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Publicado por Springer-Verlag New York Inc., New York, NY, 2012
ISBN 10: 1461268427 ISBN 13: 9781461268420
Idioma: Inglés
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Añadir al carritoPaperback. Condición: new. Paperback. Numerical linear algebra is one of the most important subjects in the field of statistical computing. Statistical methods in many areas of application require computations with vectors and matrices. This book describes accurate and efficient computer algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors. Although the book is not tied to any particular software system, it describes and gives examples of the use of modern computer software for numerical linear algebra. An understanding of numerical linear algebra requires basic knowledge both of linear algebra and of how numerical data are stored and manipulated in the computer. The book begins with a discussion of the basics of numerical computations, and then describes the relevant properties of matrix inverses, matrix factorizations, matrix and vector norms, and other topics in linear algebra; hence, the book is essentially self- contained. The topics addressed in this bookconstitute the most important material for an introductory course in statistical computing, and should be covered in every such course. The book includes exercises and can be used as a text for a first course in statistical computing or as supplementary text for various courses that emphasize computations. James Gentle is University Professor of Computational Statistics at George Mason University. During a thirteen-year hiatus from academic work before joining George Mason, he was director of research and design at the world's largest independent producer of Fortran and C general-purpose scientific software libraries. These libraries implement many algorithms for numerical linear algebra. He is a Fellow of the American Statistical Association and member of the International Statistical Institute. He has held several national Numerical linear algebra is one of the most important subjects in the field of statistical computing. An understanding of numerical linear algebra requires basic knowledge both of linear algebra and of how numerical data are stored and manipulated in the computer. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
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Añadir al carritoPaperback or Softback. Condición: New. Numerical Linear Algebra for Applications in Statistics 0.75. Book.
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Publicado por Springer-Verlag New York Inc., New York, NY, 1998
ISBN 10: 0387985425 ISBN 13: 9780387985428
Idioma: Inglés
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Añadir al carritoHardcover. Condición: new. Hardcover. Numerical linear algebra is one of the most important subjects in the field of statistical computing. Statistical methods in many areas of application require computations with vectors and matrices. This book describes accurate and efficient computer algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors. Although the book is not tied to any particular software system, it describes and gives examples of the use of modern computer software for numerical linear algebra. An understanding of numerical linear algebra requires basic knowledge both of linear algebra and of how numerical data are stored and manipulated in the computer. The book begins with a discussion of the basics of numerical computations, and then describes the relevant properties of matrix inverses, matrix factorizations, matrix and vector norms, and other topics in linear algebra; hence, the book is essentially self- contained. The topics addressed in this bookconstitute the most important material for an introductory course in statistical computing, and should be covered in every such course. The book includes exercises and can be used as a text for a first course in statistical computing or as supplementary text for various courses that emphasize computations. James Gentle is University Professor of Computational Statistics at George Mason University. During a thirteen-year hiatus from academic work before joining George Mason, he was director of research and design at the world's largest independent producer of Fortran and C general-purpose scientific software libraries. These libraries implement many algorithms for numerical linear algebra. He is a Fellow of the American Statistical Association and member of the International Statistical Institute. He has held several national This book presents the aspects of numerical linear algebra that are important to statisticians. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
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Publicado por Springer-Verlag New York Inc., 2012
ISBN 10: 1461268427 ISBN 13: 9781461268420
Idioma: Inglés
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Añadir al carritoCondición: New. Series: Statistics and Computing. Num Pages: 221 pages, biography. BIC Classification: PBF; PBT; UFM. Category: (P) Professional & Vocational. Dimension: 234 x 156 x 12. Weight in Grams: 373. . 2012. Softcover reprint of the original 1st ed. 1998. Paperback. . . . .
Publicado por Springer Nature, 2020
Idioma: Inglés
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Añadir al carritoN.A. Condición: New. ISBN:9781071600917.
Publicado por Springer-Verlag New York Inc., 1998
ISBN 10: 0387985425 ISBN 13: 9780387985428
Idioma: Inglés
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Añadir al carritoCondición: New. Describes computer algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors. This book begins with a discussion of the basics of numerical computations, and then describes the properties of matrix inverses, matrix factorizations, matrix and vector norms, and other topics in linear algebra. Series: Statistics and Computing. Num Pages: 221 pages, biography. BIC Classification: PBF; PBT. Category: (P) Professional & Vocational; (UP) Postgraduate, Research & Scholarly. Dimension: 234 x 156 x 14. Weight in Grams: 514. . 1998. Hardback. . . . .
Publicado por Springer-Verlag New York Inc., 2012
ISBN 10: 1461268427 ISBN 13: 9781461268420
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Añadir al carritoCondición: New. Series: Statistics and Computing. Num Pages: 221 pages, biography. BIC Classification: PBF; PBT; UFM. Category: (P) Professional & Vocational. Dimension: 234 x 156 x 12. Weight in Grams: 373. . 2012. Softcover reprint of the original 1st ed. 1998. Paperback. . . . . Books ship from the US and Ireland.
