Optimization for Data Analysis
eBook - PDF

Optimization for Data Analysis

  1. English
  2. PDF
  3. Available on iOS & Android
eBook - PDF

Optimization for Data Analysis

About this book

Optimization techniques are at the core of data science, including data analysis and machine learning. An understanding of basic optimization techniques and their fundamental properties provides important grounding for students, researchers, and practitioners in these areas. This text covers the fundamentals of optimization algorithms in a compact, self-contained way, focusing on the techniques most relevant to data science. An introductory chapter demonstrates that many standard problems in data science can be formulated as optimization problems. Next, many fundamental methods in optimization are described and analyzed, including: gradient and accelerated gradient methods for unconstrained optimization of smooth (especially convex) functions; the stochastic gradient method, a workhorse algorithm in machine learning; the coordinate descent approach; several key algorithms for constrained optimization problems; algorithms for minimizing nonsmooth functions arising in data science; foundations of the analysis of nonsmooth functions and optimization duality; and the back-propagation approach, relevant to neural networks.

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Yes, you can access Optimization for Data Analysis by Stephen J. Wright,Benjamin Recht in PDF and/or ePUB format, as well as other popular books in Mathematics & Mathematics General. We have over one million books available in our catalogue for you to explore.

Table of contents

  1. Cover
  2. Half-title
  3. Title page
  4. Copyright information
  5. Contents
  6. Preface
  7. 1 Introduction
  8. 2 Foundations of Smooth Optimization
  9. 3 Descent Methods
  10. 4 Gradient Methods Using Momentum
  11. 5 Stochastic Gradient
  12. 6 Coordinate Descent
  13. 7 First-Order Methods for Constrained Optimization
  14. 8 Nonsmooth Functions and Subgradients
  15. 9 Nonsmooth Optimization Methods
  16. 10 Duality and Algorithms
  17. 11 Differentiation and Adjoints
  18. Appendix
  19. Bibliography
  20. Index