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Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Published by Cambridge University Pr., 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Pr., 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Press, Cambridge, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Hardcover. Condition: new. Hardcover. Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational notebooks offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics. Master basic matrix methods by seeing how the mathematics is used in practice in a range of data-driven applications. Includes a wealth of engaging exercises for quizzes, self-study and interactive learning, as well as online JULIA demos offering a hands-on learning experience for upper-level undergraduates and first-year graduate students. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Language: English
Published by Cambridge University Press 2024-04-30, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Chiron Media, Wallingford, United Kingdom
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Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Press, GB, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Rarewaves.com USA, London, LONDO, United Kingdom
Hardback. Condition: New. Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational notebooks offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics.
Language: English
Published by Cambridge University Press 2024-04-30, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Chiron Media, Wallingford, United Kingdom
Hardcover. Condition: New.
Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
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Language: English
Published by Cambridge University Pr. Mai 2024, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: BuchWeltWeit Ludwig Meier e.K., Bergisch Gladbach, Germany
Buch. Condition: Neu. Neuware -Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational not Elektronisches Buch offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics. 452 pp. Englisch.
Language: English
Published by Cambridge University Pr. Mai 2024, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Rheinberg-Buch Andreas Meier eK, Bergisch Gladbach, Germany
Buch. Condition: Neu. Neuware -Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational not Elektronisches Buch offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics. 452 pp. Englisch.
Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: GreatBookPricesUK, Woodford Green, United Kingdom
Condition: As New. Unread book in perfect condition.
Language: English
Published by Cambridge University Pr. Mai 2024, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Wegmann1855, Zwiesel, Germany
Buch. Condition: Neu. Neuware -Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational not Elektronisches Buch offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics.
Language: English
Published by Cambridge University Press CUP, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Books Puddle, New York, NY, U.S.A.
Condition: New. pp. 450.
Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Kennys Bookstore, Olney, MD, U.S.A.
Condition: New. 2024. hardcover. . . . . . Books ship from the US and Ireland.
Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Revaluation Books, Exeter, United Kingdom
Hardcover. Condition: Brand New. 450 pages. 6.69x1.00x9.61 inches. In Stock.
Language: English
Published by Cambridge University Pr. Mai 2024, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: buchversandmimpf2000, Emtmannsberg, BAYE, Germany
Buch. Condition: Neu. Neuware -Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational not Elektronisches Buch offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics.Libri GmbH, Europaallee 1, 36244 Bad Hersfeld 452 pp. Englisch.
Language: English
Published by Cambridge University Pr., 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: preigu, Osnabrück, Germany
Buch. Condition: Neu. Linear Algebra for Data Science, Machine Learning, and Signal Processing | Jeffrey A. Fessler (u. a.) | Buch | Englisch | 2024 | Cambridge University Pr. | EAN 9781009418140 | 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. Mai 2024, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: AHA-BUCH GmbH, Einbeck, Germany
Buch. Condition: Neu. Neuware - Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational not Elektronisches Buch offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics.
Language: English
Published by Cambridge University Press, GB, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Rarewaves.com UK, London, United Kingdom
Hardback. Condition: New. Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational notebooks offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics.
Language: English
Published by Cambridge University Pr. Mai 2024, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Books-by-Floh, Paderborn, Germany
Buch. Condition: Neu. Neuware -Maximise student engagement and understanding of matrix methods in data-driven applications with this modern teaching package. Students are introduced to matrices in two preliminary chapters, before progressing to advanced topics such as the nuclear norm, proximal operators and convex optimization. Highlighted applications include low-rank approximation, matrix completion, subspace learning, logistic regression for binary classification, robust PCA, dimensionality reduction and Procrustes problems. Extensively classroom-tested, the book includes over 200 multiple-choice questions suitable for in-class interactive learning or quizzes, as well as homework exercises (with solutions available for instructors). It encourages active learning with engaging 'explore' questions, with answers at the back of each chapter, and Julia code examples to demonstrate how the mathematics is actually used in practice. A suite of computational not Elektronisches Buch offers a hands-on learning experience for students. This is a perfect textbook for upper-level undergraduates and first-year graduate students who have taken a prior course in linear algebra basics. 452 pp. Englisch.
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paperback. Condition: New. NEW. SHIPS FROM MULTIPLE LOCATIONS. book.
Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Revaluation Books, Exeter, United Kingdom
Hardcover. Condition: Brand New. 450 pages. 6.69x1.00x9.61 inches. In Stock. This item is printed on demand.
Language: English
Published by Cambridge University Press, 2024
ISBN 10: 1009418149 ISBN 13: 9781009418140
Seller: Biblios, Frankfurt am main, HESSE, Germany
Condition: New. PRINT ON DEMAND pp. 450.