具有在物联网设备中部署压缩感知和矩阵补全技术的经验

Alexandros G. Fragkiadakis, Pavlos Charalampidis, Stefanos Papadakis, E. Tragos
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引用次数: 3

摘要

物联网(IoT)是一组有前途的技术,可以在许多领域提供创新的智能应用,从农业到建筑和工业控制。为了在各个领域提供智能应用程序,必须在大范围内部署大量设备,相互之间进行无线通信。这些物联网设备主要受资源限制,计算能力和电池寿命有限。此外,众所周知,无线设备中最耗能的操作是无线传输。因此,有一个严格的要求,延长这些设备的寿命,必须控制传输。此外,通信安全是许多智能应用中的一个关键问题,因为根据最近的研究,大多数现有的物联网设备缺乏安全的通信协议。本文旨在解决物联网世界中的这两个主要问题,提供一个使用压缩感知理论进行轻量级加密和数据压缩的框架,并讨论该框架在现实世界设备上的实施经验。此外,众所周知,由于其他无线协议(即WiFi)的并发传输,无线传感器的传输对丢包非常敏感。本文还介绍了在现实世界的物联网设备中应用矩阵补全技术的框架的实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experiences with deploying Compressive Sensing and Matrix Completion techniques in IoT devices
The Internet of Things (IoT) presents itself as a promising set of technologies for providing innovative smart applications in a number of domains, spreading from agriculture to buildings and industrial control. For providing smart applications in the various domains, large numbers of devices must be deployed within large areas, communicating wirelessly with each other. These IoT devices are mainly resource constrained, with limited computing capabilities and battery life. Furthermore, it is well-known that the most energy consuming operations in wireless devices is the wireless transmission. Thus, there is a strict requirement that to prolong the lifetime of these devices, the transmissions must be controlled. Additionally, communication security is a key issue in many smart applications, because, according to recent studies, there is a lack of secure communication protocols in most existing IoT devices. This paper aims to address these two main issues in the IoT world, providing a framework for lightweight encryption and compression of data using the Compressive Sensing theory, and discusses the experiences of the implementation of the framework on real world devices. Moreover, it is also well-known that the transmissions of wireless sensors are very sensitive to packet loss due to concurrent transmissions of other wireless protocols (i.e. WiFi). This paper also presents the implementation of a framework for applying Matrix Completion techniques in real world IoT devices.
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