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Can Foundation Models Watch, Talk and Guide You Step by Step to Make a Cake? (arxiv.org)
1 point by belter on Nov 3, 2023 | hide | past | pdf | discuss on HN

In plain words: Built a set of cake-making sessions where a human instructor watches and guides a beginner, to test whether big AI models can do the same. With no task-specific training they did fairly well in some cases, but adapting them quickly and reliably stayed hard.

Abstract

Despite tremendous advances in AI, it remains a significant challenge to develop interactive task guidance systems that can offer situated, personalized guidance and assist humans in various tasks. These systems need to have a sophisticated understanding of the user as well as the environment, and make timely accurate decisions on when and what to say. To address this issue, we created a new multimodal benchmark dataset, Watch, Talk and Guide (WTaG) based on natural interaction between a human user and a human instructor. We further proposed two tasks: User and Environment Understanding, and Instructor Decision Making. We leveraged several foundation models to study to what extent these models can be quickly adapted to perceptually enabled task guidance. Our quantitative, qualitative, and human evaluation results show that these models can demonstrate fair performances in some cases with no task-specific training, but a fast and reliable adaptation remains a significant challenge. Our benchmark and baselines will provide a stepping stone for future work on situated task guidance.

Yuwei Bao, Keunwoo Peter Yu, Yichi Zhang, Shane Storks, Itamar Bar-Yossef, Alexander De La Iglesia, Megan Su, Xiao Lin Zheng, Joyce Chai
arXiv:2311.00738 · cs.AI, cs.HC · submitted Nov 1, 2023
abstract · pdf · html · Accepted to EMNLP 2023 Findings

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