Broad Learning Through Fusions

Broad Learning Through Fusions

EnglishHardbackPrint on demand
Zhang Jiawei
Springer, Berlin
EAN: 9783030125271
Print on demand
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Detailed information

This book offers a clear and comprehensive introduction to broad learning, one of the novel learning problems studied in data mining and machine learning. Broad learning aims at fusing multiple large-scale information sources of diverse varieties together, and carrying out synergistic data mining tasks across these fused sources in one unified analytic. This book takes online social networks as an application example to introduce the latest alignment and knowledge discovery algorithms. Besides the overview of broad learning, machine learning and social network basics, specific topics covered in this book include network alignment, link prediction, community detection, information diffusion, viral marketing, and network embedding.

EAN 9783030125271
ISBN 3030125270
Binding Hardback
Publisher Springer, Berlin
Publication date June 28, 2019
Pages 419
Language English
Dimensions 254 x 178
Country Switzerland
Readership Professional & Scholarly
Authors Yu Philip S.; Zhang Jiawei
Illustrations 81 Illustrations, color; 23 Illustrations, black and white
Edition 2019 ed.
Manufacturer information
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