Ontology Learning from Text: Methods, Evaluation and Applications

Ontology Learning from Text: Methods, Evaluation and Applications

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2005 · Inglés · Tapa dura
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Descripción

This collection brings together a diverse range of essays focused on the emerging field of ontology learning from text. Renowned experts, including Buitelaar, Cimiano, and Magnini, share their insights and research findings, offering readers a comprehensive overview of the methodologies, evaluations, and practical applications that can be harnessed in this dynamic area of artificial intelligence.

The contributors explore various approaches to extracting meaningful structures and relationships from unstructured data, shedding light on the challenges and solutions associated with automating ontology construction. Their collective expertise ensures that readers gain a robust understanding of both theoretical foundations and practical implications of ontology learning.

Through case studies and evaluative frameworks, the essays provide an invaluable resource for researchers and practitioners alike, aiming to bridge the gap between conceptual theory and real-world application. This compilation not only advances knowledge within the AI community but also serves as a catalyst for future discussions and developments.

Detalles del libro

Formato Tapa dura
Páginas 180 páginas
Idioma Inglés
Publicado Jul 1, 2005
Editorial IOS Press
ISBN-10 1586035231
ISBN-13 9781586035235

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