ติดตาม
Deepanshu Verma
Deepanshu Verma
ยืนยันอีเมลแล้วที่ clemson.edu - หน้าแรก
ชื่อ
อ้างโดย
อ้างโดย
ปี
Fractional deep neural network via constrained optimization
H Antil, R Khatri, R Löhner, D Verma
Machine Learning: Science and Technology 2 (1), 015003, 2020
362020
External optimal control of fractional parabolic PDEs
H Antil, D Verma, M Warma
ESAIM: Control, Optimisation and Calculus of Variations 26, 20, 2020
312020
Novel deep neural networks for solving bayesian statistical inverse
H Antil, HC Elman, A Onwunta, D Verma
arXiv preprint arXiv:2102.03974, 2021
212021
Optimal control of fractional elliptic PDEs with state constraints and characterization of the dual of fractional-order Sobolev spaces
H Antil, D Verma, M Warma
Journal of optimization theory and applications 186 (1), 1-23, 2020
202020
Novel dnns for stiff odes with applications to chemically reacting flows
TS Brown, H Antil, R Löhner, F Togashi, D Verma
High Performance Computing: ISC High Performance Digital 2021 International …, 2021
142021
Efficient neural network approaches for conditional optimal transport with applications in bayesian inference
ZO Wang, R Baptista, Y Marzouk, L Ruthotto, D Verma
arXiv preprint arXiv:2310.16975, 2023
122023
A neural network approach for stochastic optimal control
X Li, D Verma, L Ruthotto
SIAM Journal on Scientific Computing 46 (5), C535-C556, 2024
112024
Optimal Control, Numerics, and Applications of Fractional PDEs
H Antil, TS Brown, R Khatri, A Onwunta, D Verma, M Warma
Handbook of Numerical Analysis, 2021
102021
Optimal Control of Fractional PDEs with State and Control Constraints
H Antil, TS Brown, D Verma
Pure and Applied Functional Analysis 2021, 2019
10*2019
A deep neural network approach for parameterized PDEs and Bayesian inverse problems
H Antil, HC Elman, A Onwunta, D Verma
Machine Learning: Science and Technology 4 (3), 035015, 2023
92023
Deep neural nets with fixed bias configuration
H Antil, TS Brown, R Löhner, F Togashi, D Verma
arXiv preprint arXiv:2107.01308, 2021
72021
Nondiffusive variational problems with distributional and weak gradient constraints
H Antil, R Arndt, CN Rautenberg, D Verma
Advances in Nonlinear Analysis 11 (1), 1466-1495, 2022
42022
Neural network approaches for parameterized optimal control
D Verma, N Winovich, L Ruthotto, BB Waanders
arXiv preprint arXiv:2402.10033, 2024
22024
Learning Control Policies of Hodgkin-Huxley Neuronal Dynamics
M Madondo, D Verma, L Ruthotto, NA Yong
arXiv preprint arXiv:2311.07563, 2023
12023
Advances and Challenges in Solving High-Dimensional HJB Equations Arising in Optimal Control
D Verma, X Li, N Winovich, L Ruthotto, BVB Waanders
2023 Joint Mathematics Meetings (JMM 2023), 2023
12023
Data-Driven Control Strategies for PDE Environments using Reinforcement Learning.
N Winovich, B van Bloemen Waanders, D Verma, L Ruthotto
Sandia National Lab.(SNL-NM), Albuquerque, NM (United States), 2022
12022
Learning Ordinary Differential Equations from Data
D Verma
People 2024, 2023, 2025
2025
Reinforcement Learning for Adaptive Control of PDE-Constrained Environments
N Winovich, BG van Bloemen Waanders, L Ruthotto, D Verma
Sandia National Lab.(SNL-NM), Albuquerque, NM (United States), 2023
2023
A mixed finite element method using a biorthogonal system for optimal control problems governed by a biharmonic equation
BP Lamichhane, N Nataraj, D Verma
ANZIAMJ, 2023
2023
Reinforcement Learning for PDE Control Problems.
N Winovich, B van Bloemen Waanders, D Verma, L Ruthotto
Sandia National Lab.(SNL-NM), Albuquerque, NM (United States), 2022
2022
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บทความ 1–20