Social Media Analytics for User Behavior Modeling: Data-Enabled Engineering
Autor Jingrui (Associate ProfessorSchool of Computing Informatics Heen Limba Engleză Hardback – 30 mar 2020
In recent years social media has gained significant popularity and has become an essential medium of communication. Such user-generated content provides an excellent scenario for applying the metaphor of mining any information. Transfer learning is a research problem in machine learning that focuses on leveraging the knowledge gained while solving one problem and applying it to a different, but related problem.
Features:
- Offers novel frameworks to study user behavior and for addressing and explaining task heterogeneity
- Presents a detailed study of existing research
- Provides convergence and complexity analysis of the frameworks
- Includes algorithms to implement the proposed research work
- Covers extensive empirical analysis
Social Media Analytics for User Behavior Modeling: A Task Heterogeneity Perspective is a guide to user behavior modeling in heterogeneous settings and is of great use to the machine learning community.
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Specificații
ISBN-13: 9780367211585
ISBN-10: 0367211580
Pagini: 120
Dimensiuni: 156 x 235 mm
Greutate: 0.32 kg
Editura: Taylor & Francis Ltd.
Seria Data-Enabled Engineering
ISBN-10: 0367211580
Pagini: 120
Dimensiuni: 156 x 235 mm
Greutate: 0.32 kg
Editura: Taylor & Francis Ltd.
Seria Data-Enabled Engineering