Isbn: 9781108843607 - Machine Learning: a First Course for Engineers and Scientists (33 results)

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  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

    • Hardcover

    Seller: Marlton Books, Bridgeton, NJ, U.S.A.Marlton Books

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    Condition: Acceptable. Readable, but has significant damage / tears. Has a remainder mark. hardcover Used - Acceptable 2022.

  • Language: English

    Published by Cambridge University Press (edition New), 2022

    1108843603 / 9781108843607

    • Hardcover

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    Hardcover. Condition: Very Good. New. 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.

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

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    hardcover. Condition: Good. New. 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).

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

    • Hardcover

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    hardcover. Condition: Very Good. Cover and edges may have some wear.

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

    • Hardcover

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    Condition: 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.

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

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  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

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    hardcover. Condition: New. New. Ships in a BOX from Central Missouri! UPS shipping for most packages, (Priority Mail for AK/HI/APO/PO Boxes).

  • Language: English

    Published by Cambridge University Press 2022-03-31, 2022

    1108843603 / 9781108843607

    • Hardcover

    Seller: Chiron Media, Wallingford, United KingdomChiron Media

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    Hardcover. Condition: New. Brand new book, sourced directly from publisher. Dispatch time is 9-10 days from our warehouse. Book will be sent in robust, secure packaging to ensure it reaches you securely.

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

    • Hardcover
    • First Edition

    Seller: Prior Books Ltd, Cheltenham, United KingdomPrior Books Ltd

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    Hardcover. Condition: Like New. First Edition. Hardback book in nearly new condition: firm and square with strong joints. Just a few hardly noticeable rubs or very mild bumps. Hence a non-text page shows a small 'damaged' stamp. Despite such this book looks and feels unread. Thus the contents are crisp, fresh and tight. And so a very nice book in great condition, now offered for sale at a reasonable price.

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

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  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

    • Hardcover

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    Condition: 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.

  • Language: English

    Published by Cambridge University Pr., 2022

    1108843603 / 9781108843607

    • Hardcover

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    HRD. Condition: New. New Book. Shipped from UK. Established seller since 2000.

  • Language: English

    Published by Cambridge University Pr., 2022

    1108843603 / 9781108843607

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  • Language: English

    Published by Cambridge University Press, 2022

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  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

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  • Language: English

    Published by Cambridge University Press, 2022

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    Condition: New. In English.

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

    • Hardcover

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  • Language: English

    Published by Cambridge University Pr. Mär 2022, 2022

    1108843603 / 9781108843607

    • Hardcover

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    Buch. Condition: Neu. Neuware -This book introduces machine learning for readers with some background in basic linear algebra, statistics, probability, and programming. In a coherent statistical framework it covers a selection of supervised machine learning methods, from the most fundamental (k-NN, decision trees, linear and logistic regression) to more advanced methods (deep neural networks, support vector machines, Gaussian processes, random forests and boosting), plus commonly-used unsupervised methods (generative modeling, k-means, PCA, autoencoders and generative adversarial networks). Careful explanations and pseudo-code are presented for all methods. The authors maintain a focus on the fundamentals by drawing connections between methods and discussing general concepts such as loss functions, maximum likelihood, the bias-variance decomposition, ensemble averaging, kernels and the Bayesian approach along with generally useful tools such as regularization, cross validation, evaluation metrics and optimization methods. The final chapters offer practical advice for solving real-world supervised machine learning problems and on ethical aspects of modern machine learning. Englisch.

  • Language: English

    Published by Cambridge University Pr. Mär 2022, 2022

    1108843603 / 9781108843607

    • Hardcover

    Seller: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, GermanyBuchWeltWeit Ludwig Meier e.K.

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    Buch. Condition: Neu. Neuware -This book introduces machine learning for readers with some background in basic linear algebra, statistics, probability, and programming. In a coherent statistical framework it covers a selection of supervised machine learning methods, from the most fundamental (k-NN, decision trees, linear and logistic regression) to more advanced methods (deep neural networks, support vector machines, Gaussian processes, random forests and boosting), plus commonly-used unsupervised methods (generative modeling, k-means, PCA, autoencoders and generative adversarial networks). Careful explanations and pseudo-code are presented for all methods. The authors maintain a focus on the fundamentals by drawing connections between methods and discussing general concepts such as loss functions, maximum likelihood, the bias-variance decomposition, ensemble averaging, kernels and the Bayesian approach along with generally useful tools such as regularization, cross validation, evaluation metrics and optimization methods. The final chapters offer practical advice for solving real-world supervised machine learning problems and on ethical aspects of modern machine learning. Englisch.

  • Language: English

    Published by Cambridge University Pr. Mär 2022, 2022

    1108843603 / 9781108843607

    • Hardcover

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    Buch. Condition: Neu. Neuware -This book introduces machine learning for readers with some background in basic linear algebra, statistics, probability, and programming. In a coherent statistical framework it covers a selection of supervised machine learning methods, from the most fundamental (k-NN, decision trees, linear and logistic regression) to more advanced methods (deep neural networks, support vector machines, Gaussian processes, random forests and boosting), plus commonly-used unsupervised methods (generative modeling, k-means, PCA, autoencoders and generative adversarial networks). Careful explanations and pseudo-code are presented for all methods. The authors maintain a focus on the fundamentals by drawing connections between methods and discussing general concepts such as loss functions, maximum likelihood, the bias-variance decomposition, ensemble averaging, kernels and the Bayesian approach along with generally useful tools such as regularization, cross validation, evaluation metrics and optimization methods. The final chapters offer practical advice for solving real-world supervised machine learning problems and on ethical aspects of modern machine learning.

