Energy-aware HW/SW Co-modeling of Batteryless Wireless Sensor Nodes

S. C. B. Wong, Sivert T. Sliper, William Wang, A. Weddell, S. Gauthier, G. Merrett
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引用次数: 2

Abstract

Energy harvesting wireless sensor nodes are sensitive to spatial and temporal fluctuations in energy availability. This issue is especially prevalent in batteryless systems, where devices are directly connected to power sources with little or no buffering. The strong coupling of energy supply and demand introduces a new dimension to the problem of designing robust networked sensing systems. We propose a modeling framework for this class of batteryless systems with an emphasis on the interactions between energy and function. The tool models energy harvesters, power management circuitry, energy storage, microcontrollers, sensors, radio modules, environmental models, and is fully extensible. The microcontroller model is based on cycle-accurate instruction set simulators from Fused, with various peripheral extensions to enable board-level functionality, such as SPI, DMA, hardware multiplier etc. The tool enables virtual prototyping of self-powered wireless sensor nodes, but is especially useful for studying intermittent operation and developing application specific software, hardware, or combined solutions. The simulator is capable of executing real workloads under realistic conditions and this is demonstrated through a case study where the same compiled binary is executed on a virtual prototype and its corresponding physical wireless sensor system to yield matching digital traces and current profiles
无电池无线传感器节点的能量感知软硬件协同建模
能量收集无线传感器节点对能量可用性的时空波动非常敏感。这个问题在无电池系统中尤其普遍,因为设备直接连接到很少或没有缓冲的电源。能源供需的强耦合为设计鲁棒网络传感系统提出了一个新的问题。我们提出了这类无电池系统的建模框架,重点是能量和功能之间的相互作用。该工具对能量采集器、电源管理电路、能量存储、微控制器、传感器、无线电模块、环境模型进行建模,并且是完全可扩展的。微控制器模型基于fuse的周期精确指令集模拟器,具有各种外设扩展,以实现板级功能,如SPI, DMA,硬件乘子等。该工具支持自供电无线传感器节点的虚拟原型,但对于研究间歇操作和开发特定应用的软件、硬件或组合解决方案特别有用。该模拟器能够在现实条件下执行实际工作负载,并通过一个案例研究来证明这一点,在该案例研究中,在虚拟原型及其相应的物理无线传感器系统上执行相同的编译二进制文件,以产生匹配的数字迹线和电流概况
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