Isbn: 9783319644097 - probability and statistics for computer science (15 resultados)

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  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: GreatBookPrices, Columbia, MD, Estados Unidos de AmericaGreatBookPrices

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    Condición: good. May show signs of wear, highlighting, writing, and previous use. This item may be a former library book with typical markings. No guarantee on products that contain supplements Your satisfaction is 100% guaranteed. Twenty-five year bookseller with shipments to over fifty million happy customers.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Textbooks_Source, Columbia, MO, Estados Unidos de AmericaTextbooks_Source

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    EUR 46,52

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    hardcover. Condición: Good. 1st ed. 2018. 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).

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Books From California, Simi Valley, CA, Estados Unidos de AmericaBooks From California

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    Condición: Usado - Bueno

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    hardcover. Condición: Very Good.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Books From California, Simi Valley, CA, Estados Unidos de AmericaBooks From California

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    Condición: Usado - Excelente

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    hardcover. Condición: Fine.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Books From California, Simi Valley, CA, Estados Unidos de AmericaBooks From California

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    EUR 70,29

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    hardcover. Condición: Good. Cover boards are slightly bowing/bending. In otherwise great condition with minimal/no other wear, crisp & clean interiors showing unmarked text, and firm binding of the text block. A good reading copy.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: GreatBookPricesUK, Woodford Green, Reino UnidoGreatBookPricesUK

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    Condición: Usado - Aceptable

    EUR 78,44

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    Cantidad disponible: 5 disponibles

    Condición: good. May show signs of wear, highlighting, writing, and previous use. This item may be a former library book with typical markings. No guarantee on products that contain supplements Your satisfaction is 100% guaranteed. Twenty-five year bookseller with shipments to over fifty million happy customers.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Books Puddle, New York, NY, Estados Unidos de AmericaBooks Puddle

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    Condición: Nuevo

    EUR 99,00

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    Condición: New.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Buchpark, Trebbin, AlemaniaBuchpark

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    Condición: Usado - Excelente

    EUR 29,15

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    Condición: Sehr gut. Zustand: Sehr gut | Seiten: 392 | Sprache: Englisch | Produktart: Bücher | This textbook is aimed at computer science undergraduates late in sophomore or early in junior year, supplying a comprehensive background in qualitative and quantitative data analysis, probability, random variables, and statistical methods, including machine learning. With careful treatment of topics that fill the curricular needs for the course, Probability and Statistics for Computer Science features: ¿   A treatment of random variables and expectations dealing primarily with the discrete case. ¿   A practical treatment of simulation, showing how many interesting probabilities and expectations can be extracted, with particular emphasis on Markov chains. ¿   A clear but crisp account of simple point inference strategies (maximum likelihood; Bayesian inference) in simple contexts. This is extended to cover some confidence intervals, samples and populations for random sampling with replacement, and the simplest hypothesis testing. ¿   Achapter dealing with classification, explaining why it¿s useful; how to train SVM classifiers with stochastic gradient descent; and how to use implementations of more advanced methods such as random forests and nearest neighbors.¿   A chapter dealing with regression, explaining how to set up, use and understand linear regression and nearest neighbors regression in practical problems. ¿   A chapter dealing with principal components analysis, developing intuition carefully, and including numerous practical examples. There is a brief description of multivariate scaling via principal coordinate analysis. ¿   A chapter dealing with clustering via agglomerative methods and k-means, showing how to build vector quantized features for complex signals. Illustrated throughout, each main chapter includes many worked examples and other pedagogical elements such as boxed Procedures, Definitions, Useful Facts, and Remember This (short tips). Problems and Programming Exercises are at the end of each chapter, with a summary of what the reader should know.   Instructor resources include a full set of model solutions for all problems, and an Instructor's Manual with accompanying presentation slides.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Mispah books, Redhill, SURRE, Reino UnidoMispah books

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    Condición: Nuevo

    EUR 129,73

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    Hardcover. Condición: New. NEW. SHIPS FROM MULTIPLE LOCATIONS. book.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Brook Bookstore On Demand, Napoli, NA, ItaliaBrook Bookstore On Demand

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    Condición: Nuevo

    EUR 58,23

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    Condición: new. Questo è un articolo print on demand.

  • Idioma: Inglés

    Editorial: Springer International Publishing Feb 2018, 2018

    3319644092 / 9783319644097

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    Librería: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, AlemaniaBuchWeltWeit Ludwig Meier e.K.

