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Learning Automata Approach for Social Networks

This book begins by briefly explaining learning automata (LA) models and a recently developed cellular learning automaton (CLA) named wavefront CLA. Analyzing social networks is increasingly important, so as to identify behavioral patterns in interactions among individuals and in the networks'...

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Detaylı Bibliyografya
Asıl Yazarlar: Rezvanian, Alireza (Yazar), Moradabadi, Behnaz (Yazar), Ghavipour, Mina (Yazar), Daliri Khomami, Mohammad Mehdi (Yazar), Meybodi, Mohammad Reza (Yazar)
Müşterek Yazar: SpringerLink (Online service)
Materyal Türü: e-Kitap
Dil:İngilizce
Baskı/Yayın Bilgisi: Cham : Springer International Publishing : 2019.
Imprint: Springer,
Edisyon:1st ed. 2019.
Seri Bilgileri:Studies in Computational Intelligence, 820
Konular:
Online Erişim:Full-text access
Diğer Bilgiler
Özet:This book begins by briefly explaining learning automata (LA) models and a recently developed cellular learning automaton (CLA) named wavefront CLA. Analyzing social networks is increasingly important, so as to identify behavioral patterns in interactions among individuals and in the networks' evolution, and to develop the algorithms required for meaningful analysis. As an emerging artificial intelligence research area, learning automata (LA) has already had a significant impact in many areas of social networks. Here, the research areas related to learning and social networks are addressed from bibliometric and network analysis perspectives. In turn, the second part of the book highlights a range of LA-based applications addressing social network problems, from network sampling, community detection, link prediction, and trust management, to recommender systems and finally influence maximization. Given its scope, the book offers a valuable guide for all researchers whose work involves reinforcement learning, social networks and/or artificial intelligence.
Fiziksel Özellikler:XVII, 329 p. 107 illus., 72 illus. in color. online resource.
ISBN:9783030107673
ISSN:1860-9503 ;
DOI:10.1007/978-3-030-10767-3