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Incorporating Knowledge Sources Into Statistical Speech Recognition - (Lecture Notes in Electrical Engineering) (Hardcover)

Incorporating Knowledge Sources Into Statistical Speech Recognition - (Lecture Notes in Electrical Engineering) (Hardcover) - 1 of 1
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Highlights

  • Incorporating Knowledge Sources into Statistical Speech Recognition addresses the problem of developing efficient automatic speech recognition (ASR) systems, which maintain a balance between utilizing a wide knowledge of speech variability, while keeping the training / recognition effort feasible and improving speech recognition performance.
  • Author(s): Sakriani Sakti & Konstantin Markov & Satoshi Nakamura & Wolfgang Minker
  • 196 Pages
  • Science, Acoustics & Sound
  • Series Name: Lecture Notes in Electrical Engineering

Description



About the Book



The authors address the problem of developing efficient automatic speech recognition systems that maintain a balance between utilizing a wide knowledge of speech variability, while keeping the training manageable and improving speech recognition performance.



Book Synopsis



Incorporating Knowledge Sources into Statistical Speech Recognition addresses the problem of developing efficient automatic speech recognition (ASR) systems, which maintain a balance between utilizing a wide knowledge of speech variability, while keeping the training / recognition effort feasible and improving speech recognition performance. The book provides an efficient general framework to incorporate additional knowledge sources into state-of-the-art statistical ASR systems. It can be applied to many existing ASR problems with their respective model-based likelihood functions in flexible ways.



From the Back Cover



Incorporating Knowledge Sources into Statistical Speech Recognition offers solutions for enhancing the robustness of a statistical automatic speech recognition (ASR) system by incorporating various additional knowledge sources while keeping the training and recognition effort feasible.

The authors provide an efficient general framework for incorporating knowledge sources into state-of-the-art statistical ASR systems. This framework, which is called GFIKS (graphical framework to incorporate additional knowledge sources), was designed by utilizing the concept of the Bayesian network (BN) framework. This framework allows probabilistic relationships among different information sources to be learned, various kinds of knowledge sources to be incorporated, and a probabilistic function of the model to be formulated.

Incorporating Knowledge Sources into Statistical Speech Recognition demonstrates how the statistical speech recognition system may incorporate additional information sources by utilizing GFIKS at different levels of ASR. The incorporation of various knowledge sources, including background noises, accent, gender and wide phonetic knowledge information, in modeling is discussed theoretically and analyzed experimentally.

Dimensions (Overall): 9.3 Inches (H) x 6.3 Inches (W) x .6 Inches (D)
Weight: .95 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 196
Genre: Science
Sub-Genre: Acoustics & Sound
Series Title: Lecture Notes in Electrical Engineering
Publisher: Springer
Format: Hardcover
Author: Sakriani Sakti & Konstantin Markov & Satoshi Nakamura & Wolfgang Minker
Language: English
Street Date: March 19, 2009
TCIN: 1005679697
UPC: 9780387858296
Item Number (DPCI): 247-18-4701
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 0.6 inches length x 6.3 inches width x 9.3 inches height
Estimated ship weight: 0.95 pounds
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