Social Network Analytics
eBook - ePub

Social Network Analytics

Empowering Data Engineering with Deep Learning and Large Language Models

  1. 236 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Social Network Analytics

Empowering Data Engineering with Deep Learning and Large Language Models

About this book

This book presents the cutting-edge techniques of social network analytics, focusing on both the positive and negative aspects of social media. While platforms like X, Facebook, and LinkedIn serve as powerful tools for product promotion and crisis management, they also present challenges such as the spread of misinformation, cyberbullying, and hateful content. This book explores these dimensions while highlighting the advancements in social media analytics, specifically through the lens of emerging technologies like artificial intelligence, machine learning, and deep learning. This book is intended for data engineers, researchers, practitioners, and students in the fields of data science, social computing, and artificial intelligence.

This book

  • Explores state-of-the-art deep learning methodologies tailored for social network analysis, including Convolutional Neural Networks (CNNs), Recurrent Neural Networks (RNNs), and Graph Neural Networks (GNNs) to uncover hidden patterns and trends within social media data.
  • Examines the application of large language models, such as GPT (Generative Pre-trained Transformer), in analysing and generating text-based content. Readers will gain practical insights into using these models for content generation, summarisation, and classification tasks.
  • Provides detailed coverage of sentiment analysis techniques, enabling readers to extract valuable insights from user-generated content, helping organisations better understand public opinion.
  • Explores methodologies for detecting communities within social networks, uncovering hidden structures, relationships, and influential nodes or communities.
  • Offers insights into predicting user behaviour on social media platforms, including engagement, preferences, and click-through rates, equipping readers with tools to drive informed decision-making.

Information

Year
2026
Print ISBN
9781041006909
Edition
1
eBook ISBN
9781040605219

Table of contents

  1. Cover
  2. Half Title
  3. Title Page
  4. Copyright Page
  5. Table of Contents
  6. Preface
  7. About the Editors
  8. List of Contributors
  9. Chapter 1 The Role of Artificial Intelligence in Social Network Analysis
  10. Chapter 2 Unraveling the Impact of Social Networks: A Comprehensive Overview
  11. Chapter 3 Understanding Factors Leading to Local and Global Spatial Spread in Social Media
  12. Chapter 4 Understanding Deep Learning and LLMs for Detecting Depression in Social Media Posts
  13. Chapter 5 Deep Learning and Large Language Models for Detecting Depression in Social Media Posts – An Indian Context
  14. Chapter 6 Identifying Hate and Offensive Content Using Multimodal Deep Learning
  15. Chapter 7 Personalized Advertising and Customer Segmentation through Social Network Analytics
  16. Chapter 8 Role of Digital Agriculture in Shaping the Future of Farming: A Social Network Analytics Approach
  17. Chapter 9 Explainable Transfer Learning Model for Disaster Damage Assessment from Social Media Images
  18. Chapter 10 Understanding and Detecting Online Homophobia and Transphobia in Low-Resource Indian Languages: A Focus on Kannada and Telugu
  19. Chapter 11 Sarcasm Detection in Code-Mixed Social Media Posts: A Hybrid Perspective
  20. Index

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Yes, you can access Social Network Analytics by Pradeep Kumar Roy,Asis Kumar Tripathy,Abhinav Kumar,Yulei Wu in PDF and/or ePUB format, as well as other popular books in Business & Digital Marketing. We have over 1.5 million books available in our catalogue for you to explore.