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dc.contributor.authorAyari, Ilies-
dc.contributor.authorDerbal, Yacine-
dc.contributor.otherSebaï, Souâd, Directeur de thèse-
dc.date.accessioned2025-10-14T10:43:58Z-
dc.date.available2025-10-14T10:43:58Z-
dc.date.issued2025-
dc.identifier.otherEP00930-
dc.identifier.urihttp://repository.enp.edu.dz/jspui/handle/123456789/11246-
dc.descriptionMémoire de Projet de Fin d’Études : Génie Civil : Alger, École Nationale Polytechnique : 2025fr_FR
dc.description.abstractThis thesis presents a methodology to correlate ground surface movements (settlement) with tunnel boring machine (TBM) operation parameters , Tunnel geometry and Geotechnical pa-rameters using an Artificial neural network model to predict maximum ground surface settle-ment. Data analyzed were selected from the excavation of the extension of Algiers subway line “1” (El-Harrach to H.B. Int. Airport) tunnel, which was performed by a shield TBM. The surface settlements observed along the entire tunnel section of the project (Contract 1-9) were satisfactorily reproduced by the proposed ANN model. A dedicated pre-processing procedure was necessary to enhance the model’s predictive capability, followed by a sensitivity analysis to assess the individual contribution of each featurefr_FR
dc.language.isoenfr_FR
dc.subjectArtificial neural networkfr_FR
dc.subjectEPB-TBM tunnelingfr_FR
dc.subjectPrediction of surface settlementfr_FR
dc.subjectMachine learningfr_FR
dc.titleArtificial neural networks for predicting the maximum surface settlement induced by EPB-TBM : the Algiers metro casefr_FR
dc.typeThesisfr_FR
Collection(s) :Département Génie Civil

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