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Paperback Privacy-Preserving Data Mining for Online Social Networks Book

ISBN: B0HD9Q9P99

ISBN13: 9798256258023

Privacy-Preserving Data Mining for Online Social Networks

The rapid growth of online social networks has transformed the way individuals communicate, share information, and participate in digital communities. At the same time, the enormous volume of user-generated data has created significant opportunities for data mining while raising important concerns regarding privacy, security, and responsible data management. Privacy-Preserving Data Mining for Online Social Networks provides a comprehensive introduction to the principles, techniques, and challenges involved in extracting meaningful knowledge from social network data while protecting individual privacy and maintaining data confidentiality.

The book examines the intersection of data mining, privacy preservation, social network analysis, and information security, presenting the engineering and computational concepts that support responsible data analysis in large-scale online environments. Readers are introduced to the fundamentals of knowledge discovery, data preprocessing, pattern recognition, classification, clustering, association analysis, anomaly detection, and predictive analytics as they relate to online social platforms. The discussion emphasizes the importance of balancing analytical utility with privacy protection to enable ethical and compliant data-driven decision-making.

A central focus is placed on privacy-preserving methodologies that reduce the risk of exposing sensitive information during data collection, storage, sharing, and analysis. The text explores widely recognized approaches including data anonymization, data masking, pseudonymization, secure data publishing, differential privacy, privacy-aware data transformation, cryptographic techniques, and secure multi-party computation. These concepts are presented within the broader framework of privacy engineering, helping readers understand how technical safeguards contribute to secure and trustworthy data mining processes.

The book further discusses the structure and dynamics of online social networks, highlighting how graph-based data models, user interactions, community detection, influence analysis, recommendation systems, sentiment analysis, and network evolution contribute to understanding social behavior. It also examines the ethical, legal, and security considerations associated with processing social network data, including data governance, access control, identity protection, risk management, and regulatory compliance. These discussions provide readers with a balanced understanding of both the opportunities and responsibilities associated with mining large-scale social datasets.

Designed for undergraduate and graduate students, researchers, data scientists, computer engineers, cybersecurity professionals, educators, and information technology practitioners, this volume serves as both an academic reference and a practical introduction to privacy-aware data mining. The material emphasizes broadly applicable computational principles and established methodologies rather than proprietary software platforms or vendor-specific technologies, making it suitable for university coursework, research, and professional development.

As organizations increasingly rely on social data to support business intelligence, public policy, cybersecurity, healthcare, marketing, and scientific research, preserving user privacy has become a critical requirement. Privacy-Preserving Data Mining for Online Social Networks provides readers with a structured understanding of the technologies, analytical methods, and privacy-enhancing techniques that enable responsible knowledge discovery from social network data. Optimized for engineering students, academic libraries, universities, researchers, and data professionals, this book serves as a valuable resource for exploring privacy-preserving analytics, social network mining, data security, and intelligent information processing in today's data-driven world.

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