Linear Algebra for Data Science

World Scientific Publishing Company
SKU:
9789811276224
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ISBN13:
9789811276224
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This book serves as an introduction to linear algebra for undergraduate students in data science, statistics, computer science, economics, and engineering. The book presents all the essentials in rigorous (proof-based) manner, describes the intuition behind the results, while discussing some applications to data science along the way. The book comes with two parts, one on vectors, the other on matrices. The former consists of four chapters: vector algebra, linear independence and linear subspaces, orthonormal bases and the Gram-Schmidt process, linear functions. The latter comes with eight chapters: matrices and matrix operations, invertible matrices and matrix inversion, projections and regression, determinants, eigensystems and diagonalizability, symmetric matrices, singular value decomposition, and stochastic matrices. The book ends with the solution of exercises which appear throughout its twelve chapters.


  • | Author: Moshe Haviv
  • | Publisher: World Scientific Publishing Company
  • | Publication Date: Jul 18, 2023
  • | Number of Pages: NA pages
  • | Language: English
  • | Binding: Hardcover
  • | ISBN-10: 9811276226
  • | ISBN-13: 9789811276224
Author:
Moshe Haviv
Publisher:
World Scientific Publishing Company
Publication Date:
Jul 18, 2023
Number of pages:
NA pages
Language:
English
Binding:
Hardcover
ISBN-10:
9811276226
ISBN-13:
9789811276224