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Deep Learning for NLP and Speech Recognition, Uday Kamath; John Liu; James Whitaker


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Автор: Uday Kamath; John Liu; James Whitaker
Название:  Deep Learning for NLP and Speech Recognition
Перевод названия: Удаи Камат, Джон Лью, Джеймс Уайтакер: Технология глубокого обучения для обрабоки естественных языко
ISBN: 9783030145958
Издательство: Springer
Классификация:


ISBN-10: 3030145956
Обложка/Формат: Hardcover
Страницы: 621
Вес: 1.42 кг.
Дата издания: 2019
Язык: English
Издание: 1st ed. 2019
Иллюстрации: 300 illustrations, color; 13 illustrations, black and white; xxviii, 621 p. 313 illus., 300 illus. in color.; 300 illustrations, color; 13 illustratio
Размер: 254 x 178 x 35
Читательская аудитория: Professional & vocational
Основная тема: Computer Science
Ссылка на Издательство: Link
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Поставляется из: Германии
Описание: This textbook explains Deep Learning Architecture, with applications to various NLP Tasks, including Document Classification, Machine Translation, Language Modeling, and Speech Recognition. With the widespread adoption of deep learning, natural language processing (NLP),and speech applications in many areas (including Finance, Healthcare, and Government) there is a growing need for one comprehensive resource that maps deep learning techniques to NLP and speech and provides insights into using the tools and libraries for real-world applications. Deep Learning for NLP and Speech Recognition explains recent deep learning methods applicable to NLP and speech, provides state-of-the-art approaches, and offers real-world case studies with code to provide hands-on experience.
Many books focus on deep learning theory or deep learning for NLP-specific tasks while others are cookbooks for tools and libraries, but the constant flux of new algorithms, tools, frameworks, and libraries in a rapidly evolving landscape means that there are few available texts that offer the material in this book.
The book is organized into three parts, aligning to different groups of readers and their expertise. The three parts are:
Machine Learning, NLP, and Speech IntroductionThe first part has three chapters that introduce readers to the fields of NLP, speech recognition, deep learning and machine learning with basic theory and hands-on case studies using Python-based tools and libraries. Deep Learning BasicsThe five chapters in the second part introduce deep learning and various topics that are crucial for speech and text processing, including word embeddings, convolutional neural networks, recurrent neural networks and speech recognition basics. Theory, practical tips, state-of-the-art methods, experimentations and analysis in using the methods discussed in theory on real-world tasks. Advanced Deep Learning Techniques for Text and Speech
The third part has five chapters that discuss the latest and cutting-edge research in the areas of deep learning that intersect with NLP and speech. Topics including attention mechanisms, memory augmented networks, transfer learning, multi-task learning, domain adaptation, reinforcement learning, and end-to-end deep learning for speech recognition are covered using case studies.

Дополнительное описание: Notation xv.- Part 1: Machine Learning, NLP, and Speech Introduction.- Chapter 1 Introduction 1.- Chapter 2 Basics of Machine Learning 2.- Chapter 3 Text and Speech Basics 49.- Part 2: Deep Learning Basics.- Chapter 4 Basics of Deep Learning 105.- Chapter


Computer Age Statistical Inference

Автор: Bradley Efron and Trevor Hastie
Название: Computer Age Statistical Inference
ISBN: 1107149894 ISBN-13(EAN): 9781107149892
Издательство: Cambridge Academ
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Цена: 60190.00 T
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Описание: The twenty-first century has seen a breathtaking expansion of statistical methodology, both in scope and in influence. 'Big data', 'data science', and 'machine learning' have become familiar terms in the news, as statistical methods are brought to bear upon the enormous data sets of modern science and commerce. How did we get here? And where are we going? This book takes us on an exhilarating journey through the revolution in data analysis following the introduction of electronic computation in the 1950s. Beginning with classical inferential theories - Bayesian, frequentist, Fisherian - individual chapters take up a series of influential topics: survival analysis, logistic regression, empirical Bayes, the jackknife and bootstrap, random forests, neural networks, Markov chain Monte Carlo, inference after model selection, and dozens more. The distinctly modern approach integrates methodology and algorithms with statistical inference. The book ends with speculation on the future direction of statistics and data science.

