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Neural Machine Translation
  • Language: en
  • Pages: 409

Neural Machine Translation

Learn how to build machine translation systems with deep learning from the ground up, from basic concepts to cutting-edge research.

Neural Network Methods in Natural Language Processing
  • Language: en
  • Pages: 370

Neural Network Methods in Natural Language Processing

Neural networks are a family of powerful machine learning models and this book focuses on their application to natural language data. The first half of the book (Parts I and II) covers the basics of supervised machine learning and feed-forward neural networks, the basics of working with machine learning over language data, and the use of vector-based rather than symbolic representations for words. It also covers the computation-graph abstraction, which allows to easily define and train arbitrary neural networks, and is the basis behind the design of contemporary neural network software libraries. The second part of the book (Parts III and IV) introduces more specialized neural network architectures, including 1D convolutional neural networks, recurrent neural networks, conditioned-generation models, and attention-based models. These architectures and techniques are the driving force behind state-of-the-art algorithms for machine translation, syntactic parsing, and many other applications. Finally, we also discuss tree-shaped networks, structured prediction, and the prospects of multi-task learning.

Hands-On Machine Learning with Scikit-Learn and PyTorch
  • Language: en
  • Pages: 878

Hands-On Machine Learning with Scikit-Learn and PyTorch

The potential of machine learning today is extraordinary, yet many aspiring developers and tech professionals find themselves daunted by its complexity. Whether you're looking to enhance your skill set and apply machine learning to real-world projects or are simply curious about how AI systems function, this book is your jumping-off place. With an approachable yet deeply informative style, author Aurélien Géron delivers the ultimate introductory guide to machine learning and deep learning. Drawing on the Hugging Face ecosystem, with a focus on clear explanations and real-world examples, the book takes you through cutting-edge tools like Scikit-Learn and PyTorch—from basic regression tech...

The Oxford Handbook of Computational Linguistics
  • Language: en
  • Pages: 1606

The Oxford Handbook of Computational Linguistics

Ruslan Mitkov's highly successful Oxford Handbook of Computational Linguistics has been substantially revised and expanded in this second edition. Alongside updated accounts of the topics covered in the first edition, it includes 17 new chapters on subjects such as semantic role-labelling, text-to-speech synthesis, translation technology, opinion mining and sentiment analysis, and the application of Natural Language Processing in educational and biomedical contexts, among many others. The volume is divided into four parts that examine, respectively: the linguistic fundamentals of computational linguistics; the methods and resources used, such as statistical modelling, machine learning, and corpus annotation; key language processing tasks including text segmentation, anaphora resolution, and speech recognition; and the major applications of Natural Language Processing, from machine translation to author profiling. The book will be an essential reference for researchers and students in computational linguistics and Natural Language Processing, as well as those working in related industries.

Gendered Technology in Translation and Interpreting
  • Language: en
  • Pages: 271

Gendered Technology in Translation and Interpreting

This collection takes an interdisciplinary approach to the study of gendered technology, an emerging area of inquiry that draws on a range of fields to explore how technology is designed and used in a way that reinforces or challenges gender norms and inequalities. The volume explores different perspectives on the impact of technology on gender relations through specific cases of translation and interpreting technologies. In particular, the book considers the slow response of legal frameworks in dealing with the rise of language-based technologies, especially machine translation and large language models, and their impacts on individual and collective rights. Part I introduces the study of g...

Language Technology for Cultural Heritage
  • Language: en
  • Pages: 252

Language Technology for Cultural Heritage

The digital age has had a profound effect on our cultural heritage and the academic research that studies it. Staggering amounts of objects, many of them of a textual nature, are being digitised to make them more readily accessible to both experts and laypersons. Besides a vast potential for more effective and efficient preservation, management, and presentation, digitisation offers opportunities to work with cultural heritage data in ways that were never feasible or even imagined. To explore and exploit these possibilities, an interdisciplinary approach is needed, bringing together experts from cultural heritage, the social sciences and humanities on the one hand, and information technology...

Syntax-based Statistical Machine Translation
  • Language: en
  • Pages: 201

Syntax-based Statistical Machine Translation

This unique book provides a comprehensive introduction to the most popular syntax-based statistical machine translation models, filling a gap in the current literature for researchers and developers in human language technologies. While phrase-based models have previously dominated the field, syntax-based approaches have proved a popular alternative, as they elegantly solve many of the shortcomings of phrase-based models. The heart of this book is a detailed introduction to decoding for syntax-based models. The book begins with an overview of synchronous-context free grammar (SCFG) and synchronous tree-substitution grammar (STSG) along with their associated statistical models. It also descri...

Machine Translation
  • Language: en
  • Pages: 137

Machine Translation

This book constitutes the refereed proceedings of the 17th China Conference on Machine Translation, CCMT 2020, held in Xining, China, in October 2021. The 10 papers presented in this volume were carefully reviewed and selected from 25 submissions and focus on all aspects of machine translation, including preprocessing, neural machine translation models, hybrid model, evaluation method, and post-editing.

Neural Machine Translation of Rare Words with Subword Units
  • Language: en

Neural Machine Translation of Rare Words with Subword Units

  • Type: Book
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  • Published: 2016
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  • Publisher: Unknown

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Domain Adaptation for Translation Models in Statistical Machine Translation
  • Language: en
  • Pages: 148