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A Categorical Analysis of Large Language Models and Why LLMs Circumvent the Symbol Grounding Problem

Luciano Floridi
Yiyang Jia
Fernando Tohmé
Main:20 Pages
3 Figures
Bibliography:3 Pages
Appendix:2 Pages
Abstract

This paper presents a formal, categorical framework for analysing how humans and large language models (LLMs) transform content into truth-evaluated propositions about a state space of possible worlds W , in order to argue that LLMs do not solve but circumvent the symbol grounding problem.

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