Παρακολούθηση
Scott Fujimoto
Scott Fujimoto
Η διεύθυνση ηλεκτρονικού ταχυδρομείου έχει επαληθευτεί στον τομέα mail.mcgill.ca
Τίτλος
Παρατίθεται από
Παρατίθεται από
Έτος
Addressing Function Approximation Error in Actor-Critic Methods
S Fujimoto, H van Hoof, D Meger
Proceedings of the 35th International Conference on Machine Learning 80 …, 2018
66822018
Off-Policy Deep Reinforcement Learning without Exploration
S Fujimoto, D Meger, D Precup
Proceedings of the 36th International Conference on Machine Learning 97 …, 2019
17912019
A Minimalist Approach to Offline Reinforcement Learning
S Fujimoto, SS Gu
Advances in Neural Information Processing Systems 34, 20132-20145, 2021
8582021
Benchmarking Batch Deep Reinforcement Learning Algorithms
S Fujimoto, E Conti, M Ghavamzadeh, J Pineau
Deep Reinforcement Learning Workshop NeurIPS 2019, 2019
2162019
Horizon: Facebook's Open Source Applied Reinforcement Learning Platform
J Gauci, E Conti, Y Liang, K Virochsiri, Y He, Z Kaden, V Narayanan, X Ye, ...
Reinforcement Learning for Real Life Workshop in the 36th International …, 2019
1692019
GEOMetrics: Exploiting Geometric Structure for Graph-Encoded Objects
EJ Smith, S Fujimoto, A Romero, D Meger
Proceedings of the 36th International Conference on Machine Learning 97 …, 2019
1132019
Sentiment Analysis: It’s Complicated!
K Kenyon-Dean, E Ahmed, S Fujimoto, J Georges-Filteau, C Glasz, ...
Proceedings of the 2018 Conference of the North American Chapter of the …, 2018
972018
An Equivalence between Loss Functions and Non-Uniform Sampling in Experience Replay
S Fujimoto, D Meger, D Precup
Advances in Neural Information Processing Systems 33, 14219-14230, 2020
732020
Multi-View Silhouette and Depth Decomposition for High Resolution 3D Object Representation
E Smith, S Fujimoto, D Meger
Advances in Neural Information Processing Systems 31, 6477-6487, 2018
592018
For SALE: State-Action Representation Learning for Deep Reinforcement Learning
S Fujimoto, WD Chang, E Smith, SS Gu, D Precup, D Meger
Advances in Neural Information Processing Systems 36, 2023
552023
Why Should I Trust You, Bellman? The Bellman Error is a Poor Replacement for Value Error
S Fujimoto, D Meger, D Precup, O Nachum, SS Gu
Proceedings of the 39th International Conference on Machine Learning 162 …, 2022
372022
A Deep Reinforcement Learning Approach to Marginalized Importance Sampling with the Successor Representation
S Fujimoto, D Meger, D Precup
Proceedings of the 38th International Conference on Machine Learning 139 …, 2021
202021
IL-flOw: Imitation Learning from Observation using Normalizing Flows
WD Chang, JCG Higuera, S Fujimoto, D Meger, G Dudek
Robot Learning Workshop NeurIPS 2021, 2021
152021
Imitation Learning from Observation through Optimal Transport
WD Chang, S Fujimoto, D Meger, G Dudek
Reinforcement Learning Conference, 2024
22024
Towards General-Purpose Model-Free Reinforcement Learning
S Fujimoto, P D'Oro, A Zhang, Y Tian, M Rabbat
arXiv preprint arXiv:2501.16142, 2025
2025
Fairness in Reinforcement Learning with Bisimulation Metrics
S Rezaei-Shoshtari, H Yurchyk, S Fujimoto, D Precup, D Meger
arXiv preprint arXiv:2412.17123, 2024
2024
Exploiting Structure in Offline Multi-Agent RL: The Benefits of Low Interaction Rank
W Zhan, S Fujimoto, Z Zhu, JD Lee, DR Jiang, Y Efroni
arXiv preprint arXiv:2410.01101, 2024
2024
Value estimation with finite data
S Fujimoto
McGill University, 2024
2024
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