Publicado por Springer-Verlag New York Inc., 1998
ISBN 10: 0387985425 ISBN 13: 9780387985428
Idioma: Inglés
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Añadir al carritoCondición: New. Describes computer algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors. This book begins with a discussion of the basics of numerical computations, and then describes the properties of matrix inverses, matrix factorizations, matrix and vector norms, and other topics in linear algebra. Series: Statistics and Computing. Num Pages: 221 pages, biography. BIC Classification: PBF; PBT. Category: (P) Professional & Vocational; (UP) Postgraduate, Research & Scholarly. Dimension: 234 x 156 x 14. Weight in Grams: 514. . 1998. Hardback. . . . . Books ship from the US and Ireland.
Publicado por Springer New York, Springer New York Aug 1998, 1998
ISBN 10: 0387985425 ISBN 13: 9780387985428
Idioma: Inglés
Librería: buchversandmimpf2000, Emtmannsberg, BAYE, Alemania
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Añadir al carritoBuch. Condición: Neu. Neuware -Numerical linear algebra is one of the most important subjects in the field of statistical computing. Statistical methods in many areas of application require computations with vectors and matrices. This book describes accurate and efficient computer algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors. Although the book is not tied to any particular software system, it describes and gives examples of the use of modern computer software for numerical linear algebra. An understanding of numerical linear algebra requires basic knowledge both of linear algebra and of how numerical data are stored and manipulated in the computer. The book begins with a discussion of the basics of numerical computations, and then describes the relevant properties of matrix inverses, matrix factorizations, matrix and vector norms, and other topics in linear algebra; hence, the book is essentially self- contained. The topics addressed in this bookconstitute the most important material for an introductory course in statistical computing, and should be covered in every such course. The book includes exercises and can be used as a text for a first course in statistical computing or as supplementary text for various courses that emphasize computations. James Gentle is University Professor of Computational Statistics at George Mason University. During a thirteen-year hiatus from academic work before joining George Mason, he was director of research and design at the world's largest independent producer of Fortran and C general-purpose scientific software libraries. These libraries implement many algorithms for numerical linear algebra. He is a Fellow of the American Statistical Association and member of the International Statistical Institute. He has held several nationalSpringer Verlag GmbH, Tiergartenstr. 17, 69121 Heidelberg 240 pp. Englisch.
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Añadir al carritoTaschenbuch. Condición: Neu. Druck auf Anfrage Neuware - Printed after ordering - Numerical linear algebra is one of the most important subjects in the field of statistical computing. Statistical methods in many areas of application require computations with vectors and matrices. This book describes accurate and efficient computer algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors. Although the book is not tied to any particular software system, it describes and gives examples of the use of modern computer software for numerical linear algebra. An understanding of numerical linear algebra requires basic knowledge both of linear algebra and of how numerical data are stored and manipulated in the computer. The book begins with a discussion of the basics of numerical computations, and then describes the relevant properties of matrix inverses, matrix factorizations, matrix and vector norms, and other topics in linear algebra; hence, the book is essentially self- contained. The topics addressed in this bookconstitute the most important material for an introductory course in statistical computing, and should be covered in every such course. The book includes exercises and can be used as a text for a first course in statistical computing or as supplementary text for various courses that emphasize computations. James Gentle is University Professor of Computational Statistics at George Mason University. During a thirteen-year hiatus from academic work before joining George Mason, he was director of research and design at the world's largest independent producer of Fortran and C general-purpose scientific software libraries. These libraries implement many algorithms for numerical linear algebra. He is a Fellow of the American Statistical Association and member of the International Statistical Institute. He has held several national.
Publicado por Springer New York, Springer New York, 1998
ISBN 10: 0387985425 ISBN 13: 9780387985428
Idioma: Inglés
Librería: AHA-BUCH GmbH, Einbeck, Alemania
EUR 58,55
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Añadir al carritoBuch. Condición: Neu. Druck auf Anfrage Neuware - Printed after ordering - Numerical linear algebra is one of the most important subjects in the field of statistical computing. Statistical methods in many areas of application require computations with vectors and matrices. This book describes accurate and efficient computer algorithms for factoring matrices, solving linear systems of equations, and extracting eigenvalues and eigenvectors. Although the book is not tied to any particular software system, it describes and gives examples of the use of modern computer software for numerical linear algebra. An understanding of numerical linear algebra requires basic knowledge both of linear algebra and of how numerical data are stored and manipulated in the computer. The book begins with a discussion of the basics of numerical computations, and then describes the relevant properties of matrix inverses, matrix factorizations, matrix and vector norms, and other topics in linear algebra; hence, the book is essentially self- contained. The topics addressed in this bookconstitute the most important material for an introductory course in statistical computing, and should be covered in every such course. The book includes exercises and can be used as a text for a first course in statistical computing or as supplementary text for various courses that emphasize computations. James Gentle is University Professor of Computational Statistics at George Mason University. During a thirteen-year hiatus from academic work before joining George Mason, he was director of research and design at the world's largest independent producer of Fortran and C general-purpose scientific software libraries. These libraries implement many algorithms for numerical linear algebra. He is a Fellow of the American Statistical Association and member of the International Statistical Institute. He has held several national.
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Añadir al carritoCondición: Gut. Zustand: Gut | Sprache: Englisch | Produktart: Bücher.