Natural Language Analytics with Generative Large-Language Models
A Practical Approach with Ollama and Open-Source LLMs
Springer
ISBN 978-3-031-76630-5
Standardpreis
Bibliografische Daten
Fachbuch
Buch. Softcover
2025
6 s/w-Abbildungen, 7 Farbabbildungen.
In englischer Sprache
Umfang: xiii, 84 S.
Format (B x L): 15,5 x 23,5 cm
Verlag: Springer
ISBN: 978-3-031-76630-5
Weiterführende bibliografische Daten
Das Werk ist Teil der Reihe: SpringerBriefs in Computer Science
Produktbeschreibung
The content is designed for professionals in diverse fields including cognitive science, linguistics, management, and information systems. It combines insights from both industry and academia to provide a comprehensive understanding of how LLMs can be effectively used for natural language analytics (NLA). The book details practical methodologies for implementing LLMs locally using open-source tools, ensuring data privacy and feasibility without the need for expensive infrastructure.
Key topics include interpretant, mindset and cultural analysis, emphasizing the use of LLMs to derive soft data—qualitative information crucial for nuanced decision-making. The text also outlines the technical aspects of LLMs, including their architecture, token embeddings, and the differences between encoder-based and decoder-based models. By providing a case study and practical examples, the authors show how LLMs can be used to meet various analytical needs, making this book a valuable resource for anyone looking to integrate advanced natural language processing techniques into their data analysis workflows.
Autorinnen und Autoren
Kundeninformationen
Provides a comprehensive guide on using generative LLMs for extracting actionable data from natural language artefacts Combines insights from cognitive science, linguistics, management and information systems Offers practical methodologies for implementing LLMs locally, ensuring data privacy and cost-effective processing
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