Introduction To Linear Algebra (eBook)

Computation, Application, and Theory
Artikelnummer: 978-1-00-054169-4
Einband: PDF
Verfügbarkeit: Download, sofort verfügbar (Link per E-Mail)
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Introduction to Linear Algebra: Computation, Application, and Theory is designed for students who have never been exposed to the topics in a linear algebra course. The text is ¿lled with interesting and diverse application sections but is also a theoretical text which aims to train students to do succinct computation in a knowledgeable way. After completing the course with this text, the student will not only know the best and shortest way to do linear algebraic computations but will also know why such computations are both e¿ective and successful.

Features:

  • Includes cutting edge applications in machine learning and data analytics
  • Suitable as a primary text for undergraduates studying linear algebra
  • Requires very little in the way of pre-requisites

Introduction to Linear Algebra: Computation, Application, and Theory is designed for students who have never been exposed to the topics in a linear algebra course. The text is ¿lled with interesting and diverse application sections but is also a theoretical text which aims to train students to do succinct computation in a knowledgeable way. After completing the course with this text, the student will not only know the best and shortest way to do linear algebraic computations but will also know why such computations are both e¿ective and successful.

Features:

  • Includes cutting edge applications in machine learning and data analytics
  • Suitable as a primary text for undergraduates studying linear algebra
  • Requires very little in the way of pre-requisites
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VerlagTaylor & Francis Ebooks
EinbandPDF
Erscheinungsjahr2022
Seitenangabe434 S.
AusgabekennzeichenEnglisch
Abbildungen66 schwarz-weiße Abbildungen, 1 schwarz-weiße Fotos, 65 schwarz-weiße Zeichnungen
Auflage22001 A. 1. Auflage
PlattformPDF
AutorDebonis, Mark J.

Über den Autor Mark J. Debonis

Mark DeBonis received his PhD in Mathematics from University of California, Irvine, USA. He began his career as a theoretical mathematician in the field of group theory and model theory, but in later years switched to applied mathematics, in particular to machine learning. He spent some time working for the US Department of Energy at Los Alamos National Lab as well as the US Department of Defense at the Defense Intelligence Agency as an applied mathematician of machine learning. He is at present working for the US Department of Energy at Sandia National Lab. His research interests include machine learning, statistics and computational algebra.

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