Pattern recognition : from classical to modern approaches

Author(s)

Bibliographic Information

Pattern recognition : from classical to modern approaches

editors, Sankar K. Pal, Amita Pal

World Scientific, c2001

Available at  / 8 libraries

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Note

Includes bibliographical references and index

Description and Table of Contents

Description

This volume, containing contributions by experts from all over the world, is a collection of 21 articles which present review and research material describing the evolution and recent developments of various pattern recognition methodologies, ranging from statistical, syntactic/linguistic, fuzzy-set-theoretic, neural, genetic-algorithmic and rough-set-theoretic to hybrid soft computing, with significant real-life applications. In addition, the book describes efficient soft machine learning algorithms for data mining and knowledge discovery. With a balanced mixture of theory, algorithms and applications, as well as up-to-date information and an extensive bibliography, Pattern Recognition: From Classical to Modern Approaches is a very useful resource.

Table of Contents

  • Pattern recognition - evolution of methodologies and data mining, A. Pal and S.K. Pal
  • adaptive stochastic algorithms for pattern classification, M.A.L. Thathachar and P.S. Sastry
  • shape in images, K.V. Mardia
  • decision trees for classification - a review and some new results, R. Kothari and M. Dong
  • syntactic pattern recognition, A.K. Majumder and A.K. Ray
  • fuzzy sets as a logic canvas for pattern recognition, W. Pedrycz and N. Pizzi
  • neural network based pattern recognition, V. David Sanchez
  • networks of spiking neurons in data mining, K. Cios and D.M. Sala
  • genetic algorithms, pattern classification and neural networks design, S. Bandyopadhyay et al
  • rough sets in pattern recognition, A. Skowron and R. Swiniarski
  • automated generation of qualitative representations of complex objects by hybrid soft-computing methods, E.H. Ruspini and I.S. Zwir)
  • writing speed and writing sequence invariant on-line handwriting recognition, S-H Cha and S.N. Srihari
  • tongue diagnosis based on biometric pattern recognition technology, K. Wang et al
  • and other papers.

by "Nielsen BookData"

Details

  • NCID
    BA58418692
  • ISBN
    • 9810246846
  • Country Code
    si
  • Title Language Code
    eng
  • Text Language Code
    eng
  • Place of Publication
    Singapore
  • Pages/Volumes
    xxii, 612 p.
  • Size
    23 cm
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