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Switching Bayesian dynamic linear model for condition assessment of bridge expansion joints using structural health monitoring data

机译:用结构健康监测数据切换桥梁扩展关节条件评估的贝叶斯动态线性模型

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摘要

Age-related deterioration and premature failure have been primary concerns for bridge expansion joints. It is essential to improve the understanding of their operational performance. The existing approaches mainly formulate the deterministic/probabilistic temperature-displacement relationship (TDR) model to assess the structural condition of bridge expansion joints. Nevertheless, it is not easy to guarantee a strong correlation between representative temperature and displacement. Rather than establishing the TDR model, this work uses the displacement response to evaluate the expansion joint condition by combining the Bayesian dynamic linear model (BDLM) with Markov-switching theory. The external temperature effect on the displacement is modeled by the superposition of harmonic components in BDLM. The expectation-maximization (EM) algorithm initialized by the subspace method is employed to optimize the initial parameters. The presented approach is validated through the simulated data, and then it is applied to the expansion joint of a long-span bridge. Results show that EM with the subspace method involves high computational accuracy and efficiency in estimating unknown parameters compared to the Newton-Raphson approach. The switching BDLM successfully identifies the degradation process of expansion joints and offers the transition probability from the normal to other states.
机译:年龄相关的恶化和过早失败对桥梁膨胀接头进行了主要问题。重要的是改善对运营表现的理解。现有方法主要配制确定性/概率温度 - 位移关系(TDR)模型,以评估桥梁伸缩缝的结构条件。然而,不容易保证代表性温度和位移之间的强烈相关性。这项工作而不是建立TDR模型,而不是建立TDR模型,通过将贝叶斯动态线性模型(BDLM)与马尔可夫切换理论相结合来评估扩展联合条件。对位移的外部温度效应是通过BDLM中谐波分量的叠加模拟的。使用子空间方法初始化的期望 - 最大化(EM)算法用于优化初始参数。通过模拟数据验证所提出的方法,然后将其施加到长跨度桥的膨胀接头。结果表明,与牛顿 - 拉申方法相比,与子空间方法的em涉及高计算准确性和效率估算未知参数。切换BDLM成功识别扩展关节的劣化过程,并从正常到其他状态提供过渡概率。

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