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RepEL: A Utility-Preserving Privacy System for IoT-Based Energy Meters

机译:击退:基于IOT的能量表的实用保留隐私系统

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Modern Internet of Things (IoT) applications transmit sensor data to the cloud where it is subjected to analytics to provide useful services to users. Unfortunately, IoT sensor data often embeds sensitive private information that is vulnerable to leakage when sent to the cloud. Prior work on preserving IoT data privacy, particularly in the energy domain, focuses on obfuscating data to prevent extraction of private information. However, unless done carefully, data obfuscation significantly reduces the ability to extract useful but non-private information from the data. As a result, these existing techniques also reduce much of the utility derived from deploying IoT devices. In this paper, we address this problem by designing RepEL, a new utility-preserving privacy technique, which intelligently obfuscates smart energy meter data to prevent leaking a home's private occupancy information, while retaining the ability to perform useful energy disaggregation analytics. To preserve energy data's utility, our approach creates a randomized permutation of actual device usage via load replay while suppressing private user behavior information (such as occupancy) in the original data. We implement our algorithm on an embedded gateway node to demonstrate its feasibility and empirically evaluate our approach using real energy traces from homes. Our results show that the privacy leak rate for nearly two-thirds of the homes is below 10%, with four homes having no privacy leak. At the same time, the change in device usage for these homes is less than 3%. Further, we also demonstrate that RepEL has the flexibility to randomly replay loads, which can prevent adversaries from inferring behavioral patterns from device usage or use the information to determine occupancy.
机译:现代物联网(IoT)应用程序将传感器数据传输到云,其中它受到分析以向用户提供有用的服务。不幸的是,IOT传感器数据通常嵌入敏感的私人信息,当发送到云时易受泄漏。在保留IOT数据隐私的事前,特别是在能量域中的工作,重点介绍对数据进行混淆,以防止提取私人信息。但是,除非仔细完成,否则数据混淆明显降低了从数据中提取有用而非私人信息的能力。因此,这些现有技术还减少了从部署IOT设备的大部分实用程序。在本文中,我们通过设计Repel来解决这个问题,这是一种新的效用保留隐私技术,它智能地使用智能能量表数据来防止泄露家庭的私人占用信息,同时保留执行有用的能量分类分析的能力。为了保留能量数据的实用程序,我们的方法通过负载重放创建实际设备使用的随机排列,同时抑制原始数据中的私有用户行为信息(例如占用)。我们在嵌入式网关节点上实现了我们的算法,以展示其可行性,并经验从家庭中使用真正的能量痕迹来评估我们的方法。我们的研究结果表明,近三分之二的房屋的隐私泄漏率低于10%,有四个家庭没有隐私泄漏。同时,这些房屋的设备使用情况小于3%。此外,我们还证明了refel对随机重放负载的灵活性,这可以防止对来自设备使用的行为模式的对手或使用该信息来确定占用。

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