A collaborative numerical simulation-soft computing approach for earth dams first impoundment modeling

dc.contributor.author Behzad Shakouri
dc.contributor.author Mirali Mohammadi
dc.contributor.author Mir Jafar Sadegh Safari
dc.contributor.author Mohammad Amin Hariri-Ardebili
dc.date.accessioned 2025-10-06T17:49:20Z
dc.date.issued 2023
dc.description.abstract Uncertainty quantification plays a crucial role in the design monitoring and risk assessment of earth dams. To reduce the computational burden we employ a combination of finite difference method and soft computing techniques to investigate material uncertainties in earth dams during the initial impoundment stage. The findings of sensitivity analysis with the Tornado diagram indicate that key material properties such as dry density elasticity modulus friction angle and Poisson's ratio significantly influence the displacements and stress analysis. In our study we explore four variants of extreme learning machines (ELMs): the standalone ELM hybridized versions with the improved grey wolf optimizer algorithm ant colony optimization for continuous domains and artificial bee colony. These methods are assessed across various training sizes to predict multiple parameters including horizontal and vertical displacements stresses and the factor of safety (FoS). The hybridized ELM with the improved grey wolf optimizer algorithm emerges as the superior choice for most of the response variables. A minimum of 200 numerical simulations is required to establish a stable and accurate meta-model with an average prediction error of less than 3% for responses and the FoS. © 2023 Elsevier B.V. All rights reserved.
dc.identifier.doi 10.1016/j.compgeo.2023.105814
dc.identifier.issn 0266352X, 18737633
dc.identifier.issn 0266-352X
dc.identifier.uri https://www.scopus.com/inward/record.uri?eid=2-s2.0-85172288555&doi=10.1016%2Fj.compgeo.2023.105814&partnerID=40&md5=847882e5c5d5bfb57eba124cadd1a61f
dc.identifier.uri https://gcris.yasar.edu.tr/handle/123456789/8376
dc.language.iso English
dc.publisher Elsevier Ltd
dc.relation.ispartof Computers and Geotechnics
dc.source Computers and Geotechnics
dc.subject Earth Dam, Flac2d, Grey Wolf Optimizer, Optimization Algorithm, Soft Computing, Ant Colony Optimization, Cofferdams, Embankment Dams, Numerical Models, Risk Assessment, Safety Factor, Sensitivity Analysis, Soft Computing, Stress Analysis, Uncertainty Analysis, Factors Of Safeties, Flac2d, Gray Wolf Optimizer, Gray Wolves, Learning Machines, Optimization Algorithms, Optimizers, Soft Computing Approaches, Soft-computing, Uncertainty Quantifications, Finite Difference Method, Algorithm, Computer Simulation, Displacement, Earth Dam, Error Analysis, Numerical Model, Optimization
dc.subject Ant colony optimization, Cofferdams, Embankment dams, Numerical models, Risk assessment, Safety factor, Sensitivity analysis, Soft computing, Stress analysis, Uncertainty analysis, Factors of safeties, FLAC2D, Gray wolf optimizer, Gray wolves, Learning machines, Optimization algorithms, Optimizers, Soft computing approaches, Soft-Computing, Uncertainty quantifications, Finite difference method, algorithm, computer simulation, displacement, earth dam, error analysis, numerical model, optimization
dc.title A collaborative numerical simulation-soft computing approach for earth dams first impoundment modeling
dc.type Article
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gdc.description.startpage 105814
gdc.description.volume 164
gdc.identifier.openalex W4387008908
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gdc.opencitations.count 5
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gdc.virtual.author Safari, Mir Jafar Sadegh
person.identifier.scopus-author-id Shakouri- Behzad (57209504513), Mohammadi- Mirali (14625117600), Safari- Mir Jafar Sadegh (56047228600), Hariri-Ardebili- Mohammad Amin (55328182100)
project.funder.name The first author (B. Shakouri) would like to acknowledge the deputy head of research and technology affairs and the director international relations office at Urmia University for helping him to have a sabbatical leave to the Yaşar University Izmir Turkey. The first author also appreciates Dr. Enes Gül from Inonu University and Dr. Hamed Sabzchi Dehkharghani from University of Tabriz for their great contributions.
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