Recent Advances in NLP: The Case of Arabic Language

Автор: Mohamed Abd Elaziz; Mohammed A. A. Al-qaness; Ahme
Название: Recent Advances in NLP: The Case of Arabic Language
ISBN: 3030346137 ISBN-13(EAN): 9783030346133
Издательство: Springer
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Цена: 93160.00 T
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Описание: In light of the rapid rise of new trends and applications in various natural language processing tasks, this book presents high-quality research in the field. Each chapter addresses a common challenge in a theoretical or applied aspect of intelligent natural language processing related to Arabic language.

Automatic Speech Recognition

Автор: Kai-Fu Lee
Название: Automatic Speech Recognition
ISBN: 1461366240 ISBN-13(EAN): 9781461366249
Издательство: Springer
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Цена: 139750.00 T
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Описание: Speech Recognition has a long history of being one of the difficult problems in Artificial Intelligence and Computer Science. These include cost, real time response, speaker independence, robustness to variations such as noise, microphone, speech rate and loudness, and the ability to handle non-grammatical speech.

Modern Speech Recognition Approaches

Автор: Asa Bensten
Название: Modern Speech Recognition Approaches
ISBN: 1681174618 ISBN-13(EAN): 9781681174617
Издательство: Gazelle Book Services
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Цена: 217350.00 T
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Описание: "Voice or speech recognition is the ability of a machine or program to receive and interpret dictation, or to understand and carry out spoken commands. The task of speech recognition is to convert speech into a sequence of words by a computer program. As the most natural communication modality for humans, the ultimate dream of speech recognition is to enable people to communicate more naturally and effectively. Speech recognition is often regarded as the front-end for many NLP components discussed in this book. In practice, the speech system typically uses context-free grammar (CFG) or statistic n-grams for the same reason that hidden Markov models (HMMs) are used for acoustic modelling. Although it initially addressed applications requiring the scanning of audio data for occurrences of particular keywords, the technology has become an effective approach to speech recognition for a wide range of applications. Speech recognition applications are different from any other kind of computer application. It opens up a world of possibilities for developers, especially those building interactive voice responses (IVRs) and other telephony applications, but speech recognition also has some challenges. Speech recognition is also affected by the quality of the input. If a user is calling a system, a bad cell phone connection or overly compressed Internet audio may throw off recognition. Handling these sorts of cases becomes very important when designing speech recognition applications. Modern Speech Recognition Approaches reflect important research on the approaches of speech recognition. The book focuses primarily on speech recognition and the related tasks such as speech enhancement and modelling. Thorough reading of this book will provide comprehensive knowledge on modern speech recognition approaches to the readers. "

Speech Recognition and Coding

Автор: Antonio J. Rubio Ayuso; Juan M. Lopez Soler
Название: Speech Recognition and Coding
ISBN: 3642633447 ISBN-13(EAN): 9783642633447
Издательство: Springer
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Цена: 139750.00 T
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Описание: Proceedings of the NATO Advanced Study Institute on New Advances and Trends in Speech Recognition and Coding, held in Bubion, Granada, Spain, June 28 - July 10, 1993

Robust Speech Recognition of Uncertain or Missing Data

Автор: Dorothea Kolossa; Reinhold Haeb-Umbach
Название: Robust Speech Recognition of Uncertain or Missing Data
ISBN: 3642438687 ISBN-13(EAN): 9783642438684
Издательство: Springer
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Цена: 113180.00 T
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Описание: This book presents the state of the art in recognition in the presence of uncertainty, offering examples that utilize uncertainty information for noise robustness, reverberation robustness, simultaneous recognition of multiple speech signals, and audiovisual speech recognition.

Automatic Speech Recognition of Arabic Phonemes with Neural Networks

Автор: Dib
Название: Automatic Speech Recognition of Arabic Phonemes with Neural Networks
ISBN: 3319977091 ISBN-13(EAN): 9783319977096
Издательство: Springer
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Цена: 46570.00 T
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Описание: This book presents a contrastive linguistics study of Arabic and English for the dual purposes of improved language teaching and speech processing of Arabic via spectral analysis and neural networks. The main focus of the present study is to treat the Arabic minimal syllable automatically to facilitate automatic speech processing in Arabic.

