Dinusha Vatsalan Hassan Asghar Dali Kaafar Vatsalan Privacy-Preserving Record Linkage

Privacy-Preserving Record Linkage

von Dinusha Vatsalan Hassan Asghar Dali Kaafar

Theory, Applications, and Challenges

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Beschreibung

This is the first book on Privacy-Preserving Record Linkage (PPRL) that provides a comprehensive coverage of the different aspects, ranging from ethical considerations such as fairness-bias in record linkage, and adversarial aspects such as attacks and provable defenses, to advanced data matching and analytics technologies such as linking complex and/or unstructured data and machine learning-based linkage techniques. Personal Identifiable Information (PII) about individuals, such as customers, taxpayers, patients, and mobile application users, is increasingly collected and linked across disparate data sources to enable customized, high-quality, and timely analytical services in a variety of applications. The data needed for the linkage is, however, often personal, and sensitive, and needs to be processed using privacy-preserving techniques.

A large body of work has been conducted in the topic of PPRL over the past three decades. This book covers the technological, adversarial, ethical, and analytical developments in PPRL to provide a comprehensive view of PPRL for implementing practical applications in the Big Data and Analytics Era. It provides 360 degrees of the evolving and contemporary topic covering all the different aspects required to the understanding, designing and implementation of sound and practical PPRL solutions for real-world applications. 

This book targets advanced-level students focused on data privacy, record linkage, and data analytics as well as researchers working in this related field.  Data science or data linkage practitioners in different domains including health, security, games, business, and finance will also find this book a valuable resource.


This is the first book on Privacy-Preserving Record Linkage (PPRL) that provides a comprehensive coverage of the different aspects, ranging from ethical considerations such as fairness-bias in record linkage, and adversarial aspects such as attacks and provable defenses, to advanced data matching and analytics technologies such as linking complex and/or unstructured data and machine learning-based linkage techniques. Personal Identifiable Information (PII) about individuals, such as customers, taxpayers, patients, and mobile application users, is increasingly collected and linked across disparate data sources to enable customized, high-quality, and timely analytical services in a variety of applications. The data needed for the linkage is, however, often personal, and sensitive, and needs to be processed using privacy-preserving techniques.

A large body of work has been conducted in the topic of PPRL over the past three decades. This book covers the technological, adversarial, ethical, and analytical developments in PPRL to provide a comprehensive view of PPRL for implementing practical applications in the Big Data and Analytics Era. It provides 360 degrees of the evolving and contemporary topic covering all the different aspects required to the understanding, designing and implementation of sound and practical PPRL solutions for real-world applications. 

This book targets advanced-level students focused on data privacy, record linkage, and data analytics as well as researchers working in this related field.  Data science or data linkage practitioners in different domains including health, security, games, business, and finance will also find this book a valuable resource.


Comprehensive coverage of technological, ethical, adversarial, and analytical in privacy-preserving record linkage Describes modern (fourth) generation privacy-preserving record linkage techniques Discusses practical aspects of privacy-preserving record linkage by including real examples of industrial applications

Autor*in

Dinusha Vatsalan

Themen in »Privacy-Preserving Record Linkage«

Privacy-Preserving Record Linkage Preserving Record Linkage Fairness-aware Record Linkage Big Data Human and societal aspects of linkage Ethical aspects of linkage Computational efficiency of linkage Adversarial aspects of linkage Privacy attacks and defenses for linkage Privacy risk evaluation Data anonymization and perturbation Data matching Big data analytics Record linkage optimisation Privacy-preserving interactive record linkage

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Details

ISBN: 9783032219312
Verlag: Springer International Publishing
Erscheinung: 02.09.2026

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