Papers › LobsDICE: Offline Learning from Observation via Stationary Distribution Correction Estimation

LobsDICE: Offline Learning from Observation via Stationary Distribution Correction Estimation

28 Feb 2022arXiv:2202.13536archive 2025-07-28

Geon-Hyeong Kim, Jongmin Lee, Youngsoo Jang, Hongseok Yang, Kee-Eung Kim

We consider the problem of learning from observation (LfO), in which the agent aims to mimic the expert's behavior from the state-only demonstrations by experts. We additionally assume that the agent cannot interact with the environment but has access to the action-labeled transition data collected by some agents with unknown qualities. This offline setting for LfO is appealing in many real-world scenarios where the ground-truth expert actions are inaccessible and the arbitrary environment interactions are costly or risky. In this paper, we present LobsDICE, an offline LfO algorithm that learns to imitate the expert policy via optimization in the space of stationary distributions. Our algorithm solves a single convex minimization problem, which minimizes the divergence between the two state-transition distributions induced by the expert and the agent policy. Through an extensive set of offline LfO tasks, we show that LobsDICE outperforms strong baseline methods.

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add_absorbing_states geon-hyeong/imitation-dice/utils.py official repository unverified Apache-2.0 (permissive) · de7dfe13ea6c9e3d · report
boolean geon-hyeong/imitation-dice/config/lfd_default_config.py official repository unverified Apache-2.0 (permissive) · 3b81875ee24223a6 · report
check_and_normalize_box_actions geon-hyeong/imitation-dice/wrappers/normalize_action_wrapper.py official repository unverified Apache-2.0 (permissive) · b1c0ce2e87ab7757 · report
evaluate_d4rl geon-hyeong/imitation-dice/lfd_mujoco.py official repository unverified Apache-2.0 (permissive) · e2cd2e34acacdb21 · report
load_d4rl_data geon-hyeong/imitation-dice/utils.py official repository unverified Apache-2.0 (permissive) · 8a5275eeca2fbda2 · report

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