Machine Learning Meets Discourse Machine Learning Meets Discourse
Routledge Studies in Linguistics

Machine Learning Meets Discourse

Algorithms, Performance, and Interpretation

    • $1,099.00
    • $1,099.00

Descripción editorial

Tay explores the performance-interpretability trade-off (PIT) as a critical tension in artificial intelligence (AI) and machine learning (ML), and shows its distinctive form in discourse analysis where predictive success and interpretive meaning are inseparable.

Rather than treating PIT as a technical obstacle, this book reframes it as a site of conceptual negotiation and theoretical innovation. It introduces constructs such as strategic indeterminacy and PIT elasticity alongside analytic strategies like discourse fingerprinting, to show how discourse knowledge can actively reshape computational assumptions at every level of the analytic pipeline. Through sustained case studies, the book equips readers to engage ML algorithms as a partner in interpretation and methodological reflection.

This book is an essential resource for scholars and researchers in linguistics, discourse analysts, computational linguists, and digital humanities, offering a comprehensive roadmap for harnessing ML’s transformative potential.

GÉNERO
Técnicos y profesionales
PUBLICADO
2026
21 de octubre
IDIOMA
EN
Inglés
EXTENSIÓN
168
Páginas
EDITORIAL
Taylor & Francis
VENDEDOR
Taylor & Francis Group
TAMAÑO
4.5
MB
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