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Optimal Social Influence: SpringerBriefs in Optimization

Autor Wen Xu, Weili Wu
en Limba Engleză Paperback – 30 ian 2020
This self-contained book describes social influence from a computational point of view, with a focus on recent and practical applications, models, algorithms and open topics for future research. Researchers, scholars, postgraduates and developers interested in research on social networking and the social influence related issues will find this book useful and motivating. The latest research on social computing is presented along with and illustrations on how to understand and manipulate social influence for knowledge discovery by applying various data mining techniques in real world scenarios. Experimental reports, survey papers, models and algorithms with specific optimization problems are depicted. The main topics covered in this book are: chrematistics of social networks, modeling of social influence propagation, popular research problems in social influence analysis such as influence maximization, rumor blocking, rumor source detection, and multiple social influence competing.  
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Specificații

ISBN-13: 9783030377748
ISBN-10: 3030377741
Pagini: 124
Ilustrații: VIII, 124 p. 24 illus., 19 illus. in color.
Dimensiuni: 155 x 235 mm
Greutate: 0.2 kg
Ediția:1st ed. 2020
Editura: Springer International Publishing
Colecția Springer
Seria SpringerBriefs in Optimization

Locul publicării:Cham, Switzerland

Cuprins

1. Introduction of Social Influence Analysis.- 2. Diffusion of Information.- 3. Information Source Detection in Social Networks.- 4. Rumor Blocking in Social Networks.- 5. Multiple Social Influence: Models and Applications.

Textul de pe ultima copertă

This self-contained book describes social influence from a computational point of view, with a focus on recent and practical applications, models, algorithms and open topics for future research. Researchers, scholars, postgraduates and developers interested in research on social networking and the social influence related issues will find this book useful and motivating. The latest research on social computing is presented along with and illustrations on how to understand and manipulate social influence for knowledge discovery by applying various data mining techniques in real world scenarios. Experimental reports, survey papers, models and algorithms with specific optimization problems are depicted. The main topics covered in this book are: chrematistics of social networks, modeling of social influence propagation, popular research problems in social influence analysis such as influence maximization, rumor blocking, rumor source detection, and multiple social influence competing.  

Caracteristici

Includes recent and fundamental models and optimization algorithms on social computing Presents detailed techniques, models, problems, algorithms and experiments Contains practical applications in security, business, computing and engineering