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Privacy-Preserving Data Aggregation Techniques for Enhanced Security in Wireless Sensor Networks

Privacy-Preserving Data Aggregation Techniques for Enhanced Security in Wireless Sensor Networks
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Author(s): Ahad Abbas Vora (LJ University, India), Tanveerhusen Maheboobbhai (LJ University, India), Patni Vora Mohammad Faaiz (LJ University, India)and Shanti Verma (LJ University, India)
Copyright: 2024
Pages: 13
Source title: Enhancing Security in Public Spaces Through Generative Adversarial Networks (GANs)
Source Author(s)/Editor(s): Sivaram Ponnusamy (Sandip University, Nashik, India), Jilali Antari (Ibn Zohr Agadir University, Morocco), Pawan R. Bhaladhare (Sandip University, Nashik, India), Amol D. Potgantwar (Sandip University, Nashik, India)and Swaminathan Kalyanaraman (Anna University, Trichy, India)
DOI: 10.4018/979-8-3693-3597-0.ch023

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Abstract

In the SecureSense system, the authors propose a machine learning methodology for data aggregation that prioritizes privacy preservation while maintaining data utility. This approach utilizes a combination of techniques such as federated learning and differential privacy. Federated learning allows individual sensor nodes to train a local machine learning model using their own data while keeping it on-device, thus minimizing the need to transmit raw data across the network. This decentralized training process helps preserve privacy by avoiding centralized data aggregation points where sensitive information could be compromised. Additionally, the authors incorporate differential privacy mechanisms to further protect the privacy of individual data points during the aggregation process.

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