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Trading off Latency against Security in Open Energy Metering Infrastructures

机译:在开放能源计量基础架构中权衡延迟与安全性

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摘要

Embedded devices are expected to transform the landscape of networked services in many domains, among them smart homes and smart grid systems. The reliable and optimised operation of smart grids is dependent on reliable data provided by end nodes (e.g. smart meters), and assurance of secure communication across networks. Understanding whether advanced security building blocks have a role to play in forthcoming infrastructures needs a basic understanding of each potential building block with respect to resource usage and impact on timing. In this paper we study the performance penalty of asymmetric cryptography techniques used for protection of wirelessly transmitted data in a prototype smart metering system. The prototype system is built using hardware and software components from “Open Energy Monitor” project using a wireless data link between the metering device and the data collector device. We investigate the use of the Elliptic Curve Integrated Encryption Scheme (ECIES) in two versions - with standard building blocks and with added Elliptic Curve Digital Signature Algorithm (ECDSA) support. The use of the ECDSA allows the system to achieve the non-repudiation property. We compare those cryptographic techniques with the Advanced Encryption Standard in Galois Counter Mode (AES-GCM) technique in two versions - with 128 bit and 256 bit keys. Performance is compared in terms of execution time of (1) preparing data, (2) unpacking it, and (3) roundtrip time. We then discuss the implications of the measurements, where the roundtrip time of sending one measurement ranges from 378 ms in case of AES128-GCM to 16.3 sec using ECIES with ECDSA.
机译:嵌入式设备有望改变许多领域的网络服务格局,其中包括智能家居和智能电网系统。智能电网的可靠和优化运行取决于终端节点(例如智能电表)提供的可靠数据以及跨网络安全通信的保证。要了解高级安全性构建基块是否在即将到来的基础架构中发挥作用,需要对每个潜在的构建基块在资源使用和对时序的影响方面有基本的了解。在本文中,我们研究了在原型智能计量系统中用于保护无线传输数据的非对称密码技术的性能损失。原型系统是使用“开放能源监控器”项目中的硬件和软件组件构建的,该系统使用了计量设备和数据收集器设备之间的无线数据链路。我们研究了两种版本的椭圆曲线集成加密方案(ECIES)的使用-具有标准构造块和附加的椭圆曲线数字签名算法(ECDSA)支持。 ECDSA的使用使系统可以实现不可否认性。我们将这些加密技术与Galois计数器模式下的高级加密标准(AES-GCM)技术进行了比较,分为两个版本-128位和256位密钥。根据(1)准备数据,(2)解压缩数据和(3)往返时间的执行时间比较性能。然后,我们讨论了测量的含义,其中发送一次测量的往返时间范围从AES128-GCM情况下的378毫秒到使用ECDSA的ECIES的16.3秒。

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