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A Primer on Computational Semantics for Artificial Intelligence Systems

A new academic primer on computational semantics for AI systems, submitted to arXiv on 25 Aug 2026, explains how transformer-based language models like ChatGPT and Gemini learn and represent linguistic meaning, contrasting formal, grounded, and distributional semantic theories with human language acquisition. The document aims to inform users about the nature of language and the differences between AI and human learning.

read1 min views2 publishedAug 27, 2026
A Primer on Computational Semantics for Artificial Intelligence Systems
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[Submitted on 25 Aug 2026]


[View PDF](/pdf/2608.25022)

Abstract:As people adopt transformer-based language models (e.g., ChatGPT and Gemini) for an increasing number of use-cases, it is important to know how such models learn and represent the meaning of the language, and to be more informed about what language is. This document is an attempt to help the reader understand how linguistic meaning (i.e., semantics) is approached from different fields of scientific and philosophical examination. I also explain three primary semantic theories: formal semantics, grounded semantics, and distributional semantics then compare how transformer-based language models differ from how humans learn language.

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