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Securing Fault Diagnosis in IoT-Enabled Industrial Systems Using Homomorphic Encryption

  • Mohammed El-Hajj
  • , Ali El Attar
  • , Ahmad Fadllallah
  • , Rida Khatoun
  • Arab Open University-Lebanon
  • University of Sciences and Arts in Lebanon (USAL)

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Résumé

Securing fault diagnosis in IoT-enabled industrial systems is critical to preventing data breaches and ensuring reliable operation. This study proposes a novel approach that integrates homomorphic encryption (HE) into the fault diagnosis pipeline, enabling secure processing of sensitive sensor data. Using the CWRU Bearing Dataset, we demonstrate that the HE-based system achieves high accuracy (97.92%) while preserving data confidentiality. Despite the computational overhead introducing latency (1100 ms), the trade-off remains acceptable for non-real-time applications. The system’s ability to protect privacy without significantly compromising performance makes it well-suited for sensitive industries such as healthcare and manufacturing. Future work includes optimizing HE algorithms and exploring hybrid encryption schemes to enhance scalability and efficiency. This research highlights HE as a promising solution for secure and effective fault diagnosis in IoT systems.

langue originaleAnglais
titre2025 12th IFIP International Conference on New Technologies, Mobility and Security, NTMS 2025
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages280-287
Nombre de pages8
ISBN (Electronique)9798331552763
Les DOIs
étatPublié - 1 janv. 2025
Evénement12th IFIP International Conference on New Technologies, Mobility and Security, NTMS 2025 - Paris, France
Durée: 18 juin 202520 juin 2025

Série de publications

Nom2025 12th IFIP International Conference on New Technologies, Mobility and Security, NTMS 2025

Une conférence

Une conférence12th IFIP International Conference on New Technologies, Mobility and Security, NTMS 2025
Pays/TerritoireFrance
La villeParis
période18/06/2520/06/25

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