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An enhanced sequential sensor optimization scheme and its application in the system identification of a rail-sleeper-ballast system

机译:一种增强的顺序传感器优化方案及其在轨道 - 卧式镇流器系统的系统识别中的应用

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摘要

The problem of optimal sensor placement for system identification and damage detection is addressed by the development of a robust method based on Bayesian theory. Information entropy is used as the optimality measure to select the optimal configuration from the candidate configurations for a given number of sensors. The enhanced sequential sensor placement (ESSP) algorithm was developed to efficiently address the computational bottlenecks that may arise when a large number of measurable degrees of freedom (DOFs) are considered for candidate configurations. In this paper, the sensor redundancy problem in finely meshed models was addressed by considering (1) the spatial correction of prediction errors at measurable DOFs and (2) a minimum sensor interval. The proposed ESSP algorithm and the two strategies for handling sensor redundancy were studied by comparing the optimal configurations from the conventional methods and that from the ESSP algorithm for a rail-sleeper-ballast system. Finally, the optimal sensor configurations thus obtained were verified via model updating of an in-situ ballasted track system using measured data from an impact hammer test. The analysis results clearly show improvements in the optimality of the sensor configuration with the proposed method relative to the conventional methods.
机译:基于贝叶斯理论的鲁棒方法的开发,解决了系统识别和损坏检测的最佳传感器放置问题。信息熵用作最优测量,以从给定数量的传感器中选择来自候选配置的最佳配置。开发了增强的顺序传感器放置(ESSP)算法以有效地解决可能在考虑候选配置的大量可测量的自由度(DOF)时出现的计算瓶颈。在本文中,通过考虑(1)可测量的DOF在最小传感器间隔的预测误差的空间校正来解决精细网状模型中的传感器冗余问题。通过比较传统方法的最佳配置以及从ESSP算法进行轨道柜 - 镇流器系统来研究所提出的essp算法和两个处理传感器冗余的策略。最后,通过使用来自冲击锤试验的测量数据的原位镇流轨道系统的模型更新来验证如此获得的最佳传感器配置。分析结果清楚地显示了具有相对于传统方法的所提出的方法的传感器配置的最优性的改进。

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