A Cache Based Natural Language Model For Speech Recognition
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A Cache based Natural Language Model for Speech Recognition
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Author | : Roland Kuhn,Renato de Mori,McGill University. School of Computer Science |
Publsiher | : Unknown |
Total Pages | : 33 |
Release | : 1988 |
Genre | : Automatic speech recognition |
ISBN | : OCLC:21016451 |
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We discuss the relative performance of the two models, and make suggestions for future improvements."
Deep Learning for NLP and Speech Recognition
Author | : Uday Kamath,John Liu,James Whitaker |
Publsiher | : Springer |
Total Pages | : 621 |
Release | : 2019-06-10 |
Genre | : Computers |
ISBN | : 9783030145965 |
Download Deep Learning for NLP and Speech Recognition Book in PDF, Epub and Kindle
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 Introduction The 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 Basics The 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.
Natural Language Processing IJCNLP 2004
Author | : Keh-Yih Su,Jun'ichi Tsujii,Jong-Hyeok Lee,Oi Yee Kwong |
Publsiher | : Springer Science & Business Media |
Total Pages | : 827 |
Release | : 2005-01-31 |
Genre | : Computers |
ISBN | : 9783540244752 |
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This book constitutes the thoroughly refereed post-proceedings of the First International Joint Conference on Natural Language Processing, IJCNLP 2004, held in Hainan Island, China in March 2004. The 84 revised full papers presented in this volume were carefully selected during two rounds of reviewing and improvement from 211 papers submitted. The papers are organized in topical sections on dialogue and discourse; FSA and parsing algorithms; information extractions and question answering; information retrieval; lexical semantics, ontologies, and linguistic resources; machine translation and multilinguality; NLP software and applications, semantic disambiguities; statistical models and machine learning; taggers, chunkers, and shallow parsers; text and sentence generation; text mining; theories and formalisms for morphology, syntax, and semantics; word segmentation; NLP in mobile information retrieval and user interfaces; and text mining in bioinformatics.
Encyclopedia of Library and Information Science
Author | : Allen Kent |
Publsiher | : CRC Press |
Total Pages | : 384 |
Release | : 2002-03-26 |
Genre | : Language Arts & Disciplines |
ISBN | : 0824720725 |
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This supplement examines achieving synergy between computer power and human reason to the unified medical language system (UMLS).
Springer Handbook of Speech Processing
Author | : Jacob Benesty,M. M. Sondhi,Yiteng Huang |
Publsiher | : Springer |
Total Pages | : 1176 |
Release | : 2007-11-22 |
Genre | : Technology & Engineering |
ISBN | : 9783540491279 |
Download Springer Handbook of Speech Processing Book in PDF, Epub and Kindle
This handbook plays a fundamental role in sustainable progress in speech research and development. With an accessible format and with accompanying DVD-Rom, it targets three categories of readers: graduate students, professors and active researchers in academia, and engineers in industry who need to understand or implement some specific algorithms for their speech-related products. It is a superb source of application-oriented, authoritative and comprehensive information about these technologies, this work combines the established knowledge derived from research in such fast evolving disciplines as Signal Processing and Communications, Acoustics, Computer Science and Linguistics.
Speech Synthesis and Recognition
Author | : Wendy Holmes |
Publsiher | : CRC Press |
Total Pages | : 320 |
Release | : 2002-09-11 |
Genre | : Technology & Engineering |
ISBN | : 9781351988681 |
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With the growing impact of information technology on daily life, speech is becoming increasingly important for providing a natural means of communication between humans and machines. This extensively reworked and updated new edition of Speech Synthesis and Recognition is an easy-to-read introduction to current speech technology. Aimed at advanced undergraduates and graduates in electronic engineering, computer science and information technology, the book is also relevant to professional engineers who need to understand enough about speech technology to be able to apply it successfully and to work effectively with speech experts. No advanced mathematical ability is required and no specialist prior knowledge of phonetics or of the properties of speech signals is assumed.
Chinese Lexical Semantics
Author | : Jia-Fei Hong,Yangsen Zhang,Pengyuan Liu |
Publsiher | : Springer Nature |
Total Pages | : 873 |
Release | : 2020-01-03 |
Genre | : Computers |
ISBN | : 9783030381899 |
Download Chinese Lexical Semantics Book in PDF, Epub and Kindle
This book constitutes the thoroughly refereed post-workshop proceedings of the 20th Chinese Lexical Semantics Workshop, CLSW 2019, held in Chiayi, Taiwan, in June 2019. The 39 full papers and 46 short papers included in this volume were carefully reviewed and selected from 254 submissions. They are organized in the following topical sections: lexical semantics; applications of natural language processing; lexical resources; corpus linguistics.
Deep Learning Approaches for Spoken and Natural Language Processing
Author | : Virender Kadyan,Amitoj Singh,Mohit Mittal,Laith Abualigah |
Publsiher | : Springer Nature |
Total Pages | : 171 |
Release | : 2022-01-01 |
Genre | : Technology & Engineering |
ISBN | : 9783030797782 |
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This book provides insights into how deep learning techniques impact language and speech processing applications. The authors discuss the promise, limits and the new challenges in deep learning. The book covers the major differences between the various applications of deep learning and the classical machine learning techniques. The main objective of the book is to present a comprehensive survey of the major applications and research oriented articles based on deep learning techniques that are focused on natural language and speech signal processing. The book is relevant to academicians, research scholars, industrial experts, scientists and post graduate students working in the field of speech signal and natural language processing and would like to add deep learning to enhance capabilities of their work. Discusses current research challenges and future perspective about how deep learning techniques can be applied to improve NLP and speech processing applications; Presents and escalates the research trends and future direction of language and speech processing; Includes theoretical research, experimental results, and applications of deep learning.