JSAI2024

Presentation information

Poster Session

Poster session » Poster session

[3Xin2] Poster session 1

Thu. May 30, 2024 11:00 AM - 12:40 PM Room X (Event hall 1)

[3Xin2-54] Introduction of Linguistic Quantitative Reasoning into Large Language Models

〇Megumi Itoh1, Ichiro Kobayashi1 (1.Ochanomizu University)

Keywords:Large Language Model, Fuzzy Reasoning

The purpose of this research is to incorporate quantitative inference (especially fuzzy inference) functions corresponding to the real world into large language models. Given the state of the environment and the conditions of an object when two objects collide, we show that the post-collision state corresponding to the conditions can be inferred in natural language. The physical state of the consequence inferred as the post-collision state is expressed in natural language, and at the same time, by capturing the context using a large-scale language model, it is possible to estimate the membership function corresponding to the linguistic expression of the quantitative state change.

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