How to Build a Speech Recognition Application

How to Build a Speech Recognition Application
Author: Bruce Balentine,David P. Morgan
Publsiher: Unknown
Total Pages: 0
Release: 1999
Genre: Automatic speech recognition
ISBN: 0967127815

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Robust Automatic Speech Recognition

Robust Automatic Speech Recognition
Author: Jinyu Li,Li Deng,Reinhold Haeb-Umbach,Yifan Gong
Publsiher: Academic Press
Total Pages: 306
Release: 2015-10-30
Genre: Technology & Engineering
ISBN: 9780128026168

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Robust Automatic Speech Recognition: A Bridge to Practical Applications establishes a solid foundation for automatic speech recognition that is robust against acoustic environmental distortion. It provides a thorough overview of classical and modern noise-and reverberation robust techniques that have been developed over the past thirty years, with an emphasis on practical methods that have been proven to be successful and which are likely to be further developed for future applications. The strengths and weaknesses of robustness-enhancing speech recognition techniques are carefully analyzed. The book covers noise-robust techniques designed for acoustic models which are based on both Gaussian mixture models and deep neural networks. In addition, a guide to selecting the best methods for practical applications is provided. The reader will: Gain a unified, deep and systematic understanding of the state-of-the-art technologies for robust speech recognition Learn the links and relationship between alternative technologies for robust speech recognition Be able to use the technology analysis and categorization detailed in the book to guide future technology development Be able to develop new noise-robust methods in the current era of deep learning for acoustic modeling in speech recognition The first book that provides a comprehensive review on noise and reverberation robust speech recognition methods in the era of deep neural networks Connects robust speech recognition techniques to machine learning paradigms with rigorous mathematical treatment Provides elegant and structural ways to categorize and analyze noise-robust speech recognition techniques Written by leading researchers who have been actively working on the subject matter in both industrial and academic organizations for many years

Speech Recognition Applications

Speech Recognition Applications
Author: Speaking Solutions
Publsiher: CreateSpace
Total Pages: 114
Release: 2011-07-01
Genre: Education
ISBN: 1463730918

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Speech Recognition Applications: The Basics and Beyond provides step-by-step directions for getting started with speech recognition software. It also provides instruction in developing the basic speech recognition skills needed to dictate, correct, edit and format a variety of documents. Exercises are included for navigating the Internet by voice and creating e-mails; using Microsoft Word to create letters, reports, tables and macros; and using Microsoft Excel for creating spreadsheets. The unique design of this book offers a perfect training solution for students, teachers, and business professionals. It offers easy to follow lessons with step-by step directions and many screen shots and tips. The exercises will help you learn how to use speech recognition as a daily input device and will help you improve your overall speed and accuracy. Speech recognition technology has made numerous advancements over the past decade and has become easier to use and much more efficient. Speech recognition software is now being used by more and more individuals in a wide variety of industries and professional careers every day! Get a head start with this training manual today.

Speech Recognition

Speech Recognition
Author: Fouad Sabry
Publsiher: One Billion Knowledgeable
Total Pages: 149
Release: 2023-07-05
Genre: Computers
ISBN: PKEY:6610000476145

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What Is Speech Recognition Computer science and computational linguistics include a subfield called speech recognition that focuses on the development of approaches and technologies that enable computers to recognize spoken language and translate it into text. Speech recognition is an interdisciplinary subfield of computer science. It is also known as computer speech recognition (CSR) and speech to text (STT). Another name for it is automatic speech recognition (ASR). The domains of computer science, linguistics, and computer engineering are all represented in its incorporation of knowledge and study. Speech synthesis is the process of doing things backwards. How You Will Benefit (I) Insights, and validations about the following topics: Chapter 1: Speech recognition Chapter 2: Computational linguistics Chapter 3: Natural language processing Chapter 4: Speech processing Chapter 5: Pattern recognition Chapter 6: Language model Chapter 7: Deep learning Chapter 8: Recurrent neural network Chapter 9: Long short-term memory Chapter 10: Voice computing (II) Answering the public top questions about speech recognition. (III) Real world examples for the usage of speech recognition in many fields. (IV) 17 appendices to explain, briefly, 266 emerging technologies in each industry to have 360-degree full understanding of speech recognition' technologies. Who This Book Is For Professionals, undergraduate and graduate students, enthusiasts, hobbyists, and those who want to go beyond basic knowledge or information for any kind of speech recognition.

