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Yi Zhou
Yi Zhou
Research Staff Member, IBM Research
Bestätigte E-Mail-Adresse bei ibm.com
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Zitiert von
Jahr
A hybrid approach to privacy-preserving federated learning
S Truex, N Baracaldo, A Anwar, T Steinke, H Ludwig, R Zhang, Y Zhou
Proceedings of the 12th ACM Workshop on Artificial Intelligence and Security …, 2019
11372019
Hybridalpha: An efficient approach for privacy-preserving federated learning
R Xu, N Baracaldo, Y Zhou, A Anwar, H Ludwig
Proceedings of the 12th ACM Workshop on Artificial Intelligence and Security …, 2019
4142019
Tifl: A tier-based federated learning system
Z Chai, A Ali, S Zawad, S Truex, A Anwar, N Baracaldo, Y Zhou, H Ludwig, ...
Proceedings of the 29th International Symposium on High-Performance Parallel …, 2020
3422020
An optimal randomized incremental gradient method
G Lan, Y Zhou
Mathematical programming, 1-49, 2017
2642017
Communication-efficient algorithms for decentralized and stochastic optimization
G Lan, S Lee, Y Zhou
Mathematical Programming, 1-48, 2017
2592017
Conditional gradient sliding for convex optimization
G Lan, Y Zhou
SIAM Journal on Optimization 26 (2), 1379-1409, 2016
1802016
IBM Federated Learning: an Enterprise Framework White Paper V0. 1
H Ludwig, N Baracaldo, G Thomas, Y Zhou, A Anwar, S Rajamoni, Y Ong, ...
arXiv preprint arXiv:2007.10987, 2020
1782020
Mitigating Bias in Federated Learning
A Abay, Y Zhou, N Baracaldo, S Rajamoni, E Chuba, H Ludwig
arXiv preprint arXiv:2012.02447, 2020
1132020
Towards taming the resource and data heterogeneity in federated learning
Z Chai, H Fayyaz, Z Fayyaz, A Anwar, Y Zhou, N Baracaldo, H Ludwig, ...
2019 USENIX conference on operational machine learning (OpML 19), 19-21, 2019
982019
Towards federated graph learning for collaborative financial crimes detection
T Suzumura, Y Zhou, N Baracaldo, G Ye, K Houck, R Kawahara, A Anwar, ...
arXiv preprint arXiv:1909.12946, 2019
962019
FedV: Privacy-Preserving Federated Learning over Vertically Partitioned Data
R Xu, N Baracaldo, Y Zhou, A Anwar, J Joshi, H Ludwig
Proceedings of the 14th ACM Workshop on Artificial Intelligence and Security …, 2021
902021
A unified variance-reduced accelerated gradient method for convex optimization
G Lan, Z Li, Y Zhou
Advances in Neural Information Processing Systems 32, 2019
742019
Curse or redemption? how data heterogeneity affects the robustness of federated learning
S Zawad, A Ali, PY Chen, A Anwar, Y Zhou, N Baracaldo, Y Tian, F Yan
Proceedings of the AAAI Conference on Artificial Intelligence 35 (12), 10807 …, 2021
722021
Random gradient extrapolation for distributed and stochastic optimization
G Lan, Y Zhou
SIAM Journal on Optimization 28 (4), 2753-2782, 2018
622018
Conditional accelerated lazy stochastic gradient descent
G Lan, S Pokutta, Y Zhou, D Zink
International Conference on Machine Learning, 1965-1974, 2017
452017
Privacy-preserving federated learning
XU Runhua, NB Angel, Y Zhou, A Anwar, HH Ludwig
US Patent App. 16/682,927, 2021
402021
Granite Code Models: A Family of Open Foundation Models for Code Intelligence
M Mishra, M Stallone, G Zhang, Y Shen, A Prasad, AM Soria, M Merler, ...
arXiv preprint arXiv:2405.04324, 2024
332024
Adaptive Histogram-Based Gradient Boosted Trees for Federated Learning
YJ Ong, Y Zhou, N Baracaldo, H Ludwig
arXiv preprint arXiv:2012.06670, 2020
292020
FLoRA: Single-shot Hyper-parameter Optimization for Federated Learning
Y Zhou, P Ram, T Salonidis, N Baracaldo, H Samulowitz, H Ludwig
arXiv preprint arXiv:2112.08524, 2021
272021
LEGATO: A LayerwisE Gradient AggregaTiOn Algorithm for Mitigating Byzantine Attacks in Federated Learning
K Varma, Y Zhou, N Baracaldo, A Anwar
2021 IEEE 14th International Conference on Cloud Computing (CLOUD), 272-277, 2021
262021
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