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Image of Machine Learning in Social Networks

Electronic Resource

Machine Learning in Social Networks

Aggarwal, Manasvi - Personal Name; Murty, M.N. - Personal Name;

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This book deals with network representation learning. It deals with embedding nodes, edges, subgraphs and graphs. There is a growing interest in understanding complex systems in different domains including health, education, agriculture and transportation. Such complex systems are analyzed by modeling, using networks that are aptly called complex networks. Networks are becoming ubiquitous as they can represent many real-world relational data, for instance, information networks, molecular structures, telecommunication networks and protein–protein interaction networks. Analysis of these networks provides advantages in many fields such as recommendation (recommending friends in a social network), biological field (deducing connections between proteins for treating new diseases) and community detection (grouping users of a social network according to their interests) by leveraging the latent information of networks. An active and important area of current interest is to come out with algorithms that learn features by embedding nodes or (sub)graphs into a vector space. These tasks come under the broad umbrella of representation learning. A representation learning model learns a mapping function that transforms the graphs' structure information to a low-/high-dimension vector space maintaining all the relevant properties.


Availability
Inventory Code Barcode Call Number Location Status
1908001216EB0001822006.31 Agg mCentral Library (OPAC)Available
Detail Information
Series Title
-
Call Number
006.31 Agg m
Publisher
Singapore : Springer Singapore., 2020
Collation
XI, 112p.:Ill
Language
English
ISBN/ISSN
978-981-33-4022-0
Classification
006.31
Content Type
Ebook
Media Type
-
Carrier Type
online resource
Edition
1
Subject(s)
Machine Learning
Specific Detail Info
-
Statement of Responsibility
BRF
Other version/related

No other version available

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  • Machine Learning in Social Networks
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