DialFRED: Dialogue-Enabled Agents for Embodied Instruction Following
February 27, 2022 Β· Declared Dead Β· π IEEE Robotics and Automation Letters
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Authors
Xiaofeng Gao, Qiaozi Gao, Ran Gong, Kaixiang Lin, Govind Thattai, Gaurav S. Sukhatme
arXiv ID
2202.13330
Category
cs.AI: Artificial Intelligence
Cross-listed
cs.RO
Citations
87
Venue
IEEE Robotics and Automation Letters
Last Checked
3 months ago
Abstract
Language-guided Embodied AI benchmarks requiring an agent to navigate an environment and manipulate objects typically allow one-way communication: the human user gives a natural language command to the agent, and the agent can only follow the command passively. We present DialFRED, a dialogue-enabled embodied instruction following benchmark based on the ALFRED benchmark. DialFRED allows an agent to actively ask questions to the human user; the additional information in the user's response is used by the agent to better complete its task. We release a human-annotated dataset with 53K task-relevant questions and answers and an oracle to answer questions. To solve DialFRED, we propose a questioner-performer framework wherein the questioner is pre-trained with the human-annotated data and fine-tuned with reinforcement learning. We make DialFRED publicly available and encourage researchers to propose and evaluate their solutions to building dialog-enabled embodied agents.
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