163,79 €
181,99 €
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User-Friendly Introduction to Pac-Bayes Bounds
User-Friendly Introduction to Pac-Bayes Bounds
163,79
181,99 €
  • We will send in 10–14 business days.
Probably almost correct (PAC) bounds have been an intensive field of research over the last two decades. Hundreds of papers have been published and much progress has been made resulting in PAC-Bayes bounds becoming an important technique in machine learning. The proliferation of research has made the field for a newcomer somewhat daunting. In this tutorial, the author guides the reader through the topic's complexity and large body of publications. Covering both empirical and oracle PAC-bounds,…
181.99
  • Publisher:
  • ISBN-10: 1638283265
  • ISBN-13: 9781638283263
  • Format: 15.6 x 23.4 x 0.8 cm, minkšti viršeliai
  • Language: English
  • SAVE -10% with code: EXTRA

User-Friendly Introduction to Pac-Bayes Bounds (e-book) (used book) | bookbook.eu

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Probably almost correct (PAC) bounds have been an intensive field of research over the last two decades. Hundreds of papers have been published and much progress has been made resulting in PAC-Bayes bounds becoming an important technique in machine learning. The proliferation of research has made the field for a newcomer somewhat daunting. In this tutorial, the author guides the reader through the topic's complexity and large body of publications. Covering both empirical and oracle PAC-bounds, this book serves as a primer for students and researchers who want to get to grips quickly with the subject. It provides a friendly introduction that illuminates the basic theory and points to the most important publications to gain deeper understanding of any particular aspect.

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  • Author: Pierre Alquier
  • Publisher:
  • ISBN-10: 1638283265
  • ISBN-13: 9781638283263
  • Format: 15.6 x 23.4 x 0.8 cm, minkšti viršeliai
  • Language: English English

Probably almost correct (PAC) bounds have been an intensive field of research over the last two decades. Hundreds of papers have been published and much progress has been made resulting in PAC-Bayes bounds becoming an important technique in machine learning. The proliferation of research has made the field for a newcomer somewhat daunting. In this tutorial, the author guides the reader through the topic's complexity and large body of publications. Covering both empirical and oracle PAC-bounds, this book serves as a primer for students and researchers who want to get to grips quickly with the subject. It provides a friendly introduction that illuminates the basic theory and points to the most important publications to gain deeper understanding of any particular aspect.

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