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Indirect health monitoring of bridges using Mel-frequency cepstral coefficients and principal component analysis

机译:利用梅尔频率倒谱系数和主成分分析法间接监测桥梁的健康状况

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摘要

Bridge health monitoring is a very important part for infrastructure maintenance. Traditional bridge health monitoring techniques require sensors to be installed on bridges, which is costly and time consuming. In order to resolve this issue, new damage detection techniques by installing sensors on passing-by vehicles on bridges and considering vehicle bridge interaction (VBI) have gained much attention from researchers in last decade. In this paper, a novel damage detection technique utilizing data collected from sensors mounted on a large number of passing-by vehicles is developed. First, an approach based on Mel-frequency cepstral coefficients (MFCCs) is introduced. Then, an improved version based on MFCCs and principal component analysis (PCA) taking advantage of mobile sensor network is proposed to overcome the deficiencies in the approaches that utilize single measurement. In the improved approach, the acceleration data is first collected from all the vehicles within a certain period. Then, the transformed features that are related to bridge damage are extracted from MFCCs and PCA. The damage can be identified by comparing the distributions of these transformed features. The results from the numerical analysis and lab experiments show that the approach not only identifies the existence of the damage, but also provides useful information about severity. (C) 2018 Elsevier Ltd. All rights reserved.
机译:桥梁运行状况监视对于基础结构维护非常重要。传统的桥梁健康监测技术要求将传感器安装在桥梁上,这既昂贵又耗时。为了解决这个问题,在过去的十年中,通过在桥梁上的过路车辆上安装传感器并考虑车桥相互作用(VBI)的新的损坏检测技术已引起研究人员的广泛关注。在本文中,开发了一种新颖的损坏检测技术,该技术利用了从安装在大量过境车辆上的传感器收集的数据。首先,介绍了一种基于梅尔频率倒谱系数(MFCC)的方法。然后,提出了一种基于MFCC和主成分分析(PCA)的改进版本,该版本利用了移动传感器网络,以克服利用单次测量的方法的缺陷。在改进的方法中,首先在一定时期内从所有车辆收集加速度数据。然后,从MFCC和PCA中提取与桥梁损坏有关的变形特征。可以通过比较这些变换特征的分布来识别损坏。数值分析和实验室实验的结果表明,该方法不仅可以识别损坏的存在,还可以提供有关严重性的有用信息。 (C)2018 Elsevier Ltd.保留所有权利。

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