Dimensionality Reduction (Chapman & Hall/CRC Computer Science & Data Analysis)

by Miguel A. Carreira-Perpinan

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Dimensionality reduction (DR) refers to the problem of projecting high-dimensional data onto a low-dimensional manifold so that relevant information is preserved. DR arises in many application areas where direct processing of the data is too costly. Through a machine-learning perspective that focuses on algorithms rather than theory, Dimensionality Reduction provides an overview of methods for DR including real-world applications taken from areas such as speech processing and computer vision. Interest in this area has exploded in recent years, making it a growing field of research. This book serves as the first reference for interested graduate students and researchers.
  • ISBN10 1420011537
  • ISBN13 9781420011531
  • Publish Date 15 February 2010
  • Publish Status Cancelled
  • Publish Country GB
  • Publisher Taylor & Francis Ltd
  • Imprint Chapman & Hall/CRC
  • Format eBook
  • Pages 320
  • Language English