Isbn: 9780387310732 - pattern recognition and machine learning (41 risultati)

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  • Lingua: Inglese

    Editore: Springer (edition ), 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: Fair. The item might be beaten up but readable. May contain markings or highlighting, as well as stains, bent corners, or any other major defect, but the text is not obscured in any way.

  • Lingua: Inglese

    Editore: Springer (edition ), 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: Very Good. It's a well-cared-for item that has seen limited use. The item may show minor signs of wear. All the text is legible, with all pages included. It may have slight markings and/or highlighting.

  • Lingua: Inglese

    Editore: Springer (edition ), 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: Very Good. It's a well-cared-for item that has seen limited use. The item may show minor signs of wear. All the text is legible, with all pages included. It may have slight markings and/or highlighting.

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardback. Condizione: Very Good. The book has been read, but is in excellent condition. Pages are intact and not marred by notes or highlighting. The spine remains undamaged.

  • Lingua: Inglese

    Editore: -, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    hardcover. Condizione: Very Good. Pattern Recognition and Machine Learning (Information Science and Statistics) This book is in very good condition and will be shipped within 24 hours of ordering. The cover may have some limited signs of wear but the pages are clean, intact and the spine remains undamaged. This book has clearly been well maintained and looked after thus far. Money back guarantee if you are not satisfied. See all our books here, order more than 1 book and get discounted shipping.…

  • Lingua: Inglese

    Editore: Springer New York, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Da: Better World Books Ltd, Dunfermline, Regno UnitoBetter World Books Ltd

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    Condizione: Good. Pages intact with minimal writing/highlighting. The binding may be loose and creased. Dust jackets/supplements are not included. Stock photo provided. Product includes identifying sticker. Better World Books: Buy Books. Do Good.

  • Lingua: Inglese

    Editore: Springer 01/02/2007, 2007

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: Very Good. Shipped within 24 hours from our UK warehouse. Clean, undamaged book with no damage to pages and minimal wear to the cover. Spine still tight, in very good condition. Remember if you are not happy, you are covered by our 100% money back guarantee.

  • Lingua: Inglese

    Editore: Springer New York, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Da: Better World Books, Mishawaka, IN, U.S.A.Better World Books

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    Condizione: Good. Pages intact with minimal writing/highlighting. The binding may be loose and creased. Dust jackets/supplements are not included. Stock photo provided. Product includes identifying sticker. Better World Books: Buy Books. Do Good.

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: Acceptable. Connecting readers with great books since 1972. Used textbooks may not include companion materials such as access codes, etc. May have condition issues including wear and notes/highlighting. We ship orders daily and Customer Service is our top priority.

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    HARDCOVER. Condizione: Near Fine. 7th printing. Large octavo, 738pp, tight binding, clean throughout, clean and glossy boards, faint corner wear, Near Fine.

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Da: Textbooks_Source, Columbia, MO, U.S.A.Textbooks_Source

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    hardcover. Condizione: Good. Ships in a BOX from Central Missouri! May not include working access code. Will not include dust jacket. Has used sticker(s) and some writing or highlighting. UPS shipping for most packages, (Priority Mail for AK/HI/APO/PO Boxes).

  • Lingua: Inglese

    Editore: Springer-Verlag New York Inc., 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Da: World of Books (was SecondSale), Montgomery, IL, U.S.A.World of Books (was SecondSale)

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    Hardback. Condizione: Very Good. Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. However, these activities can be viewed as two facets of the same field, and together they have undergone substantial development over the past ten years. In particular, 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 models. Also, the practical applicability of Bayesian methods has been greatly enhanced through the development of a range of approximate inference algorithms such as variational Bayes and expectation pro- gation. Similarly, new models based on kernels have had significant impact on both algorithms and applications. This new textbook reacts these recent developments while providing a comprehensive introduction to the fields of pattern recognition and machine learning. It is aimed at advanced undergraduates or first year PhD students, as wellas researchers and practitioners, and assumes no previous knowledge of pattern recognition or - chine learning concepts. Knowledge of multivariate calculus and basic linear algebra is required, and some familiarity with probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory.…

  • Lingua: Inglese

    Editore: Springer-Verlag New York Inc., 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardback. Condizione: Good. Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. However, these activities can be viewed as two facets of the same field, and together they have undergone substantial development over the past ten years. In particular, 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 models. Also, the practical applicability of Bayesian methods has been greatly enhanced through the development of a range of approximate inference algorithms such as variational Bayes and expectation pro- gation. Similarly, new models based on kernels have had significant impact on both algorithms and applications. This new textbook reacts these recent developments while providing a comprehensive introduction to the fields of pattern recognition and machine learning. It is aimed at advanced undergraduates or first year PhD students, as wellas researchers and practitioners, and assumes no previous knowledge of pattern recognition or - chine learning concepts. Knowledge of multivariate calculus and basic linear algebra is required, and some familiarity with probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory.…

  • Lingua: Inglese

    Editore: Springer-Verlag New York Inc., 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardback. Condizione: Fair. Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. However, these activities can be viewed as two facets of the same field, and together they have undergone substantial development over the past ten years. In particular, 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 models. Also, the practical applicability of Bayesian methods has been greatly enhanced through the development of a range of approximate inference algorithms such as variational Bayes and expectation pro- gation. Similarly, new models based on kernels have had significant impact on both algorithms and applications. This new textbook reacts these recent developments while providing a comprehensive introduction to the fields of pattern recognition and machine learning. It is aimed at advanced undergraduates or first year PhD students, as wellas researchers and practitioners, and assumes no previous knowledge of pattern recognition or - chine learning concepts. Knowledge of multivariate calculus and basic linear algebra is required, and some familiarity with probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory.…

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    hardcover. Condizione: Very Good. Connecting readers with great books since 1972! Used books may not include companion materials, and may have some shelf wear or limited writing. We ship orders daily and Customer Service is our top priority.

