Skip to yearly menu bar Skip to main content


Poster
in
Workshop: Foundations of Reinforcement Learning and Control: Connections and Perspectives

Bridging Distributionally Robust Learning and Offline RL: An Approach to Mitigate Distribution Shift and Partial Data Coverage

Kishan Panaganti · Zaiyan Xu · Dileep Kalathil · Mohammad Ghavamzadeh


Abstract:

The goal of an offline reinforcement learning (RL) algorithm is to learn the optimal policy using offline data, without access to the environment for online exploration. One of the main challenges in offline RL is the distribution shift which refers to the difference between the state-action visitation distribution of the data generating policy and the learning policy. Many recent works have used the idea of pessimism for developing offline RL algorithms and characterizing their sample complexity under a relatively weak assumption of single policy concentrability. Different from the offline RL literature, the area of distributionally robust learning (DRL) offers a principled framework that uses a minimax formulation to tackle model mismatch between training and testing environments. In this work, we aim to bridge these two areas by showing that the DRL approach can tackle the distributional shift problem in offline RL. In particular, we propose two offline RL algorithms using the DRL framework, for the tabular and linear function approximation settings, and characterize their sample complexity under the single policy concentrability assumption. We also demonstrate the performance of our algorithm through simulation experiments and by comparing it with other state-of-the-art tabular offline RL algorithms.

Chat is not available.