Bültmann & Gerriets
Noise Reduction in Speech Processing
von Jacob Benesty, Israel Cohen, Yiteng Huang, Jingdong Chen
Verlag: Springer Berlin Heidelberg
Reihe: Springer Topics in Signal Processing Nr. 2
Gebundene Ausgabe
ISBN: 978-3-642-00295-3
Auflage: 2009
Erschienen am 14.05.2009
Sprache: Englisch
Format: 241 mm [H] x 160 mm [B] x 20 mm [T]
Gewicht: 574 Gramm
Umfang: 240 Seiten

Preis: 106,99 €
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Klappentext
Inhaltsverzeichnis

Noise is everywhere and in most applications that are related to audio and speech, such as human-machine interfaces, hands-free communications, voice over IP (VoIP), hearing aids, teleconferencing/telepresence/telecollaboration systems, and so many others, the signal of interest (usually speech) that is picked up by a microphone is generally contaminated by noise. As a result, the microphone signal has to be cleaned up with digital signal processing tools before it is stored, analyzed, transmitted, or played out. This cleaning process is often called noise reduction and this topic has attracted a considerable amount of research and engineering attention for several decades. One of the objectives of this book is to present in a common framework an overview of the state of the art of noise reduction algorithms in the single-channel (one microphone) case. The focus is on the most useful approaches, i.e., filtering techniques (in different domains) and spectral enhancement methods. The other objective of Noise Reduction in Speech Processing is to derive all these well-known techniques in a rigorous way and prove many fundamental and intuitive results often taken for granted. This book is especially written for graduate students and research engineers who work on noise reduction for speech and audio applications and want to understand the subtle mechanisms behind each approach. Many new and interesting concepts are presented in this text that we hope the readers will find useful and inspiring.



Problem Formulation.- Mean-Squared Error Criterion.- Pearson Correlation Coefficient.- Fundamental Properties.- Optimal Filters in the Time Domain.- Optimal Filters in the Frequency Domain.- Optimal Filters in the KLE Domain.- Optimal Filters in the Transform Domain.- Spectral Enhancement Methods.- A Practical Example: Multichannel Noise Reduction for Voice Communication in Spacesuits.


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