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    Condición: Nuevo

    EUR 64,19

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    Buch. Condición: Neu. This item is printed on demand - it takes 3-4 days longer - Neuware -This textbook is aimed at computer science undergraduates late in sophomore or early in junior year, supplying a comprehensive background in qualitative and quantitative data analysis, probability, random variables, and statistical methods, including machine learning.With careful treatment of topics that fill the curricular needs for the course, Probability and Statistics for Computer Science features:- A treatment of random variables and expectations dealing primarily with the discrete case.- A practical treatment of simulation, showing how many interesting probabilities and expectations can be extracted, with particular emphasis on Markov chains.- A clear but crisp account of simple point inference strategies (maximum likelihood; Bayesian inference) in simple contexts. This is extended to cover some confidence intervals, samples and populations for random sampling with replacement, and the simplest hypothesis testing.- A chapter dealing with classification, explaining why it's useful; how to train SVM classifiers with stochastic gradient descent; and how to use implementations of more advanced methods such as random forests and nearest neighbors.- A chapter dealing with regression, explaining how to set up, use and understand linear regression and nearest neighbors regression in practical problems.- A chapter dealing with principal components analysis, developing intuition carefully, and including numerous practical examples. There is a brief description of multivariate scaling via principal coordinate analysis. - A chapter dealing with clustering via agglomerative methods and k-means, showing how to build vector quantized features for complex signals.Illustrated throughout, each main chapter includes many worked examples and other pedagogical elements such as boxed Procedures, Definitions, Useful Facts, and Remember This (short tips). Problems and Programming Exercises are at the end of each chapter, with a summary of what the reader should know. Instructor resources include a full set of model solutions for all problems, and an Instructor's Manual with accompanying presentation slides. 392 pp. Englisch.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Majestic Books, Hounslow, Reino UnidoMajestic Books

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    Condición: Nuevo

    EUR 95,66

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    Condición: New. Print on Demand.

  • Idioma: Inglés

    Editorial: Springer, 2018

    3319644092 / 9783319644097

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    Librería: Biblios, frankfurt am main, HESSE, AlemaniaBiblios

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    Condición: Nuevo

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    Condición: New. PRINT ON DEMAND.

  • Idioma: Inglés

    Editorial: Springer, Palgrave Macmillan Feb 2018, 2018

    3319644092 / 9783319644097

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    Librería: buchversandmimpf2000, Emtmannsberg, BAYE, Alemaniabuchversandmimpf2000

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    Condición: Nuevo

    EUR 69,54

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    Buch. Condición: Neu. This item is printed on demand - Print on Demand Titel. Neuware -This textbook is aimed at computer science undergraduates late in sophomore or early in junior year, supplying a comprehensivebackground in qualitative and quantitative data analysis, probability, random variables, and statistical methods, including machine learning.With careful treatment of topics that fill the curricular needs for the course, Probability and Statistics for Computer Sciencefeatures:¿ A treatment of random variables and expectations dealing primarily with the discrete case.¿ Apractical treatment of simulation, showing how many interesting probabilities and expectations can be extracted, with particular emphasis onMarkov chains.¿ A clear but crisp account of simple point inference strategies (maximum likelihood;Bayesian inference) in simple contexts. This is extended to cover some confidence intervals, samples and populations for random sampling with replacement, and the simplest hypothesis testing.¿ Achapter dealing with classification, explaining why it¿s useful; how to train SVM classifiers with stochastic gradient descent; and how to use implementations of more advanced methodssuch asrandom forests and nearest neighbors.¿ A chapter dealing with regression, explaining how to set up, use and understand linear regression and nearest neighbors regression in practical problems.¿ A chapter dealing with principal components analysis, developing intuition carefully, and including numerous practical examples. There is a brief description of multivariate scaling via principal coordinate analysis.¿ A chapter dealing with clustering via agglomerative methods and k-means, showing how to build vector quantized features for complex signals.Illustrated throughout, each main chapter includes many worked examples and other pedagogical elements such as boxed Procedures, Definitions, Useful Facts, and Remember This (short tips). Problems and Programming Exercises are at the end of each chapter, with a summary of what the reader should know.Instructor resources includea full set of model solutions forallproblems, and an Instructor's Manual with accompanying presentation slides.Springer-Verlag KG, Sachsenplatz 4-6, 1201 Wien 392 pp. Englisch.

  • Idioma: Inglés

    Editorial: Palgrave Macmillan, 2018

    3319644092 / 9783319644097

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    Librería: AHA-BUCH GmbH, Einbeck, AlemaniaAHA-BUCH GmbH

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    Condición: Nuevo

    EUR 102,63

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    Buch. Condición: Neu. nach der Bestellung gedruckt Neuware - Printed after ordering - This textbook is aimed at computer science undergraduates late in sophomore or early in junior year, supplying a comprehensive background in qualitative and quantitative data analysis, probability, random variables, and statistical methods, including machine learning.With careful treatment of topics that fill the curricular needs for the course, Probability and Statistics for Computer Science features:- A treatment of random variables and expectations dealing primarily with the discrete case.- A practical treatment of simulation, showing how many interesting probabilities and expectations can be extracted, with particular emphasis on Markov chains.- A clear but crisp account of simple point inference strategies (maximum likelihood; Bayesian inference) in simple contexts. This is extended to cover some confidence intervals, samples and populations for random sampling with replacement, and the simplest hypothesis testing.- Achapter dealing with classification, explaining why it's useful; how to train SVM classifiers with stochastic gradient descent; and how to use implementations of more advanced methods such as random forests and nearest neighbors.- A chapter dealing with regression, explaining how to set up, use and understand linear regression and nearest neighbors regression in practical problems.- A chapter dealing with principal components analysis, developing intuition carefully, and including numerous practical examples. There is a brief description of multivariate scaling via principal coordinate analysis. - A chapter dealing with clustering via agglomerative methods and k-means, showing how to build vector quantized features for complex signals.Illustrated throughout, each main chapter includes many worked examples and other pedagogical elements such as boxed Procedures, Definitions, Useful Facts, and Remember This (short tips). Problems and Programming Exercises are at the end of each chapter, with a summary of what the reader should know. Instructor resources include a full set of model solutions for all problems, and an Instructor's Manual with accompanying presentation slides.