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Christopher M. Bishop

Pattern Recognition and Machine Learning

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The dramatic growth in practical applications for machine learning over the last ten years has been accompanied by many important developments in the underlying algorithms and techniques. For example, Bayesian methods have grown from a specialist niche to become mainstream, while graphical models have emerged as a general framework for describing and applying probabilistic techniques. The practical applicability of Bayesian methods has been greatly enhanced by the development of a range of approximate inference algorithms such as variational Bayes and expectation propagation, while new models based on kernels have had a significant impact on… Mehr

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Produktdetails


  • ISBN: 978-0-387-31073-2
  • EAN: 9780387310732
  • Produktnummer: 2271429
  • Verlag: Springer Nature EN
  • Sprache: Englisch
  • Erscheinungsjahr: 2006
  • Seitenangabe: 738 S.
  • Masse: H26.1 cm x B18.7 cm x D3.8 cm 1'739 g
  • Auflage: Corr. at 8th printig 2009
  • Gewicht: 1739
  • Sonstiges: Professional & Vocational

Über den Autor


?Chris Bishop is a Microsoft Distinguished Scientist and the Laboratory Director at Microsoft Research Cambridge. He is also Professor of Computer Science at the University of Edinburgh, and a Fellow of Darwin College, Cambridge. In 2004, he was elected Fellow of the Royal Academy of Engineering, and in 2007 he was elected Fellow of the Royal Society of Edinburgh. Chris obtained a BA in Physics from Oxford, and a PhD in Theoretical Physics from the University of Edinburgh, with a thesis on quantum field theory. He then joined Culham Laboratory where he worked on the theory of magnetically confined plasmas as part of the European controlled fusion programme.   

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