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Raghu Bollapragada
Raghu Bollapragada
Other namesVijaya Raghavendra Bollapragada
Verified email at utexas.edu - Homepage
Title
Cited by
Cited by
Year
Exact and inexact subsampled Newton methods for optimization
R Bollapragada, RH Byrd, J Nocedal
IMA Journal of Numerical Analysis 39 (2), 545-578, 2019
2372019
A progressive batching L-BFGS method for machine learning
R Bollapragada, J Nocedal, D Mudigere, HJ Shi, PTP Tang
International Conference on Machine Learning, 620-629, 2018
2282018
Adaptive sampling strategies for stochastic optimization
R Bollapragada, R Byrd, J Nocedal
SIAM Journal on Optimization 28 (4), 3312-3343, 2018
1772018
Balancing communication and computation in distributed optimization
AS Berahas, R Bollapragada, NS Keskar, E Wei
IEEE Transactions on Automatic Control 64 (8), 3141-3155, 2018
1542018
An investigation of Newton-sketch and subsampled Newton methods
AS Berahas, R Bollapragada, J Nocedal
Optimization Methods and Software 35 (4), 661-680, 2020
1412020
On the fast convergence of minibatch heavy ball momentum
R Bollapragada, T Chen, R Ward
IMA Journal of Numerical Analysis 45 (3), 1397-1424, 2025
352025
Nonlinear acceleration of momentum and primal-dual algorithms
R Bollapragada, D Scieur, A d’Aspremont
Mathematical Programming 198 (1), 325-362, 2023
34*2023
Adaptive sampling quasi-Newton methods for zeroth-order stochastic optimization
R Bollapragada, SM Wild
Mathematical Programming Computation 15 (2), 327-364, 2023
32*2023
Constrained and composite optimization via adaptive sampling methods
Y Xie, R Bollapragada, R Byrd, J Nocedal
IMA Journal of Numerical Analysis 44 (2), 680-709, 2024
262024
An adaptive sampling sequential quadratic programming method for equality constrained stochastic optimization
AS Berahas, R Bollapragada, B Zhou
arXiv preprint arXiv:2206.00712, 2022
242022
On the convergence of nested decentralized gradient methods with multiple consensus and gradient steps
AS Berahas, R Bollapragada, E Wei
IEEE Transactions on Signal Processing 69, 4192-4203, 2021
242021
An adaptive sampling augmented Lagrangian method for stochastic optimization with deterministic constraints
R Bollapragada, C Karamanli, B Keith, B Lazarov, S Petrides, J Wang
Computers & Mathematics with Applications 149, 239-258, 2023
212023
Optimization and supervised machine learning methods for fitting numerical physics models without derivatives
R Bollapragada, M Menickelly, W Nazarewicz, J O’Neal, PG Reinhard, ...
Journal of Physics G: Nuclear and Particle Physics 48 (2), 024001, 2020
202020
Balancing communication and computation in gradient tracking algorithms for decentralized optimization
AS Berahas, R Bollapragada, S Gupta
Journal of Optimization Theory and Applications 203 (3), 2954-2987, 2024
142024
Learning a neural Pareto manifold extractor with constraints
S Gupta, G Singh, R Bollapragada, M Lease
Uncertainty in Artificial Intelligence, 749-758, 2022
11*2022
Derivative-free stochastic optimization via adaptive sampling strategies
R Bollapragada, C Karamanli, SM Wild
Optimization Methods and Software, 1-34, 2025
9*2025
A retrospective approximation approach for smooth stochastic optimization
D Newton, R Bollapragada, R Pasupathy, NK Yip
Mathematics of Operations Research 50 (3), 2301-2332, 2025
7*2025
Adaptive consensus: a network pruning approach for decentralized optimization
SM Shah, AS Berahas, R Bollapragada
SIAM Journal on Optimization 34 (4), 3653-3680, 2024
72024
Modified line search sequential quadratic methods for equality-constrained optimization with unified global and local convergence guarantees
AS Berahas, R Bollapragada, J Shi
arXiv preprint arXiv:2406.11144, 2024
62024
Nonlinear acceleration of primal-dual algorithms
R Bollapragada, D Scieur, A d’Aspremont
The 22nd International Conference on Artificial Intelligence and Statistics …, 2019
62019
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Articles 1–20