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OPERA: Automatic Offline Policy Evaluation with Re-weighted Aggregates of Multiple Estimators

About

Offline policy evaluation (OPE) allows us to evaluate and estimate a new sequential decision-making policy's performance by leveraging historical interaction data collected from other policies. Evaluating a new policy online without a confident estimate of its performance can lead to costly, unsafe, or hazardous outcomes, especially in education and healthcare. Several OPE estimators have been proposed in the last decade, many of which have hyperparameters and require training. Unfortunately, choosing the best OPE algorithm for each task and domain is still unclear. In this paper, we propose a new algorithm that adaptively blends a set of OPE estimators given a dataset without relying on an explicit selection using a statistical procedure. We prove that our estimator is consistent and satisfies several desirable properties for policy evaluation. Additionally, we demonstrate that when compared to alternative approaches, our estimator can be used to select higher-performing policies in healthcare and robotics. Our work contributes to improving ease of use for a general-purpose, estimator-agnostic, off-policy evaluation framework for offline RL.

Allen Nie, Yash Chandak, Christina J. Yuan, Anirudhan Badrinath, Yannis Flet-Berliac, Emma Brunskil• 2024

Related benchmarks

TaskDatasetResultRank
Offline Policy EvaluationToyGraph (test)
MSE0.0339
20
Offline Policy EvaluationSepsis-MDP (test)
MSE0.1705
8
Offline Policy EvaluationSepsis-POMDP (test)
MSE0.2749
8
Offline Policy EvaluationD4RL hopper medium-replay
RMSE13
7
Offline Policy EvaluationD4RL Hopper medium
RMSE8.5
7
Offline Policy EvaluationD4RL HalfCheetah Medium-Replay
RMSE46
7
Offline Policy EvaluationD4RL Halfcheetah medium
RMSE100.5
7
Offline Policy EvaluationD4RL walker2d medium-replay
RMSE138.3
7
Offline Policy EvaluationD4RL Walker2d medium
RMSE149
7
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