  • Language: English

    Published by Cambridge University Press, 2022

    1108843603 / 9781108843607

    • Hardcover

    Seller: Kennys Bookshop and Art Galleries Ltd., Galway, GY, IrelandKennys Bookshop and Art Galleries Ltd.

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    Condition: New. 2022. New. Hardcover. . . . . .

  • Language: English

    Published by Cambridge University Pr., 2022

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    Gebunden. Condition: New. This coherent introduction to machine learning for readers with a background in basic linear algebra, statistics, probability, and programming is suitable for advanced BSc or MSc courses. It covers theory and practice of basic and advanced methods such as d.

  • Language: English

    Published by Cambridge University Press CUP, 2022

    1108843603 / 9781108843607

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    Condition: New. pp. 350 New edition niversity Press.

  • Language: English

    Published by Cambridge University Press, 2022

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    Condition: New. pp. 350.

  • Language: English

    Published by Cambridge University Press, 2022

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  • Language: English

    Published by Cambridge Univ Pr, 2022

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    Hardcover. Condition: Brand New. 325 pages. 10.20x7.20x0.80 inches. In Stock.

  • Language: English

    Published by Cambridge University Pr., 2022

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    Buch. Condition: Neu. Machine Learning | A First Course for Engineers and Scientists | Andreas Lindholm (u. a.) | Buch | Gebunden | Englisch | 2022 | Cambridge University Pr. | EAN 9781108843607 | Verantwortliche Person für die EU: Libri GmbH, Europaallee 1, 36244 Bad Hersfeld, gpsr[at]libri[dot]de | Anbieter: preigu.

  • Language: English

    Published by Cambridge University Pr. Mär 2022, 2022

    1108843603 / 9781108843607

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    Buch. Condition: Neu. Neuware - This book introduces machine learning for readers with some background in basic linear algebra, statistics, probability, and programming. In a coherent statistical framework it covers a selection of supervised machine learning methods, from the most fundamental (k-NN, decision trees, linear and logistic regression) to more advanced methods (deep neural networks, support vector machines, Gaussian processes, random forests and boosting), plus commonly-used unsupervised methods (generative modeling, k-means, PCA, autoencoders and generative adversarial networks). Careful explanations and pseudo-code are presented for all methods. The authors maintain a focus on the fundamentals by drawing connections between methods and discussing general concepts such as loss functions, maximum likelihood, the bias-variance decomposition, ensemble averaging, kernels and the Bayesian approach along with generally useful tools such as regularization, cross validation, evaluation metrics and optimization methods. The final chapters offer practical advice for solving real-world supervised machine learning problems and on ethical aspects of modern machine learning.

  • Language: English

    Published by Cambridge University Pr. Mär 2022, 2022

    1108843603 / 9781108843607

    • Hardcover

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    Buch. Condition: Neu. Neuware -This book introduces machine learning for readers with some background in basic linear algebra, statistics, probability, and programming. In a coherent statistical framework it covers a selection of supervised machine learning methods, from the most fundamental (k-NN, decision trees, linear and logistic regression) to more advanced methods (deep neural networks, support vector machines, Gaussian processes, random forests and boosting), plus commonly-used unsupervised methods (generative modeling, k-means, PCA, autoencoders and generative adversarial networks). Careful explanations and pseudo-code are presented for all methods. The authors maintain a focus on the fundamentals by drawing connections between methods and discussing general concepts such as loss functions, maximum likelihood, the bias-variance decomposition, ensemble averaging, kernels and the Bayesian approach along with generally useful tools such as regularization, cross validation, evaluation metrics and optimization methods. The final chapters offer practical advice for solving real-world supervised machine learning problems and on ethical aspects of modern machine learning.Libri GmbH, Europaallee 1, 36244 Bad Hersfeld Englisch.

  • Language: English

    Published by Cambridge University Pr. Mär 2022, 2022

    1108843603 / 9781108843607

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    Buch. Condition: Neu. Neuware -This book introduces machine learning for readers with some background in basic linear algebra, statistics, probability, and programming. In a coherent statistical framework it covers a selection of supervised machine learning methods, from the most fundamental (k-NN, decision trees, linear and logistic regression) to more advanced methods (deep neural networks, support vector machines, Gaussian processes, random forests and boosting), plus commonly-used unsupervised methods (generative modeling, k-means, PCA, autoencoders and generative adversarial networks). Careful explanations and pseudo-code are presented for all methods. The authors maintain a focus on the fundamentals by drawing connections between methods and discussing general concepts such as loss functions, maximum likelihood, the bias-variance decomposition, ensemble averaging, kernels and the Bayesian approach along with generally useful tools such as regularization, cross validation, evaluation metrics and optimization methods. The final chapters offer practical advice for solving real-world supervised machine learning problems and on ethical aspects of modern machine learning. Englisch.