Two-step approaches for effective bridge health monitoring

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Two-step identification approaches for effective bridge health monitoring are proposed to alleviate the issues associated with many unknown parameters faced in real structures and to improve the accuracy in the estimate results. It is Suitable for on-line monitoring scheme, since the damage assessment is not always needed to be carried Out whereas the alarming for damages is to be Continuously monitored. In the first step for screening potentially damaged members, a damage indicator method based on modal strain energy, probabilistic neural networks and the conventional neural networks using grouping technique are utilized and then the conventional neural networks technique is utilized for damage assessment on the screened members in the second step. The effectiveness of the proposed methods is investigated through a Field test on the northern-most span of the old Hannam Grand Bridge over the Han River in Seoul, Korea.
Publisher
TECHNO-PRESS
Issue Date
2006-05
Language
English
Article Type
Article
Keywords

PROBABILISTIC NEURAL NETWORKS; PLATE-LIKE STRUCTURES; CABLE-STAYED BRIDGE; DAMAGE-DETECTION; IDENTIFICATION; DIAGNOSIS; DENSITY

Citation

STRUCTURAL ENGINEERING AND MECHANICS, v.23, no.1, pp.75 - 95

ISSN
1225-4568
URI
http://hdl.handle.net/10203/7257
Appears in Collection
CE-Journal Papers(저널논문)
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