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Title: | Behaviour prediction of a concrete arch dam combining NN and MLR models – Proposal for the 16th ICOLD BW |
Authors: | Mata, J. Serra, C. |
Keywords: | Concrete dam;Structural behavior;Machine Learning;MLR models |
Issue Date: | Apr-2022 |
Publisher: | ICOLD |
Abstract: | The main purpose of assessment of dam condition, through the use of the infor-mation provided by the monitoring system, is achieved by having up-to-date knowledge of the dam. Early anomalous behaviour detection is expected in order to allow appropriate intervention to correct the situation or to avoid serious consequences. Once a dam is in its operation phase, the assessment of the dam's condition and the interpretation of the dam's behaviour are supported by data-based models, among others, in which the main goal is to predict the actual structural dam behaviour in order to detect a possible deviation from a considered normal pattern. Within the scope of the 16th International Benchmark Workshop on Numerical Analysis of Dams, this paper presents a methodology for the prediction of different measurements based on the com-bination of the results from multiple linear regression and neural network models. The work dis-cusses the advantages and applicability of the methodology to each type of dataset and the im-portance of engineering expertise and on site knowledge when using data-based models. The obtained results show a good model performance for the training period being a valid option for dam engineering activities. |
URI: | http://repositorio.lnec.pt:8080/jspui/handle/123456789/1017681 |
Appears in Collections: | DBB/NO - Comunicações a congressos e artigos de revista |
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