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Privacy-Preserving Machine Learning for Speech Processing

AUTHOR Pathak, Manas A.
PUBLISHER Springer (10/25/2012)
PRODUCT TYPE Hardcover (Hardcover)

Description
This thesis discusses the privacy issues in speech-based applications such as biometric authentication, surveillance, and external speech processing services. Author Manas A. Pathak presents solutions for privacy-preserving speech processing applications such as speaker verification, speaker identification and speech recognition. The author also introduces some of the tools from cryptography and machine learning and current techniques for improving the efficiency and scalability of the presented solutions. Experiments with prototype implementations of the solutions for execution time and accuracy on standardized speech datasets are also included in the text. Using the framework proposed may now make it possible for a surveillance agency to listen for a known terrorist without being able to hear conversation from non-targeted, innocent civilians.
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Product Format
Product Details
ISBN-13: 9781461446385
ISBN-10: 1461446384
Binding: Hardback or Cased Book (Sewn)
Content Language: English
More Product Details
Page Count: 142
Carton Quantity: 38
Product Dimensions: 6.20 x 0.60 x 9.20 inches
Weight: 0.80 pound(s)
Feature Codes: Bibliography, Illustrated
Country of Origin: NL
Subject Information
BISAC Categories
Technology & Engineering | Electronics - General
Technology & Engineering | Information Theory
Technology & Engineering | Telecommunications
Dewey Decimal: 006.454
Library of Congress Control Number: 2012949704
Descriptions, Reviews, Etc.
jacket back
This thesis discusses the privacy issues in speech-based applications, including biometric authentication, surveillance, and external speech processing services. Manas A. Pathak presents solutions for privacy-preserving speech processing applications such as speaker verification, speaker identification, and speech recognition.

The thesis introduces tools from cryptography and machine learning and current techniques for improving the efficiency and scalability of the presented solutions, as well as experiments with prototype implementations of the solutions for execution time and accuracy on standardized speech datasets. Using the framework proposed may make it possible for a surveillance agency to listen for a known terrorist, without being able to hear conversation from non-targeted, innocent civilians.

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publisher marketing
This thesis discusses the privacy issues in speech-based applications such as biometric authentication, surveillance, and external speech processing services. Author Manas A. Pathak presents solutions for privacy-preserving speech processing applications such as speaker verification, speaker identification and speech recognition. The author also introduces some of the tools from cryptography and machine learning and current techniques for improving the efficiency and scalability of the presented solutions. Experiments with prototype implementations of the solutions for execution time and accuracy on standardized speech datasets are also included in the text. Using the framework proposed may now make it possible for a surveillance agency to listen for a known terrorist without being able to hear conversation from non-targeted, innocent civilians.
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Your Price  $108.89
Hardcover