Billions of sensors are expected to be connected to the Internet through the emerging Internet of Things (IoT) technologies. Many of these sensors will primarily be connected using wireless technologies powered using batteries as their sole energy source which makes it paramount to optimize their energy consumption. In this paper, we provide an analytic framework of the energy-consumption profile and its lower bound for an IoT end device formulated based on Shannon capacity. We extend the study to model the average energy-consumption performance based on the random geometric distribution of IoT gateways by utilizing tools from stochastic geometry and real measurements of interference in the ISM-band. Experimental data, interference measurements and Monte-Carlo simulations are presented to validate the plausibility of the proposed analytic framework, where results demonstrate that the current network infrastructures performance is bounded between two extreme geometric models. This study considers interference seen by a gateway regardless of its source.
翻译:预计数十亿个传感器将通过新兴的物联网(IoT)技术与互联网连接,其中许多传感器将主要使用无线技术连接,这些无线技术以电池为动力,将电池作为唯一的能源来源,使优化能源消耗成为最重要的;在本文件中,我们提供了能源消耗剖面分析框架及其根据香农能力开发的IoT终端装置的下限。我们将这项研究扩大到根据IoT网关随机几何分布的能源平均消耗性能模型,方法是利用来自Stochatic几何测量和干扰ISM-波段实际测量的工具。实验数据、干扰测量和蒙特-卡洛模拟都用来验证拟议的分析框架的可信赖性,其结果表明目前的网络基础设施性能受两个极端几何模型的约束。本研究考虑了一个网关所看到的干扰,而不管其来源如何。