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Deterioration prediction of bridge by Markov chain model and Bayesian theory

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dc.contributor.author Seto, D
dc.contributor.author Ohga, M
dc.contributor.author Chun, P
dc.date.accessioned 2013-11-07T19:44:23Z
dc.date.available 2013-11-07T19:44:23Z
dc.date.issued 2013-11-08
dc.identifier.uri http://dl.lib.mrt.ac.lk/handle/123/8891
dc.description.abstract This manuscript presents a bridge deterioration prediction method by using Markov chain model and Bayesian theory. Markov chain model works by defining discrete condition states and accumulating the probability of transition from one condition state to another over discrete time intervals. The probability of transition is generally expressed by the matrix. Though the previous studies have predicted the bridge deterioration by developing deterioration curves by using the Markov chain model, the predicted value will not be necessarily suitable for the measured value in the future. Therefore, this study demonstrates a method to predict deterioration progress as a prediction interval by taking account of the uncertainty by the Monte Carlo simulation. In addition, the method to update the prediction interval after the inspection is developed by Bayesian theory. This research was developed by using inspection results of existing bridges in Japan, and the proposed mechanism is convenient for bridge engineers to take rational decisions on the maintenance management plan of steel bridge infrastructures. en_US
dc.language.iso en en_US
dc.subject Markov chain model en_US
dc.subject Bayesian theory en_US
dc.subject transition probability matrix en_US
dc.subject deterioration prediction interval en_US
dc.title Deterioration prediction of bridge by Markov chain model and Bayesian theory en_US
dc.type Conference-Full-text en_US
dc.identifier.year 2012 en_US
dc.identifier.conference ICSBE-2012: International Conference on Sustainable Built Environment en_US
dc.identifier.place Kandy, Sri Lanka en_US
dc.identifier.email seto.daisuke.08@cee.ehime-u.ac.jp en_US
dc.identifier.email oga.mitao.mj@ehime-u.ac.jp en_US
dc.identifier.email chun.pang-jo.mj@ehime-u.ac.jp en_US


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