Algorithmic Fairness in AI-Mediated Institutional Communication Algorithmic Fairness in AI-Mediated Institutional Communication

Algorithmic Fairness in AI-Mediated Institutional Communication

A Computational Framework for Multilingual Professional Interaction

Ran Yi and Others
    • $39.99
    • $39.99

Publisher Description

As Large Language Models increasingly shape professional discourse—legal proceedings, cross-border documentation, and professional education—questions of linguistic equity and algorithmic accountability become urgent. The book develops a computational framework for evaluating fairness in AI-mediated institutional communication. 

The book introduces a transformer-based benchmarking architecture designed to measure communicative competence and fairness across multilingual institutional settings. Using domain-specific corpora from cross-border professional environments, it operationalises sociolinguistic indicators into measurable computational metrics.

Through model validation, bias analysis, and cross-lingual robustness testing, the authors demonstrate how fairness in professional communication can be evaluated beyond generic NLP benchmarks, and propose a replicable framework for integrating linguistic justice principles into AI system assessment. This book will be of interest to researchers in NLP fairness, computational sociolinguistics, multilingual AI systems, and applied machine learning in institutional domains.

GENRE
Computers & Internet
RELEASED
2026
June 28
LANGUAGE
EN
English
LENGTH
78
Pages
PUBLISHER
Springer Nature Switzerland
SELLER
Springer Nature B.V.
SIZE
1.4
MB
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