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Sai Praneeth Karimireddy
Sai Praneeth Karimireddy
Other namesSai Praneeth Reddy Karimireddy, Sai Praneeth Reddy
Postdoc, UC Berkeley
Verified email at berkeley.edu - Homepage
Title
Cited by
Cited by
Year
SCAFFOLD: Stochastic Controlled Averaging for Federated Learning
SP Karimireddy, S Kale, M Mohri, SJ Reddi, SU Stich, AT Suresh
ICML 2020 - International Conference on Machine Learning, 2019
2203*2019
Error Feedback Fixes SignSGD and other Gradient Compression Schemes
SP Karimireddy, Q Rebjock, SU Stich, M Jaggi
ICML 2019 - International Conference on Machine Learning, 2019
4802019
A Field Guide to Federated Optimization
J Wang*, Z Charles*, Z Xu*, G Joshi*, HB McMahan, M Al-Shedivat, ...
arXiv preprint arXiv:2107.06917, 2021
3002021
Why are adaptive methods good for attention models?
J Zhang, SP Karimireddy, A Veit, S Kim, SJ Reddi, S Kumar, S Sra
NeurIPS 2020 - Conference on Neural Information Processing Systems, 2019
268*2019
PowerSGD: Practical Low-Rank Gradient Compression for Distributed Optimization
T Vogels, SP Karimireddy, M Jaggi
NeurIPS 2019 - Conference on Neural Information Processing Systems, 2019
2662019
The Error-Feedback Framework: Better Rates for SGD with Delayed Gradients and Compressed Communication
SU Stich, SP Karimireddy
JMLR 2020 - Journal of Machine Learning Research, 2019
254*2019
Mime: Mimicking Centralized Stochastic Algorithms in Federated Learning
SP Karimireddy, M Jaggi, S Kale, M Mohri, SJ Reddi, SU Stich, AT Suresh
NeurIPS 2021 - Conference on Neural Information Processing Systems, 2020
224*2020
Learning from History for Byzantine Robust Optimization
SP Karimireddy, L He, M Jaggi
ICML 2021 - International Conference on Machine Learning, 2020
1402020
Byzantine-Robust Learning on Heterogeneous Datasets via Bucketing
SP Karimireddy*, L He*, M Jaggi
ICLR 2022 - International Conference on Learning Representations, 2021
117*2021
Quasi-Global Momentum: Accelerating Decentralized Deep Learning on Heterogeneous Data
T Lin, SP Karimireddy, SU Stich, M Jaggi
ICML 2021 - International Conference on Machine Learning, 2021
812021
FLamby: Datasets and Benchmarks for Cross-Silo Federated Learning in Realistic Healthcare Settings
JO Terrail, SS Ayed, E Cyffers, F Grimberg, C He, R Loeb, P Mangold, ...
NeurIPS 2022 - Conference on Neural Information Processing Systems, 2022
61*2022
Secure Byzantine-Robust Machine Learning
L He, SP Karimireddy, M Jaggi
NeurIPS workshop on Federated Learning (FL-NeurIPS), 2020
572020
RelaySum for Decentralized Deep Learning on Heterogeneous Data
T Vogels*, L He*, A Koloskova, T Lin, SP Karimireddy, SU Stich, M Jaggi
NeurIPS 2021 - Conference on Neural Information Processing Systems, 2021
532021
Agree to Disagree: Diversity through Disagreement for Better Transferability
M Pagliardini, M Jaggi, F Fleuret, SP Karimireddy
ICLR 2023 - International Conference on Learning Representations, 2022
512022
PowerGossip: Practical Low-Rank Communication Compression in Decentralized Deep Learning
T Vogels, SP Karimireddy, M Jaggi
NeurIPS 2020 - Conference on Neural Information Processing Systems, 2020
45*2020
Global linear convergence of Newton's method without strong-convexity or Lipschitz gradients
SP Karimireddy, SU Stich, M Jaggi
NeurIPS 2019 Workshop 'Beyond First Order Methods in ML', 2018
412018
Accelerating Gradient Boosting Machine
H Lu*, SP Karimireddy*, N Ponomareva, V Mirrokni
AISTATS 2020 - International Conference on Artificial Intelligence and …, 2019
382019
Towards Model Agnostic Federated Learning Using Knowledge Distillation
A Afonin, SP Karimireddy
ICLR 2022 - International Conference on Learning Representations, 2021
362021
Mechanisms that Incentivize Data Sharing in Federated Learning
SP Karimireddy, W Guo, MI Jordan
Workshop on Federated Learning: Recent Advances and New Challenges (in …, 2022
332022
Byzantine-Robust Decentralized Learning via Self-Centered Clipping
L He, SP Karimireddy, M Jaggi
ICML Workshop on Federated learning (FL-ICML), 2022
31*2022
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