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عنوان
Understanding machine learning :

پدید آورنده
Shai Shalev-Shwartz, Shai Ben-David

موضوع
Algorithms,Machine learning

رده
Q325
.
5
.
S475
2014

کتابخانه
Center and Library of Islamic Studies in European Languages

محل استقرار
استان: Qom ـ شهر: Qom

Center and Library of Islamic Studies in European Languages

تماس با کتابخانه : 32910706-025

INTERNATIONAL STANDARD BOOK NUMBER

(Number (ISBN
1107057132 (hardback)
(Number (ISBN
9781107057135 (hardback)

NATIONAL BIBLIOGRAPHY NUMBER

Number
dltt

TITLE AND STATEMENT OF RESPONSIBILITY

Title Proper
Understanding machine learning :
General Material Designation
[Book]
Other Title Information
from theory to algorithms /
First Statement of Responsibility
Shai Shalev-Shwartz, Shai Ben-David

PHYSICAL DESCRIPTION

Specific Material Designation and Extent of Item
xvi, 397 pages :
Other Physical Details
illustrations ;
Dimensions
26 cm

INTERNAL BIBLIOGRAPHIES/INDEXES NOTE

Text of Note
Includes bibliographical references and index

CONTENTS NOTE

Text of Note
Machine generated contents note: 1. Introduction; Part I. Foundations: 2. A gentle start; 3. A formal learning model; 4. Learning via uniform convergence; 5. The bias-complexity tradeoff; 6. The VC-dimension; 7. Non-uniform learnability; 8. The runtime of learning; Part II. From Theory to Algorithms: 9. Linear predictors; 10. Boosting; 11. Model selection and validation; 12. Convex learning problems; 13. Regularization and stability; 14. Stochastic gradient descent; 15. Support vector machines; 16. Kernel methods; 17. Multiclass, ranking, and complex prediction problems; 18. Decision trees; 19. Nearest neighbor; 20. Neural networks; Part III. Additional Learning Models: 21. Online learning; 22. Clustering; 23. Dimensionality reduction; 24. Generative models; 25. Feature selection and generation; Part IV. Advanced Theory: 26. Rademacher complexities; 27. Covering numbers; 28. Proof of the fundamental theorem of learning theory; 29. Multiclass learnability; 30. Compression bounds; 31. PAC-Bayes; Appendix A. Technical lemmas; Appendix B. Measure concentration; Appendix C. Linear algebra
8

SUMMARY OR ABSTRACT

Text of Note
"Machine learning is one of the fastest growing areas of computer science, with far-reaching applications. The aim of this textbook is to introduce machine learning, and the algorithmic paradigms it offers, in a principled way. The book provides an extensive theoretical account of the fundamental ideas underlying machine learning and the mathematical derivations that transform these principles into practical algorithms. Following a presentation of the basics of the field, the book covers a wide array of central topics that have not been addressed by previous textbooks. These include a discussion of the computational complexity of learning and the concepts of convexity and stability; important algorithmic paradigms including stochastic gradient descent, neural networks, and structured output learning; and emerging theoretical concepts such as the PAC-Bayes approach and compression-based bounds. Designed for an advanced undergraduate or beginning graduate course, the text makes the fundamentals and algorithms of machine learning accessible to students and non-expert readers in statistics, computer science, mathematics, and engineering"--

TOPICAL NAME USED AS SUBJECT

Algorithms
Machine learning

DEWEY DECIMAL CLASSIFICATION

Number
006
.
3/1
Edition
23

LIBRARY OF CONGRESS CLASSIFICATION

Class number
Q325
.
5
Book number
.
S475
2014

PERSONAL NAME - PRIMARY RESPONSIBILITY

Shalev-Shwartz, Shai

PERSONAL NAME - ALTERNATIVE RESPONSIBILITY

Ben-David, Shai

ORIGINATING SOURCE

Date of Transaction
20140613231933.0
Cataloguing Rules (Descriptive Conventions))
rda

ELECTRONIC LOCATION AND ACCESS

Electronic name
 مطالعه متن کتاب 

[Book]

Y

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