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Linear Algebra With Machine Learning and Data.
・ISBN 978-0-367-45839-3 hard GB£ 103.99
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電子版あり 大学・学術機関向け電子ブック(eBook)ISBN 978-1-003-02567-2
| 著者・編者 | Arangala, Crista, |
|---|---|
| シリーズ | Textbooks in Mathematics |
| 出版社 | (Chapman & Hall/CRC, UK) |
| 出版年月 | 2023 |
| ページ数 | 290 pp. |
| 言語 | ENG |
| ニュース番号 | <M25-13913> |
解説
This book takes a deep dive into several key linear algebra subjects as they apply to data analytics and data mining. The book offers a case study approach where each case will be grounded in a real-world application.
This text is meant to be used for a second course in applications of Linear Algebra to Data Analytics, with a supplemental chapter on Decision Trees and their applications in regression analysis. The text can be considered in two different but overlapping general data analytics categories: clustering and interpolation.
Knowledge of mathematical techniques related to data analytics and exposure to interpretation of results within a data analytics context are particularly valuable for students studying undergraduate mathematics. Each chapter of this text takes the reader through several relevant case studies using real-world data.
All data sets, as well as Python and R syntax, are provided to the reader through links to Github documentation. Following each chapter is a short exercise set in which students are encouraged to use technology to apply their expanding knowledge of linear algebra as it is applied to data analytics.
A basic knowledge of the concepts in a first Linear Algebra course is assumed; however, an overview of key concepts is presented in the Introduction and as needed throughout the text.