Trends in Social Network Analysis

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The book collects contributions from experts worldwide addressing recent scholarship in social network analysis such as influence spread, link prediction, dynamic network biclustering, and delurking. It covers both new topics and new solutions to known problems. The contributions rely on established methods and techniques in graph theory, machine learning, stochastic modelling, user behavior analysis and natural language processing, just to name a few. This text provides an understanding of using such methods and techniques in order to manage practical problems and situations. Trends in Social Network Analysis: Information Propagation, User Behavior Modelling, Forecasting, and Vulnerability Assessment appeals to students, researchers, and professionals working in the field.

Presents overviews of problems and recommended solutions in social network analysis such as link prediction, influence maximization, and block modelling in complex networks Explores new areas such as sarcasm and sentiment analysis, block modelling in dynamic networks using stochastic approaches, and behavior modelling of social network users Features novel research topics such as social network user delurking, and threat assessment in social engineering Includes supplementary material: sn.pub/extras

Inhalt

  1. The Perceived Assortativity of Social Networks: Methodological Problems and Solutions.- 2. A Parametric Study to Construct Time-aware Social Profiles.- 3. A Parametric Study to Construct Time-aware Social Profiles.- 4. The DEvOTION Algorithm for Delurking in Social Networks.- 5. Social Engineering Threat Assessment using a Multi-layered Graph-based Model.- 6. Through The Grapevine: A Comparison of News in Microblogs and Traditional Media.- 7. Prediction of Elevated Activity in Online Social Media Using Aggregated and Individualized Models.- 8. Unsupervised Link Prediction Based on Time Frames in Weighted-Directed Citation Networks.- 9. An Approach to Maximize the Influence Spread in Social Networks.- 10. Energy Efficiency Analysis of the Very Fast Decision Tree Algorithm.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783319534190
    • Genre Information Technology
    • Auflage 1st edition 2017
    • Editor Rokia Missaoui, Matthieu Latapy, Talel Abdessalem
    • Lesemotiv Verstehen
    • Anzahl Seiten 272
    • Größe H241mm x B160mm x T21mm
    • Jahr 2017
    • EAN 9783319534190
    • Format Fester Einband
    • ISBN 331953419X
    • Veröffentlichung 30.04.2017
    • Titel Trends in Social Network Analysis
    • Untertitel Information Propagation, User Behavior Modeling, Forecasting, and Vulnerability Assessment
    • Gewicht 576g
    • Herausgeber Springer International Publishing
    • Sprache Englisch

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