Speech Recognition and Understanding

Автор: Pietro Laface; Renato DeMori
Название: Speech Recognition and Understanding
ISBN: 3642766285 ISBN-13(EAN): 9783642766282
Издательство: Springer
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Цена: 121110.00 T
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Описание: Proceedings of the NATO Advanced "Study Institute on Speech Recognition and Understanding. Recent Advances, Trends and Applications" held in Cetraro, Italy, July 1-13, 1990

Robust Speech Recognition and Understanding

Автор: Danel Jaso
Название: Robust Speech Recognition and Understanding
ISBN: 1681174669 ISBN-13(EAN): 9781681174662
Издательство: Gazelle Book Services
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Цена: 217350.00 T
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Описание: "Speech recognition systems have become much more robust in recent years with respect to both speaker variability and acoustical variability. Automatic speech recognition (ASR) systems are finding increasing use in everyday life. Many of the commonplace environments where the systems are used are noisy, for example users calling up a voice search system from a busy cafeteria or a street. This can result in degraded speech recordings and adversely affect the performance of speech recognition systems. In addition to achieving speaker independence, many current systems can also automatically compensate for modest amounts of acoustical degradation caused by the effects of unknown noise and unknown linear filtering. As speech recognition and spoken language technologies are being transferred to real applications, the need for greater robustness in recognition technology is becoming increasingly apparent. Substantial progress has also been made over the last decade in the dynamic adaptation of speech recognition systems to new speakers, with techniques that modify or warp the systems phonetic representations to reflect the acoustical characteristics of individual speakers. Speech recognition systems have also become more robust in recent years, particularly with regard to slowly-varying acoustical sources of degradation. As the use of ASR systems increases, knowledge of the state-of-the-art in techniques to deal with such problems becomes critical to system and application engineers and researchers who work with or on ASR technologies. Robust Speech Recognition and Understanding brings together many different aspects of the current research on automatic speech recognition and language understanding. Additionally, it presents a comprehensive survey of the state-ofthe-art in techniques used to improve the robustness of speech recognition systems to these degrading external influences. "

Speech Recognition and Processing: Algorithms and Applied Principles

Автор: Hintz Marcus
Название: Speech Recognition and Processing: Algorithms and Applied Principles
ISBN: 1632404710 ISBN-13(EAN): 9781632404718
Издательство: Неизвестно
Цена: 85770.00 T
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New Systems and Architectures for Automatic Speech Recognition and Synthesis

Автор: Renato DeMori; Ching Y. Suen
Название: New Systems and Architectures for Automatic Speech Recognition and Synthesis
ISBN: 3642824498 ISBN-13(EAN): 9783642824494
Издательство: Springer
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Цена: 121110.00 T
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Описание: Proceedings of the NATO Advanced Study Institute on New Systems and Architecture for Automatic Speech Recognition and Synthesis, held at Bonas, Gers, France, 2-14 July 1984

Speech Enhancement, Modeling & Recognition

Автор: Danel Jaso
Название: Speech Enhancement, Modeling & Recognition
ISBN: 1681175851 ISBN-13(EAN): 9781681175850
Издательство: Gazelle Book Services
Цена: 198750.00 T
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Описание: Communication via speech is one of the essential functions of human beings. Humans possess varied ways to retrieve information from the outside world or to communicate with each other and the three most important sources of information are speech, images and written text. For many purposes, speech stands out as the most efficient and convenient one. Speech not only conveys linguistic contents, but also communicates other useful information like the mood of the speaker. When speaker and listener are near to each other in a quiet environment, communication is generally easy and accurate. However, at a distance or in a noisy background, the listeners ability to understand suffers. Speech enhancement aims to improve speech quality by using various algorithms. The objective of enhancement is improvement in intelligibility and/or overall perceptual quality of degraded speech signal using audio signal processing techniques. Enhancing of speech degraded by noise, or noise reduction, is the most important field of speech enhancement, and used for many applications such as mobile phones, VoIP, teleconferencing systems, speech recognition, and hearing aids. This book covers important fields in speech processing such as speech enhancement, noise cancellation, multi-resolution spectral analysis, voice conversion, speech recognition and emotion recognition from speech in addition to applications. This book will be of immense useful for advanced graduate students, researchers and practicing engineers employed in speech processing.


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