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AAAI 2019

Attention Guided Imitation Learning and Reinforcement Learning

Short Paper Doctoral Consortium Track Artificial Intelligence

Abstract

We propose a framework that uses learned human visual attention model to guide the learning process of an imitation learning or reinforcement learning agent. We have collected high-quality human action and eye-tracking data while playing Atari games in a carefully controlled experimental setting. We have shown that incorporating a learned human gaze model into deep imitation learning yields promising results.

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Context

Venue
AAAI Conference on Artificial Intelligence
Archive span
1980-2026
Indexed papers
28718
Paper id
479727739783015303
v2026.09.13