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August 21, 2025Sensors9 citationsOpen Access

Federated Security for Privacy Preservation of Healthcare Data in Edge-Cloud Environments

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RJRasanga JayaweeraHAHimanshu AgrawalNKNickson M. Karie

Key Points

  • The novel HEAT-FL framework introduces adaptive encryption for model sensitivity, enhancing data privacy during training.
  • It achieves a significant 56.5% reduction in encryption time for ten clients compared to traditional methods.
  • The approach combines federated learning with homomorphic encryption to ensure secure and compliant data processing.
  • This solution addresses critical privacy concerns in healthcare data management under regulations like HIPAA and GDPR.

Abstract

Digital transformation in healthcare has introduced data privacy challenges, as hospitals struggle to protect patient information while adopting digital technologies such as AI, IoT, and cloud more rapidly than ever before. The adoption of powerful third-party Machine Learning as a Service (MLaaS) solutions for disease prediction has become a common practice. However, these solutions offer significant privacy risks when sensitive healthcare data are shared externally to a third-party server. This raises compliance concerns under regulations like HIPAA, GDPR, and Australia’s Privacy Act. To address these challenges, this paper explores a decentralized, privacy-preserving approach to train the models among multiple healthcare stakeholders, integrating Federated Learning (FL) with Homomorphic Encryption (HE), ensuring model parameters remain protected throughout the learning process. This paper proposes a novel Homomorphic Encryption-based Adaptive Tuning for Federated Learning (HEAT-FL) framework to select encryption parameters based on model layer sensitivity. The proposed framework leverages the CKKS scheme to encrypt model parameters on the client side before sharing. This enables secure aggregation at the central server without requiring decryption, providing an additional layer of security through model-layer-wise parameter management. The proposed adaptive encryption approach significantly improves runtime efficiency while maintaining a balanced level of security. Compared to the existing frameworks (non-adaptive) using 256-bit security settings, the proposed framework offers a 56.5% reduction in encryption time for 10 clients and 54.6% for four clients per epoch.

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Cite This Study

Jayaweera et al. (2025) studied this question.

synapsesocial.com/papers/68a6fb9b5502675167ba94b4https://doi.org/10.3390/s25165108
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  1. 1Communication-Efficient Learning of Deep Networks from Decentralized Data2016 · 5,192 citations
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  4. 4Fully Homomorphic Encryption without Modulus Switching from Classical GapSVP2012 · 1,260 citations
  5. 5Privacy-Preserving Deep Learning via Additively Homomorphic Encryption2017 · 1,672 citations