Robust Speech Recognition in Embedded Systems and PC Applications

Robust Speech Recognition in Embedded Systems and PC Applications
Author: Jean-Claude Junqua
Publsiher: Springer Science & Business Media
Total Pages: 178
Release: 2006-04-18
Genre: Technology & Engineering
ISBN: 9780306470271

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Robust Speech Recognition in Embedded Systems and PC Applications provides a link between the technology and the application worlds. As speech recognition technology is now good enough for a number of applications and the core technology is well established around hidden Markov models many of the differences between systems found in the field are related to implementation variants. We distinguish between embedded systems and PC-based applications. Embedded applications are usually cost sensitive and require very simple and optimized methods to be viable. Robust Speech Recognition in Embedded Systems and PC Applications reviews the problems of robust speech recognition, summarizes the current state of the art of robust speech recognition while providing some perspectives, and goes over the complementary technologies that are necessary to build an application, such as dialog and user interface technologies. Robust Speech Recognition in Embedded Systems and PC Applications is divided into five chapters. The first one reviews the main difficulties encountered in automatic speech recognition when the type of communication is unknown. The second chapter focuses on environment-independent/adaptive speech recognition approaches and on the mainstream methods applicable to noise robust speech recognition. The third chapter discusses several critical technologies that contribute to making an application usable. It also provides some design recommendations on how to design prompts, generate user feedback and develop speech user interfaces. The fourth chapter reviews several techniques that are particularly useful for embedded systems or to decrease computational complexity. It also presents some case studies for embedded applications and PC-based systems. Finally, the fifth chapter provides a future outlook for robust speech recognition, emphasizing the areas that the author sees as the most promising for the future. Robust Speech Recognition in Embedded Systems and PC Applications serves as a valuable reference and although not intended as a formal University textbook, contains some material that can be used for a course at the graduate or undergraduate level. It is a good complement for the book entitled Robustness in Automatic Speech Recognition: Fundamentals and Applications co-authored by the same author.

Automatic Speech and Speaker Recognition

Automatic Speech and Speaker Recognition
Author: Joseph Keshet,Samy Bengio
Publsiher: John Wiley & Sons
Total Pages: 268
Release: 2009-04-27
Genre: Technology & Engineering
ISBN: 0470742038

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This book discusses large margin and kernel methods for speech and speaker recognition Speech and Speaker Recognition: Large Margin and Kernel Methods is a collation of research in the recent advances in large margin and kernel methods, as applied to the field of speech and speaker recognition. It presents theoretical and practical foundations of these methods, from support vector machines to large margin methods for structured learning. It also provides examples of large margin based acoustic modelling for continuous speech recognizers, where the grounds for practical large margin sequence learning are set. Large margin methods for discriminative language modelling and text independent speaker verification are also addressed in this book. Key Features: Provides an up-to-date snapshot of the current state of research in this field Covers important aspects of extending the binary support vector machine to speech and speaker recognition applications Discusses large margin and kernel method algorithms for sequence prediction required for acoustic modeling Reviews past and present work on discriminative training of language models, and describes different large margin algorithms for the application of part-of-speech tagging Surveys recent work on the use of kernel approaches to text-independent speaker verification, and introduces the main concepts and algorithms Surveys recent work on kernel approaches to learning a similarity matrix from data This book will be of interest to researchers, practitioners, engineers, and scientists in speech processing and machine learning fields.

Speech Recognition Applications

Speech Recognition Applications
Author: Anonim
Publsiher: Unknown
Total Pages: 135
Release: 2010-10-15
Genre: Electronic Book
ISBN: 0983256209

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Automatic Speech Recognition

Automatic Speech Recognition
Author: Dong Yu,Li Deng
Publsiher: Springer
Total Pages: 321
Release: 2014-11-11
Genre: Technology & Engineering
ISBN: 9781447157793

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This book provides a comprehensive overview of the recent advancement in the field of automatic speech recognition with a focus on deep learning models including deep neural networks and many of their variants. This is the first automatic speech recognition book dedicated to the deep learning approach. In addition to the rigorous mathematical treatment of the subject, the book also presents insights and theoretical foundation of a series of highly successful deep learning models.