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Introduction to Transformers for NLP

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  • 180 stron
  • 7 godzin czytania

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Get a hands-on introduction to Transformer architecture using the Hugging Face library. This book explains how Transformers are changing the AI domain, particularly in the area of natural language processing. This book covers Transformer architecture and its relevance in natural language processing (NLP). It starts with an introduction to NLP and a progression of language models from n-grams to a Transformer-based architecture. Next, it offers some basic Transformers examples using the Google colab engine. Then, it introduces the Hugging Face ecosystem and the different libraries and models provided by it. Moving forward, it explains language models such as Google BERT with some examples before providing a deep dive into Hugging Face API using different language models to address tasks such as sentence classification, sentiment analysis, summarization, and text generation. After completing Introduction to Transformers for NLP , you will understand Transformer concepts and be able to solve problems using the Hugging Face library.What You Will LearnWho This Book Is For Data Scientists and software developers interested in developing their skills in NLP and NLU (Natural Language Understanding)

Zakup książki

Introduction to Transformers for NLP, Shashank Mohan Jain

Język
Rok wydania
2022
Oprawa
(miękka)
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Tytuł
Introduction to Transformers for NLP
Język
angielski
Wydawca
Apress
Rok wydania
2022
Oprawa
miękka
Liczba stron
180
ISBN10
1484288432
ISBN13
9781484288436
Seria
Tagi
Ocena
3,35 z 5
Opis
Get a hands-on introduction to Transformer architecture using the Hugging Face library. This book explains how Transformers are changing the AI domain, particularly in the area of natural language processing. This book covers Transformer architecture and its relevance in natural language processing (NLP). It starts with an introduction to NLP and a progression of language models from n-grams to a Transformer-based architecture. Next, it offers some basic Transformers examples using the Google colab engine. Then, it introduces the Hugging Face ecosystem and the different libraries and models provided by it. Moving forward, it explains language models such as Google BERT with some examples before providing a deep dive into Hugging Face API using different language models to address tasks such as sentence classification, sentiment analysis, summarization, and text generation. After completing Introduction to Transformers for NLP , you will understand Transformer concepts and be able to solve problems using the Hugging Face library.What You Will LearnWho This Book Is For Data Scientists and software developers interested in developing their skills in NLP and NLU (Natural Language Understanding)