Markov Models for Pattern Recognition: From Theory to Applications / Edition 2

Markov Models for Pattern Recognition: From Theory to Applications / Edition 2

by Gernot A. Fink
ISBN-10:
1447171330
ISBN-13:
9781447171331
Pub. Date:
03/14/2014
Publisher:
Springer London
ISBN-10:
1447171330
ISBN-13:
9781447171331
Pub. Date:
03/14/2014
Publisher:
Springer London
Markov Models for Pattern Recognition: From Theory to Applications / Edition 2

Markov Models for Pattern Recognition: From Theory to Applications / Edition 2

by Gernot A. Fink
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Overview

This thoroughly revised and expanded new edition now includes a more detailed treatment of the EM algorithm, a description of an efficient approximate Viterbi-training procedure, a theoretical derivation of the perplexity measure and coverage of multi-pass decoding based on n-best search. Supporting the discussion of the theoretical foundations of Markov modeling, special emphasis is also placed on practical algorithmic solutions. Features: introduces the formal framework for Markov models; covers the robust handling of probability quantities; presents methods for the configuration of hidden Markov models for specific application areas; describes important methods for efficient processing of Markov models, and the adaptation of the models to different tasks; examines algorithms for searching within the complex solution spaces that result from the joint application of Markov chain and hidden Markov models; reviews key applications of Markov models.

Product Details

ISBN-13: 9781447171331
Publisher: Springer London
Publication date: 03/14/2014
Series: Advances in Computer Vision and Pattern Recognition
Edition description: Softcover reprint of the original 2nd ed. 2014
Pages: 276
Product dimensions: 6.10(w) x 9.25(h) x 0.02(d)

About the Author

Prof. Dr.-Ing. Gernot A. Fink is Head of the Pattern Recognition Research Group at TU Dortmund University, Dortmund, Germany. His other publications include the Springer title Markov Models for Handwriting Recognition.

Table of Contents

Introduction.- Application Areas.- Part I: Theory.- Foundations of Mathematical Statistics.- Vector Quantization and Mixture Estimation.- Hidden Markov Models.- N-Gram Models.- Part II: Practice.- Computations with Probabilities.- Configuration of Hidden Markov Models.- Robust Parameter Estimation.- Efficient Model Evaluation.- Model Adaptation.- Integrated Search Methods.- Part III: Systems.- Speech Recognition.- Handwriting Recognition.- Analysis of Biological Sequences.

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