Big Data and Social Media Analytics

Big Data and Social Media Analytics
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Artikel-Nr:
9783030670467
Veröffentl:
2022
Einband:
Paperback
Erscheinungsdatum:
06.07.2022
Seiten:
252
Autor:
Mehmet Kemal Ozdemir
Gewicht:
434 g
Format:
235x155x13 mm
Serie:
Lecture Notes in Social Networks
Sprache:
Englisch
Beschreibung:

Dr. Mehmet Çakirtas completed his doctorate in the field of Islamic History at Ankara University, Ankara, Turkey in 2007. Between 2007 and 2011 he worked as an administrator in various units of the Radio and Television Supreme Council, Turkey. He worked as a Consultant at the Turkish Prime Ministry between 2011-2014. Between 2014-2017 he worked as the Head of the International Relations and Monitoring and Evaluation Department at the Radio and Television Supreme Council, Ankara, Turkey. He participated in the development of the Digital Recording and Analysis System in Turkey. Between 2017-2020, he worked as Executive Assistant of the Turkish Minister of Justice, the Turkish Deputy Prime Minister and the Turkish Minister of Health. Currently, he is the Head of the International Relations Department at the Radio and Television Supreme Council in Turkey. 2018-2019'da Ankara He worked as part-time instructor at Yildirim Beyazit University, Ankara, Turkey. His research interests include Islamic History, social media analysis and the study of radical Islamic groups.

Dr. Ozdemir received his B.S. and M.S. degrees in electrical engineering from METU, Ankara, Turkey, in 1996 and 1998, and his Ph.D. degree in electrical engineering from Syracuse University, USA, in 2005. He also obtained a Business Management Certificate from University of Toronto in 2010. Dr. Ozdemir has an industry experience of 15+ years, where he developed systems for CATV and wireless communication industries. He is currently with Department of Electrical and Electronics Engineering, Istanbul Medipol University, Turkey. His recent research interests include the application of deep learning to the wireless communication systems, such as jamming detection and spectrum sensing.


This edited book provides techniques which address various aspects of big data collection and analysis from social media platforms and beyond. It covers efficient compression of large networks, link prediction in hashtag graphs, visual exploration of social media data, identifying motifs in multivariate data, social media surveillance to enhance search and rescue missions, recommenders for collaborative filtering and safe travel plans to high risk destinations, analysis of cyber influence campaigns on YouTube, impact of location on business rating, bibliographical and co-authorship network analysis, and blog data analytics. All these trending topics form a major part of the state of the art in social media and big data analytics. Thus, this edited book may be considered as a valuable source for readers interested in grasping some of the most recent advancements in this high trending domain.

Provides techniques which address various aspects of big data collection and analysis from social media platforms and beyond
Chapter 1. Twenty Years of Network Science: A Bibliographic and Co-Authorship Network Analysis.- Chapter 2. Impact of Locational Factors on Business Ratings/Reviews: A Yelp and TripAdvisor Study.- Chapter 3. Identifying Reliable Recommenders in Users' Collaborating Filtering and Social Neighbourhoods.- Chapter 4. Safe Travelling Period Recommendation to High Attack Risk European Destinations based on Past Attack Information.- Chapter 5. Analyzing Cyber Influence Campaigns on YouTube using YouTubeTracker.- Chapter 6. Blog Data Analytics Using Blogtrackers.- Chapter 7. Using Social Media Surveillance in order to Enhance the Effectiveness of Crew Members in Search and Rescue Missions.- Chapter 8. Visual Exploration and Debugging of Machine Learning Classification over Social Media Data.- Chapter 9. Efficient and Flexible Compression of Very Sparse Networks of Big Data.- Chapter 10. Weather Big Data Analytics: Seeking Motifs in Multivariate Weather Data.- Chapter 11. Analysis of Link Prediction Algorithms in Hashtag Graphs.

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