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Privacy-preserving data analytics in cloud-based smart home with community hierarchy

机译:具有社区层次结构的基于云的智能家居中的隐私保护数据分析

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The emergence of the Internet of Things (IoT) has led to increasing data volumes, which are expected to grow exponentially. The IoT has great potential to positively change society but also presents challenges regarding privacy. In practice, Smart community public housing projects involving tens of thousands of households have recently been implemented. This study proposed a privacy-preserving smart home system, which connects a single home controller with data-hiding capabilities through community networking and integrates the data to a hierarchical architecture on a cloud platform for a data analytical access control mechanism. In addition, this paper outlines a variety of smart home data applications through data collected from a smart community environment with the developed privacy protection mechanism. The monitoring and protecting mechanism combines privacy-enhancing technologies with a privacy-preserving strategy from the initial system-designing stage through to full data lifecycle management. The types of smart home data that can be obtained from a community hierarchy, such as identification values, sensitive data, and non-sensitive data, were collected and classified. Through a combination of empirical application and sophisticated exploration of theoretical knowledge, this paper substantially contributes to the home automation field. The proposed system architecture is expected to enable both easy understanding for users and compliance for analytical service providers regarding the operation, procedure, limitation, and benefits of smart home data analysis, thereby providing a solution that ensures both privacy and data availability.
机译:物联网(IoT)的出现导致数据量不断增加,并且有望成倍增长。物联网具有巨大的潜力,可以积极改变社会,但也带来了隐私方面的挑战。实际上,最近已经实施了涉及数万个家庭的智能社区公共住房项目。这项研究提出了一种保护隐私的智能家居系统,该系统通过社区网络将单个家庭控制器与具有数据隐藏功能的连接起来,并将数据集成到云平台上的分层体系结构中,以进行数据分析访问控制机制。此外,本文通过使用已开发的隐私保护机制从智能社区环境中收集的数据,概述了各种智能家居数据应用程序。从最初的系统设计阶段到完整的数据生命周期管理,监视和保护机制将隐私增强技术与隐私保护策略结合在一起。收集并分类可以从社区层次结构中获取的智能家居数据的类型,例如标识值,敏感数据和非敏感数据。通过将经验应用和对理论知识的深入探索相结合,本文为家庭自动化领域做出了巨大贡献。预期所提出的系统体系结构将使用户易于理解,并使分析服务提供商能够就智能家居数据分析的操作,过程,局限性和优势进行合规,从而提供一种确保隐私和数据可用性的解决方案。

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