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Recommender Systems China Edition: An Introduction - Softcover

 
9787115310699: Recommender Systems China Edition: An Introduction
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In this age of information overload, people use a variety of strategies to make choices about what to buy, how to spend their leisure time, and even whom to date. Recommender systems automate some of these strategies with the goal of providing affordable, personal, and high-quality recommendations. This book offers an overview of approaches to developing state-of-the-art recommender systems. The authors present current algorithmic approaches for generating personalized buying proposals, such as collaborative and content-based filtering, as well as more interactive and knowledge-based approaches. They also discuss how to measure the effectiveness of recommender systems and illustrate the methods with practical case studies. The final chapters cover emerging topics such as recommender systems in the social web and consumer buying behavior theory. Suitable for computer science researchers and students interested in getting an overview of the field, this book will also be useful for professionals looking for the right technology to build real-world recommender systems.

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Review:
'Behind the modest title of 'An Introduction' lies the type of work the field needs to consolidate its learning and move forward to address new challenges. Across the chapters that follow lie both a tour of what the field knows well - a diverse collection of algorithms and approaches to recommendation - and a snapshot of where the field is today as new approaches derived from social computing and the semantic web find their place in the recommender systems toolbox. Let's all hope this worthy effort spurs yet more creativity and innovation to help recommender systems move forward to new heights.' Joseph A. Konstan, from the Foreword
Book Description:
This book offers an overview of approaches to developing state-of-the-art recommender systems that automate a variety of choice-making strategies with the goal of providing affordable, personal, and high-quality recommendations. The authors present algorithmic approaches for generating personalized buying proposals, as well as more interactive and knowledge-based approaches. They discuss how to measure the effectiveness of recommender systems and illustrate the methods with practical case studies.

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  • PublisherPeople Post Press
  • Publication date2013
  • ISBN 10 7115310696
  • ISBN 13 9787115310699
  • BindingPaperback
  • Edition number1

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[ AO DI LI ]Dietmar Jannach . Markus Zanker . Alexander Felfernig . Gerhard Friedrich
Published by Cambridge University Press (2013)
ISBN 10: 7115310696 ISBN 13: 9787115310699
New paperback Quantity: 1
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liu xing
(Nanjing JiangSu, JS, China)

Book Description paperback. Condition: New. Ship out in 2 business day, And Fast shipping, Free Tracking number will be provided after the shipment.Paperback. Pub Date :2013-06-01 Pages: 244 Language: Chinese Publisher: People Post Press recommendation system fully expounded develop the most advanced method of recommender systems . which presents a number of classic algorithms . and discusses how to measure recommended effectiveness of the system . The book is divided into the basic concepts and the latest developments in two parts : the former involves collaborative recommendation . content-based recommendations . knowledge-based recomm.Four Satisfaction guaranteed,or money back. Seller Inventory # BR039500

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