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Yuanhan Hu
Yuanhan Hu
Verified email at rutgers.edu
Title
Cited by
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Year
Decentralized stochastic gradient langevin dynamics and hamiltonian monte carlo
M Gürbüzbalaban, X Gao, Y Hu, L Zhu
Journal of Machine Learning Research 22 (239), 1-69, 2021
182021
Fractional moment-preserving initialization schemes for training deep neural networks
M Gurbuzbalaban, Y Hu
International Conference on Artificial Intelligence and Statistics, 2233-2241, 2021
112021
Non-convex optimization via non-reversible stochastic gradient Langevin dynamics
Y Hu, X Wang, X Gao, M Gurbuzbalaban, L Zhu
arXiv preprint arXiv:2004.02823, 2020
112020
Fractional moment-preserving initialization schemes for training fullyconnected neural networks
M Gürbüzbalaban, Y Hu
arXiv preprint arXiv:2005.11878, 2020
52020
Heavy-tail phenomenon in decentralized sgd
M Gurbuzbalaban, Y Hu, U Simsekli, K Yuan, L Zhu
arXiv preprint arXiv:2205.06689, 2022
32022
Non-convex stochastic optimization via nonreversible stochastic gradient langevin dynamics
Y Hu, X Wang, X Gao, M Gurbuzbalaban, L Zhu
arXiv preprint arXiv:2004.02823, 2020
32020
Penalized Langevin and Hamiltonian Monte Carlo Algorithms for Constrained Sampling
M Gürbüzbalaban, Y Hu, L Zhu
arXiv preprint arXiv:2212.00570, 2022
12022
Cyclic and Randomized Stepsizes Invoke Heavier Tails in SGD than Constant Stepsize
M Gürbüzbalaban, Y Hu, U Şimşekli, L Zhu
arXiv preprint arXiv:2302.05516, 2023
2023
Stochastic Gradient and Stochastic Gradient MCMC Methods for Bayesian Learning and Non-convex Optimization: Centralized and Decentralized Settings
Y Hu
Rutgers The State University of New Jersey, Graduate School-Newark, 2023
2023
Cyclic and Randomized Stepsizes Invoke Heavier Tails in SGD.
M Gürbüzbalaban, Y Hu, U Simsekli, L Zhu
CoRR, 2023
2023
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