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タイトル: Bridge condition assessment from long-term monitoring by means of Bayesian hypothesis test
著者: Kim, C. W.
Wang, Z.
Morita, T.
Kawatani, M.
Takase, K.
著者名の別形: 金, 哲佑
髙瀬, 和男
発行日: 4-Oct-2016
出版者: CRC Press
誌名: Life-Cycle of Engineering Systems: Emphasis on Sustainable Civil Infrastructure
開始ページ: 713
終了ページ: 720
抄録: This study presents an approach to reduce effects of environmental and operational factors on long-term monitoring data of bridges. The Bayesian approach comprising both Bayesian regression and Bayesian hypothesis test is applied to investigate monitoring data of an in-service seven-span plate-Gerber bridge. This study considers time-varying temperature and vehicle weights as environmental and operational factors respectively. Vehicle weights were measured utilizing a bridge weigh-in-motion (BWIM) system installed on the bridge. All data was taken from a healthy bridge, since no damage and deterioration was reported during the monitoring period. Observations through the study demonstrated that considering both temperature and vehicle weight as environmental and operational factors in Bayesian regression led to improved regression results than that considering only temperature. It also showed that monitoring the data observed at a specific time could reduce influence of traffic in long-term monitoring. In the Bayesian hypothesis testing utilizing data from the healthy bridge, the bridge was judged as healthy.
記述: Fifth International Symposium on Life-Cycle Civil Engineering (IALCCE 2016), 16-19 October 2016, Delft, The Netherlands.
著作権等: This is an Accepted Manuscript of a book chapter published by Routledge/CRC Press in Life-Cycle of Engineering Systems: Emphasis on Sustainable Civil Infrastructure on 4 October 2016, available online: http://www.routledge.com/9781138028470.
This is not the published version. Please cite only the published version.
この論文は出版社版でありません。引用の際には出版社版をご確認ご利用ください。
URI: http://hdl.handle.net/2433/255547
DOI(出版社版): 10.1201/9781315375175-96
出現コレクション:学術雑誌掲載論文等

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