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Transformers for Natural Language Processing

Denis Rothman (Autor)

Packt Publishing (Editora)

R$ 765,35
SKU: 9781800565791

Take your NLP knowledge to the next level and become an AI language understanding expert by mastering the quantum leap of Transformer neural network models


Key Features

  • Build and implement state-of-the-art language models, such as the original Transformer, BERT, T5, and GPT-2, using concepts that outperform classical deep learning models
  • Go through hands-on applications in Python using Google Colaboratory Notebooks with nothing to install on a local machine
  • Test transformer models on advanced use cases


Book Description

The transformer architecture has proved to be revolutionary in outperforming the classical RNN and CNN models in use today. With an apply-as-you-learn approach, Transformers for Natural Language Processing investigates in vast detail the deep learning for machine translations, speech-to-text, text-to-speech, language modeling, question answering, and many more NLP domains with transformers.


The book takes you through NLP with Python and examines various eminent models and datasets within the transformer architecture created by pioneers such as Google, Facebook, Microsoft, OpenAI, and Hugging Face.


The book trains you in three stages. The first stage introduces you to transformer architectures, starting with the original transformer, before moving on to RoBERTa, BERT, and DistilBERT models. You will discover training methods for smaller transformers that can outperform GPT-3 in some cases. In the second stage, you will apply transformers for Natural Language Understanding (NLU) and Natural Language Generation (NLG). Finally, the third stage will help you grasp advanced language understanding techniques such as optimizing social network datasets and fake news identification.


By the end of this NL

Sobre o Livro

Arquitetura Transformer aplicada a tarefas de processamento de linguagem natural, incluindo tradução automática, modelagem de linguagem e sistemas de pergunta e resposta.

O texto descreve modelos como Transformer original, BERT, RoBERTa, DistilBERT, T5 e GPT-2 e apresenta exemplos em Python usando notebooks do Google Colaboratory.

Contém aplicações práticas em speech-to-text, text-to-speech, detecção de notícias falsas e otimização de conjuntos de dados de redes sociais, com exercícios e experimentos reproduzíveis sem instalação local.

Características

Categoria Computação
Subcategoria Inteligência Artificial
Autores Denis Rothman
Sobre o Autor Denis Rothman é autor sobre temas de aprendizado de máquina e inteligência artificial, com publicações voltadas a implementações práticas.
Idioma Inglês
Quantidade de Páginas 384
Acabamento Brochura
Editora Packt Publishing
ISBN 9781800565791
Tamanho 19.1x23.5
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