Impact of application-driven multi-radio emulation in embedded devices on IETF LoWPAN standards

J. Azizov, O. Hidoev, J. Sangirov, D. Rahmatov
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引用次数: 1

Abstract

As global standards evolve on WPAN mobility, engineering design becomes more challenging for sensor nodes that form WPAN groups at random based on data sensing and acquisition (application) profiles. As sensor node platforms typically have computation blocks that can handle a minimal set of instructions (8 bit microcontrollers and less) and are greatly constrained (8KB static firmware footprint and 64KB RAM), the clear challenge in supporting multi-applications (and hence multi-radios) to enhance the sensor 's functionalities is the implementation of different radio and application profile stacks on the embedded system. The main design bottlenecks are system architecture optimization for multi-radio stacks, application-driven PHY/MAC emulation in the 8KB static firmware and of course, ensuring low power and high battery life. Our studies indicate that overcoming these embedded systems engineering bottlenecks in sensor node designs involves rethinking a few standards and raising the need to have new standards in the IETF LoWPAN WG. On this paper, we would like to show the need to introduce a new protocol in the LoWPAN WG derived from overcoming some of the sensor node design bottlenecks in seamless pervasive indoor environments.
嵌入式设备中应用驱动的多无线电仿真对IETF LoWPAN标准的影响
随着WPAN移动性全球标准的发展,基于数据感知和采集(应用)配置文件随机组成WPAN组的传感器节点的工程设计变得更具挑战性。由于传感器节点平台通常具有可以处理最小指令集(8位微控制器或更少)的计算块,并且受到很大限制(8KB静态固件占用空间和64KB RAM),因此支持多应用程序(因此多无线电)以增强传感器功能的明显挑战是在嵌入式系统上实现不同的无线电和应用程序配置文件堆栈。主要的设计瓶颈是针对多无线电堆栈的系统架构优化,8KB静态固件中应用驱动的PHY/MAC仿真,当然,还要确保低功耗和高电池寿命。我们的研究表明,克服传感器节点设计中的这些嵌入式系统工程瓶颈需要重新考虑一些标准,并在IETF LoWPAN工作组中提出新标准的需求。在本文中,我们希望展示在LoWPAN工作组中引入一种新协议的必要性,该协议源于克服无缝无处不在的室内环境中的一些传感器节点设计瓶颈。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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