  • Lingua: Inglese

    Editore: Springer-Verlag New York Inc., 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardback. Condizione: Fair. Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. However, these activities can be viewed as two facets of the same field, and together they have undergone substantial development over the past ten years. In particular, 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 models. Also, the practical applicability of Bayesian methods has been greatly enhanced through the development of a range of approximate inference algorithms such as variational Bayes and expectation pro- gation. Similarly, new models based on kernels have had significant impact on both algorithms and applications. This new textbook reacts these recent developments while providing a comprehensive introduction to the fields of pattern recognition and machine learning. It is aimed at advanced undergraduates or first year PhD students, as wellas researchers and practitioners, and assumes no previous knowledge of pattern recognition or - chine learning concepts. Knowledge of multivariate calculus and basic linear algebra is required, and some familiarity with probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory.…

  • Lingua: Inglese

    Editore: Springer-Verlag New York Inc., 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Da: World of Books Inc, Montgomery, IL, U.S.A.World of Books Inc

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    Hardback. Condizione: Good. Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. However, these activities can be viewed as two facets of the same field, and together they have undergone substantial development over the past ten years. In particular, 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 models. Also, the practical applicability of Bayesian methods has been greatly enhanced through the development of a range of approximate inference algorithms such as variational Bayes and expectation pro- gation. Similarly, new models based on kernels have had significant impact on both algorithms and applications. This new textbook reacts these recent developments while providing a comprehensive introduction to the fields of pattern recognition and machine learning. It is aimed at advanced undergraduates or first year PhD students, as wellas researchers and practitioners, and assumes no previous knowledge of pattern recognition or - chine learning concepts. Knowledge of multivariate calculus and basic linear algebra is required, and some familiarity with probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory.…

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    hardcover. Condizione: New. Ships in a BOX from Central Missouri! Ships same or next business day.�UPS shipping for most packages, (Priority Mail for AK/HI/APO/PO Boxes).

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Condizione: As New. Unread book in perfect condition.

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Condizione: good. Befriedigend/Good: Durchschnittlich erhaltenes Buch bzw. Schutzumschlag mit Gebrauchsspuren, aber vollständigen Seiten. / Describes the average WORN book or dust jacket that has all the pages present.

  • Lingua: Inglese

    Editore: Springer, India, 2013

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Da: Feldman's Books, Menlo Park, CA, U.S.A.Feldman's Books

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    Paper Bound. Condizione: Near Fine. No markings.

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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  • Lingua: Inglese

    Editore: Springer August 2006, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: Like New. No Jacket. As new, tight and square, no writing, sharp.

  • Lingua: Inglese

    Editore: Springer-Verlag New York Inc., New York, NY, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: new. Hardcover. Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. However, these activities can be viewed as two facets of the same field, and together they have undergone substantial development over the past ten years. In particular, 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 models. Also, the practical applicability of Bayesian methods has been greatly enhanced through the development of a range of approximate inference algorithms such as variational Bayes and expectation pro- gation. Similarly, new models based on kernels have had significant impact on both algorithms and applications. This new textbook reacts these recent developments while providing a comprehensive introduction to the fields of pattern recognition and machine learning. It is aimed at advanced undergraduates or first year PhD students, as wellas researchers and practitioners, and assumes no previous knowledge of pattern recognition or - chine learning concepts. Knowledge of multivariate calculus and basic linear algebra is required, and some familiarity with probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory. Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. In particular, 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 models. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. …

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Hardcover. Condizione: new. New Copy. Customer Service Guaranteed.

  • Lingua: Inglese

    Editore: Springer, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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  • Lingua: Inglese

    Editore: Springer, 2006

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    Serie: Libro 1 di 1 - Information science and statistics

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  • Lingua: Inglese

    Editore: Springer-Verlag New York Inc. Aug 2006, 2006

    0387310738 / 9780387310732

    Serie: Libro 1 di 1 - Information science and statistics

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    Da: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, GermaniaBuchWeltWeit Ludwig Meier e.K.

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    Buch. Condizione: Neu. Neuware -Pattern recognition has its origins in engineering, whereas machine learning grew out of computer science. However, these activities can be viewed as two facets of the same field, and together they have undergone substantial development over the past ten years. In particular, 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 models. Also, the practical applicability of Bayesian methods has been greatly enhanced through the development of a range of approximate inference algorithms such as variational Bayes and expectation pro- gation. Similarly, new models based on kernels have had significant impact on both algorithms and applications. This new textbook reacts these recent developments while providing a comprehensive introduction to the fields of pattern recognition and machine learning. It is aimed at advanced undergraduates or first year PhD students, as wellas researchers and practitioners, and assumes no previous knowledge of pattern recognition or - chine learning concepts. Knowledge of multivariate calculus and basic linear algebra is required, and some familiarity with probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory. 778 pp. Englisch.…