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Stuart J. Russell

6 accepted papers

2024

A Generalized Acquisition Function for Preference-based Reward Learning

ICRA 2024poster

Preference-based reward learning is a popular technique for teaching robots and autonomous systems how a human user wants them to perform a task. Previous works have shown that actively synthesizing preference queries to maximize information gain about the reward function parameters improves data ef…

Cited by 3SourceScholar
2020

Emergent Complexity and Zero-shot Transfer via Unsupervised Environment Design

NeurIPS 2020oral

A wide range of reinforcement learning (RL) problems --- including robustness, transfer learning, unsupervised RL, and emergent complexity --- require specifying a distribution of tasks or environments in which a policy will be trained. However, creating a useful distribution of environments is err…

2020

SLIP: Learning to predict in unknown dynamical systems with long-term memory

NeurIPS 2020oral

We present an efficient and practical (polynomial time) algorithm for online prediction in unknown and partially observed linear dynamical systems (LDS) under stochastic noise. When the system parameters are known, the optimal linear predictor is the Kalman filter. However, in unknown systems, the p…

Cited by 14SourcePDFScholar
2019

Cognitive model priors for predicting human decisions

ICML 2019oral

Human decision-making underlies all economic behavior. For the past four decades, human decision-making under uncertainty has continued to be explained by theoretical models based on prospect theory, a framework that was awarded the Nobel Prize in Economic Sciences. However, theoretical models of th…

Cited by 127SourcePDFScholar