Unsupervised Learning Algorithms - Grand Format

Edition en anglais

M. Emre Celebi

,

Kemal Aydin

Collectif

Note moyenne 
This book summarizes the state-of-the-art in unsupervised learning. The contributors discuss how with the proliferation of massive amounts of unlabeled... Lire la suite
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Résumé

This book summarizes the state-of-the-art in unsupervised learning. The contributors discuss how with the proliferation of massive amounts of unlabeled data, unsupervised learning algorithms, which can automatically discover interesting and useful patterns in such data, have gained popularity among researchers and practitioners. The authors outline how these algorithms have found numerous applications including pattern recognition, market basket analysis, web mining, social network analysis, information retrieval, recommender systems, market research, intrusion detection, and fraud detection.
They present how the difficulty of developing theoretically sound approaches that are amenable to objective evaluation have resulted in the proposal of numerous unsupervised learning algorithms over the past half-century. The intended audience includes researchers and practitioners who are increasingly using unsupervised learning algorithms to analyze their data. Topics of interest include anomaly detection, clustering, feature extraction, and applications of unsupervised learning.
Each chapter is contributed by a leading expert in the field.

Caractéristiques

  • Date de parution
    09/05/2016
  • Editeur
  • ISBN
    978-3-319-24209-5
  • EAN
    9783319242095
  • Format
    Grand Format
  • Présentation
    Relié
  • Nb. de pages
    558 pages
  • Poids
    1.002 Kg
  • Dimensions
    16,1 cm × 24,1 cm × 3,8 cm

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