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Kimin Lee
Kimin Lee
Research Scientist, Google
Verified email at google.com - Homepage
Title
Cited by
Cited by
Year
A simple unified framework for detecting out-of-distribution samples and adversarial attacks
K Lee, K Lee, H Lee, J Shin
Advances in neural information processing systems 31, 2018
12872018
Training confidence-calibrated classifiers for detecting out-of-distribution samples
K Lee, H Lee, K Lee, J Shin
International Conference on Learning Representations, 2017
7212017
Using pre-training can improve model robustness and uncertainty
D Hendrycks, K Lee, M Mazeika
International Conference on Machine Learning, 2712-2721, 2019
5522019
Decision transformer: Reinforcement learning via sequence modeling
L Chen, K Lu, A Rajeswaran, K Lee, A Grover, M Laskin, P Abbeel, ...
Advances in neural information processing systems, 2021
4772021
Reinforcement learning with augmented data
M Laskin, K Lee, A Stooke, L Pinto, P Abbeel, A Srinivas
Advances in neural information processing systems, 2020
4312020
Decoupling representation learning from reinforcement learning
A Stooke, K Lee, P Abbeel, M Laskin
International Conference on Machine Learning, 9870-9879, 2021
2122021
Regularizing class-wise predictions via self-knowledge distillation
S Yun, J Park, K Lee, J Shin
Proceedings of the IEEE/CVF conference on computer vision and pattern …, 2020
1942020
Overcoming catastrophic forgetting with unlabeled data in the wild
K Lee, K Lee, J Shin, H Lee
Proceedings of the IEEE/CVF International Conference on Computer Vision, 312-321, 2019
1452019
Network randomization: A simple technique for generalization in deep reinforcement learning
K Lee, K Lee, J Shin, H Lee
International Conference on Learning Representations, 2019
1372019
Sunrise: A simple unified framework for ensemble learning in deep reinforcement learning
K Lee, M Laskin, A Srinivas, P Abbeel
International Conference on Machine Learning, 6131-6141, 2021
1272021
Robust inference via generative classifiers for handling noisy labels
K Lee, S Yun, K Lee, H Lee, B Li, J Shin
International conference on machine learning, 3763-3772, 2019
952019
PEBBLE: Feedback-Efficient Interactive Reinforcement Learning via Relabeling Experience and Unsupervised Pre-training
K Lee, L Smith, P Abbeel
International Conference on Machine Learning, 2021
702021
Context-aware dynamics model for generalization in model-based reinforcement learning
K Lee, Y Seo, S Lee, H Lee, J Shin
International Conference on Machine Learning, 5757-5766, 2020
702020
Hierarchical novelty detection for visual object recognition
K Lee, K Lee, K Min, Y Zhang, J Shin, H Lee
Proceedings of the IEEE Conference on Computer Vision and Pattern …, 2018
672018
State entropy maximization with random encoders for efficient exploration
Y Seo, L Chen, J Shin, H Lee, P Abbeel, K Lee
International Conference on Machine Learning, 2021
632021
Offline-to-Online Reinforcement Learning via Balanced Replay and Pessimistic Q-Ensemble
S Lee, Y Seo, K Lee, P Abbeel, J Shin
Annual Conference on Robot Learning, 2021
602021
URLB: Unsupervised reinforcement learning benchmark
M Laskin, D Yarats, H Liu, K Lee, A Zhan, K Lu, C Cang, L Pinto, P Abbeel
Conference on Neural Information Processing Systems Datasets and Benchmarks …, 2021
562021
Confident Multiple Choice Learning
K Lee, C Hwang, KS Park, J Shin
Proceedings of the 34th International Conference on Machine Learning, 2017
502017
Learning to specialize with knowledge distillation for visual question answering
J Mun, K Lee, J Shin, B Han
Advances in neural information processing systems 31, 2018
372018
Reinforcement learning with action-free pre-training from videos
Y Seo, K Lee, SL James, P Abbeel
International Conference on Machine Learning, 19561-19579, 2022
282022
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