Proceedings of the Annual Conference of JSAI
Online ISSN : 2758-7347
38th (2024)
Session ID : 3O1-OS-16b-01
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The Embodied World Model Based on LLM with Visual Information and Prediction-Oriented Prompts
*Wakana HAIJIMAKou NAKAKUBOKakeru HIRAYAMAMasahiro SUZUKIYutaka MATSUO
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Abstract

In recent years, as machine learning, particularly for vision and language understanding, has been improved, research in embedded AI has also evolved. VOYAGER is a well-known LLM-based embodied AI that enables autonomous exploration in the Minecraft world, but it has issues such as underutilization of visual data and unclear function as a world model. In this research, the possibility of utilizing visual data and the function of LLM as a world model were investigated with the aim of improving the performance of embodied AI. The experimental results revealed that LLM can extract necessary information from visual data, and the utilization of the information improves its performance as a world model. It was also suggested that devised prompts could bring out the LLM's function as a world model.

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© 2024 The Japanese Society for Artificial Intelligence
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