activity
20172023
most citedReturn-Based Contrastive Representation Learning for Reinforcement Learning

18 citations · 64 across the 15 of their papers we have counts for

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9 papers · 1 filter

cs.LG2022★ 2 cited

An Adaptive Deep RL Method for Non-Stationary Environments with Piecewise Stable Context

Xiaoyu Chen, Xiangming Zhu, Yufeng Zheng +8

One of the key challenges in deploying RL to real-world applications is to adapt to variations of unknown environment contexts, such as changing terrains in robotic tasks and fluct…

cs.LG2022

Tiered Reinforcement Learning: Pessimism in the Face of Uncertainty and Constant Regret

Jiawei Huang, Li Zhao, Tao Qin +3

We propose a new learning framework that captures the tiered structure of many real-world user-interaction applications, where the users can be divided into two groups based on the…

cs.LG2022

Towards Deployment-Efficient Reinforcement Learning: Lower Bound and Optimality

Jiawei Huang, Jinglin Chen, Li Zhao +3

Deployment efficiency is an important criterion for many real-world applications of reinforcement learning (RL). Despite the community's increasing interest, there lacks a formal t…

cs.LG2021

Curriculum Offline Imitation Learning

Minghuan Liu, Hanye Zhao, Zhengyu Yang +4

Offline reinforcement learning (RL) tasks require the agent to learn from a pre-collected dataset with no further interactions with the environment. Despite the potential to surpas…

cs.LG2021★ 3 cited

Object-Aware Regularization for Addressing Causal Confusion in Imitation Learning

Jongjin Park, Younggyo Seo, Chang Liu +4

Behavioral cloning has proven to be effective for learning sequential decision-making policies from expert demonstrations. However, behavioral cloning often suffers from the causal…

cs.LG2021★ 4 cited

Distributional Reinforcement Learning for Multi-Dimensional Reward Functions

Pushi Zhang, Xiaoyu Chen, Li Zhao +3

A growing trend for value-based reinforcement learning (RL) algorithms is to capture more information than scalar value functions in the value network. One of the most well-known m…