University Sétif 1 FERHAT ABBAS Faculty of Sciences
Détail de l'auteur
Auteur David Edward Stewart (1961-....) |
Documents disponibles écrits par cet auteur
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Titre : Numerical analysis : a graduate course Type de document : texte imprimé Auteurs : David Edward Stewart (1961-....), Auteur Année de publication : 2022 Importance : 1 vol. (632 p.) Présentation : illustrations, diagramme Format : 24 cm. ISBN/ISSN/EAN : 978-3-031-08120-0 Langues : Anglais (eng) Catégories : Mathématique Mots-clés : Mathématique Index. décimale : 518 Analyse numérique Résumé :
This book aims to introduce graduate students to the many applications of numerical computation, explaining in detail both how and why the included methods work in practice. The text addresses numerical analysis as a middle ground between practice and theory, addressing both the abstract mathematical analysis and applied computation and programming models instrumental to the field. While the text uses pseudocode, Matlab and Julia codes are available online for students to use, and to demonstrate implementation techniques. The textbook also emphasizes multivariate problems alongside single-variable problems and deals with topics in randomness, including stochastic differential equations and randomized algorithms, and topics in optimization and approximation relevant to machine learning. Ultimately, it seeks to clarify issues in numerical analysis in the context of applications, and presenting accessible methods to students in mathematics and data science.Côte titre : Fs/25068 Numerical analysis : a graduate course [texte imprimé] / David Edward Stewart (1961-....), Auteur . - 2022 . - 1 vol. (632 p.) : illustrations, diagramme ; 24 cm.
ISBN : 978-3-031-08120-0
Langues : Anglais (eng)
Catégories : Mathématique Mots-clés : Mathématique Index. décimale : 518 Analyse numérique Résumé :
This book aims to introduce graduate students to the many applications of numerical computation, explaining in detail both how and why the included methods work in practice. The text addresses numerical analysis as a middle ground between practice and theory, addressing both the abstract mathematical analysis and applied computation and programming models instrumental to the field. While the text uses pseudocode, Matlab and Julia codes are available online for students to use, and to demonstrate implementation techniques. The textbook also emphasizes multivariate problems alongside single-variable problems and deals with topics in randomness, including stochastic differential equations and randomized algorithms, and topics in optimization and approximation relevant to machine learning. Ultimately, it seeks to clarify issues in numerical analysis in the context of applications, and presenting accessible methods to students in mathematics and data science.Côte titre : Fs/25068 Exemplaires (1)
Code-barres Cote Support Localisation Section Disponibilité Fs/25068 Fs/25068 livre Bibliothéque des sciences Anglais Disponible
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