An Introduction to Large Language Models
Book Details
Format
Hardback or Cased Book
ISBN-10
1041094353
ISBN-13
9781041094357
Publisher
Taylor & Francis Ltd
Imprint
CRC Press
Country of Manufacture
GB
Country of Publication
GB
Publication Date
Oct 30th, 2026
Print length
352 Pages
Product Classification:
Computational and corpus linguisticsComputational linguisticsAutomatic control engineeringDigital and Information technology: general topicsInformation technology: general issuesSupercomputersComputer architecture & logic designComputer architecture and logic designNeural networks & fuzzy systemsNeural networks and fuzzy systems
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The book offers an introduction to Large Language Models that bridge foundational natural language processing (NLP) concepts with the advanced techniques underlying large language models (LLMs).
The book offers an introduction to Large Language Models that bridge foundational natural language processing (NLP) concepts with the advanced techniques underlying large language models (LLMs). It offers a structured exploration of NLP evolution, from rule-based approaches to transformer architectures. Covering key principles such as tokenisation, attention mechanisms, and model architectures (BERT, GPT, T5), the book explains pretraining objectives like masked and causal language modeling. It also addresses optimisation techniques such as LoRA, pruning, and quantisation for efficient LLM deployment. Multi-modal models, including GPT-4 and PaLM-E, are explored alongside retrieval-augmented generation and AI-powered agents. Discusses foundational NLP concepts, theoretical depth, advanced techniques, and real-world applications. Covers perplexity, BLEU, ROUGE, and datasets like SuperGLUE and SQuAD for assessing LLM performance, discusses LoRA, pruning, and quantisation to optimise LLM deployment in resource-constrained settings. Explores GPT-4, PaLM-E, and retrieval-augmented generation, expanding beyond traditional NLP models. Provides Python implementations for fine-tuning, classification, summarisation, and conversational AI tasks. Highlights use cases in text generation, code generation, sentiment analysis, and multimodal AI. This book is an invaluable textbook for students, researchers, and industry professionals seeking a deep technical understanding of LLMs and their applications.
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