IOTFLA:实现联邦学习的安全和隐私保护智能家居架构

U. Aïvodji, S. Gambs, Alexandre Martin
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引用次数: 41

摘要

物联网(IoT)正缓慢而稳步地在我们的日常生活中变得越来越普遍。然而,它也带来了重要的安全和隐私挑战,特别是在智能家居等敏感环境中。在这篇意见书中,我们提出了一种新的智能家居架构,称为our,专注于安全和隐私方面,它将联邦学习与安全数据聚合相结合。我们希望我们的提议将为实现智能家居的更多安全和隐私提供一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IOTFLA : A Secured and Privacy-Preserving Smart Home Architecture Implementing Federated Learning
Slowly but steadily, the Internet of Things (IoT) is becoming more and more ubiquitous in our daily life. However, it also brings important security and privacy challenges along with it, especially in a sensitive context such as the smart home. In this position paper, we propose a novel architecture for smart home, called our, focusing on the security and privacy aspects, which combines federated learning with secure data aggregation. We hope that our proposition will provide a step forward towards achieving more security and privacy in smart homes.
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