural network (PNN) for the damage classification. For the evaluation of the proposed method, numerical simulations of the damage classification for a tlme-varylng system are used, in which different classes of damage are modeled by the mass or stiffness reductions. It is demonstrated that the method can identify the damages in the course of operation and the change of parameters on the time-varying background of the system.
袁健周燕吕欣
基于LC理论和概率神经网络的时变系统的损伤识别
结构健康监测技术己经成为工程领域研究的热点,而损伤诊断则是结构健康监测系统的核心技术之一。随着传感器技术、测试技术、计算机技术和信号分析技术的迅猛发展,损伤诊断呈现出新的面貌,并显示出强盛的生命力,融合了数学,物理,化学...
吕欣
关键词:结构健康监测系统结构损伤识别概率神经网络
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