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Statistical clustering and times series analysis for bridge monitoring data

  • University of Technology (HCMUT)

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

The process of implementing a damage detection strategy for bridges is referred to as Bridge Health Monitoring (BHM). The BHM process involves the observation of a system over time using periodically sampled dynamic response measurements from an array of sensors, the extraction of damage-sensitive features from these measurements, and the statistical analysis of these features to determine the current state of the system's health [12]. Therefore, the achieved data from attached sensors would be very huge in dimensions, would make researchers confused in further examinations on data bridge. There have been many approaches to solve the BHM sensors reduction problem, range from univariate analysis between couples of variables [13] to carefully selecting measurement points based on specific bridge knowledge [7]. However, they are either inapplicable for interrelated nature data sets, or using too much mechanical knowledge in its process.

Original languageEnglish
Title of host publicationRecent Progress in Data Engineering and Internet Technology
Pages61-71
Number of pages11
EditionVOL. 1
DOIs
Publication statusPublished - 2013
Externally publishedYes
EventInternational Conference on Data Engineering and Internet Technology, DEIT 2011 - Bali, Indonesia
Duration: 15 Mar 201217 Mar 2012

Publication series

NameLecture Notes in Electrical Engineering
NumberVOL. 1
Volume156 LNEE
ISSN (Print)1876-1100
ISSN (Electronic)1876-1119

Conference

ConferenceInternational Conference on Data Engineering and Internet Technology, DEIT 2011
Country/TerritoryIndonesia
CityBali
Period15/03/1217/03/12

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