Regularization, Optimization, Kernels, and Support Vector Machines - Chapman & Hall / CRC Machine Learning & Pattern Recognition -  - 書籍 - Taylor & Francis Inc - 9781482241396 - 2014年10月23日
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Regularization, Optimization, Kernels, and Support Vector Machines - Chapman & Hall / CRC Machine Learning & Pattern Recognition 第1 版

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Regularization, Optimization, Kernels, and Support Vector Machines offers a snapshot of the current state of the art of large-scale machine learning, providing a single multidisciplinary source for the latest research and advances in regularization, sparsity, compressed sensing, convex and large-scale optimization, kernel methods, and support vector machines. Consisting of 21 chapters authored by leading researchers in machine learning, this comprehensive reference:

  • Covers the relationship between support vector machines (SVMs) and the Lasso
  • Discusses multi-layer SVMs
  • Explores nonparametric feature selection, basis pursuit methods, and robust compressive sensing
  • Describes graph-based regularization methods for single- and multi-task learning
  • Considers regularized methods for dictionary learning and portfolio selection
  • Addresses non-negative matrix factorization
  • Examines low-rank matrix and tensor-based models
  • Presents advanced kernel methods for batch and online machine learning, system identification, domain adaptation, and image processing
  • Tackles large-scale algorithms including conditional gradient methods, (non-convex) proximal techniques, and stochastic gradient descent

Regularization, Optimization, Kernels, and Support Vector Machines is ideal for researchers in machine learning, pattern recognition, data mining, signal processing, statistical learning, and related areas.


525 pages, 93 black & white illustrations, 32 black & white tables

メディア 書籍     Hardcover Book   (ハードカバー付きの本)
リリース済み 2014年10月23日
ISBN13 9781482241396
出版社 Taylor & Francis Inc
ページ数 526
寸法 159 × 241 × 32 mm   ·   896 g
言語 英語  
編集者 Argyriou, Andreas
編集者 Signoretto, Marco
編集者 Suykens, Johan A.K.