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Jungwuk Park
Jungwuk Park
KAIST, Electrical Engineering
Verified email at kaist.ac.kr - Homepage
Title
Cited by
Cited by
Year
Sageflow: Robust federated learning against both stragglers and adversaries
J Park, DJ Han, M Choi, J Moon
Advances in neural information processing systems 34, 840-851, 2021
692021
FedMes: Speeding up federated learning with multiple edge servers
DJ Han, M Choi, J Park, J Moon
IEEE Journal on Selected Areas in Communications 39 (12), 3870-3885, 2021
252021
Test-Time Style Shifting: Handling Arbitrary Styles in Domain Generalization
J Park, DJ Han, S Kim, J Moon
International Conference on Machine Learning (ICML), 2023
52023
Improving Low-Latency Predictions in Multi-Exit Neural Networks via Block-Dependent Losses
DJ Han, J Park, S Ham, N Lee, J Moon
IEEE Transactions on Neural Networks and Learning Systems, 2023
32023
Style balancing and test-time style shifting for domain generalization
J Park, DJ Han, S Kim, J Moon
22022
Handling both stragglers and adversaries for robust federated learning
J Park, DJ Han, M Choi, J Moon
ICML 2021 Workshop on Federated Learning for User Privacy and Data …, 2021
22021
NEO-KD: Knowledge-Distillation-Based Adversarial Training for Robust Multi-Exit Neural Networks
S Ham, J Park, DJ Han, J Moon
Neural Information Processing Systems (NeurIPS), 2023
12023
Training Multi-Exit Architectures via Block-Dependent Losses for Anytime Inference
DJ Han, JW Park, S Ham, N Lee, J Moon
2022 IEEE/CVF Conference on Computer Vision and Pattern Recognition …, 2022
12022
StableFDG: Style and Attention Based Learning for Federated Domain Generalization
J Park, DJ Han, J Kim, S Wang, CG Brinton, J Moon
Neural Information Processing Systems (NeurIPS), 2023
2023
Distribution Aware Active Learning via Gaussian Mixtures
Y Park, J Park, DJ Han, W Choi, H Kousar, J Moon
2023
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Articles 1–10