Ikuti
Ehsan Haghighat
Ehsan Haghighat
SciML Engineer and Researcher
Email yang diverifikasi di mit.edu - Beranda
Judul
Dikutip oleh
Dikutip oleh
Tahun
A physics-informed deep learning framework for inversion and surrogate modeling in solid mechanics
E Haghighat, M Raissi, A Moure, H Gomez, R Juanes
Computer Methods in Applied Mechanics and Engineering 379, 113741, 2021
967*2021
SciANN: A Keras/TensorFlow wrapper for scientific computations and physics-informed deep learning using artificial neural networks
E Haghighat, R Juanes
Computer Methods in Applied Mechanics and Engineering 373, 113552, 2021
4232021
Physics-informed neural network for modelling the thermochemical curing process of composite-tool systems during manufacture
SA Niaki, E Haghighat, T Campbell, A Poursartip, R Vaziri
Computer Methods in Applied Mechanics and Engineering 384, 113959, 2021
2362021
PINNeik: Eikonal solution using physics-informed neural networks
U bin Waheed, E Haghighat, T Alkhalifah, C Song, Q Hao
Computers & Geosciences 155, 104833, 2021
185*2021
A nonlocal physics-informed deep learning framework using the peridynamic differential operator
E Haghighat, AC Bekar, E Madenci, R Juanes
Computer Methods in Applied Mechanics and Engineering 385, 114012, 2021
1272021
A mesh-independent finite element formulation for modeling crack growth in saturated porous media based on an enriched-FEM technique
AR Khoei, M Vahab, E Haghighat, S Moallemi
International Journal of Fracture 188, 79-108, 2014
1172014
Physics-informed neural network simulation of multiphase poroelasticity using stress-split sequential training
E Haghighat, D Amini, R Juanes
Computer Methods in Applied Mechanics and Engineering 397, 115141, 2022
1082022
Thermo-hydro-mechanical modeling of impermeable discontinuity in saturated porous media with X-FEM technique
AR Khoei, S Moallemi, E Haghighat
Engineering Fracture Mechanics 96, 701-723, 2012
822012
Extended finite element modeling of deformable porous media with arbitrary interfaces
AR Khoei, E Haghighat
Applied Mathematical Modelling 35 (11), 5426-5441, 2011
642011
A physics-informed neural network approach to solution and identification of biharmonic equations of elasticity
M Vahab, E Haghighat, M Khaleghi, N Khalili
Journal of Engineering Mechanics 148 (2), 04021154, 2022
622022
Constitutive model characterization and discovery using physics-informed deep learning
E Haghighat, S Abouali, R Vaziri
Engineering Applications of Artificial Intelligence 120, 105828, 2023
532023
On modeling of discrete propagation of localized damage in cohesive‐frictional materials
E Haghighat, S Pietruszczak
International Journal for Numerical and Analytical Methods in Geomechanics …, 2015
52*2015
Physics-informed neural network solution of thermo–hydro–mechanical processes in porous media
D Amini, E Haghighat, R Juanes
Journal of Engineering Mechanics 148 (11), 04022070, 2022
472022
PINNtomo: Seismic tomography using physics-informed neural networks
U Waheed, T Alkhalifah, E Haghighat, C Song, J Virieux
arXiv preprint arXiv:2104.01588, 2021
472021
Energy-based error bound of physics-informed neural network solutions in elasticity
M Guo, E Haghighat
Journal of Engineering Mechanics 148 (8), 04022038, 2022
422022
En-DeepONet: An enrichment approach for enhancing the expressivity of neural operators with applications to seismology
E Haghighat, U bin Waheed, G Karniadakis
Computer Methods in Applied Mechanics and Engineering 420, 116681, 2024
34*2024
Inverse modeling of nonisothermal multiphase poromechanics using physics-informed neural networks
D Amini, E Haghighat, R Juanes
Journal of Computational Physics 490, 112323, 2023
342023
Modeling of deformation and localized failure in anisotropic rocks
S Pietruszczak, E Haghighat
International Journal of Solids and Structures 67, 93-101, 2015
332015
A viscoplastic model of creep in shale
E Haghighat, FS Rassouli, MD Zoback, R Juanes
Geophysics 85 (3), MR155-MR166, 2020
312020
An unsupervised latent/output physics-informed convolutional-LSTM network for solving partial differential equations using peridynamic differential operator
A Mavi, AC Bekar, E Haghighat, E Madenci
Computer Methods in Applied Mechanics and Engineering 407, 115944, 2023
252023
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