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A framework of concurrent task scheduling and dynamic voltage and frequency scaling in real-time embedded systems with energy harvesting

机译:A framework of concurrent task scheduling and dynamic voltage and frequency scaling in real-time embedded systems with energy harvesting

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Energy harvesting is a promising technique to overcome the limitation imposed by the finite energy capacity of batteries in conventional battery-powered embedded systems. In particular, the question of how one can achieve full energy autonomy (i.e., perpetual, battery-free operation) of a real-time embedded system with an energy harvesting capability (RTES-EH) by applying a global control strategy is investigated. The energy harvesting module is comprised of a Photovoltaic (PV) panel for harvesting energy and a supercapacitor for storing any excess energy. The global controller performs optimal operating point tracking for the PV panel, state-of-charge management for the supercapacitor, and energy-harvesting-aware real-time task scheduling with dynamic voltage and frequency scaling (DVFS) in the embedded load device. The controller, which accounts for dynamic V-I characteristics of the PV panel, terminal voltage variation and self-leakage of the supercapacitor, and power losses in voltage converters, employs a cascaded feedback control structure with an inner control loop determining the V-I operating point of the PV panel and an outer supervisory control loop performing real-time task scheduling and setting the voltage and frequency level in the embedded load device (to keep the state-of-charge of the supercapacitor in a desirable range). Experimental results show that the proposed global controller lowers the task drop rate in a RTES-EH by up to 60% compared with baseline controller within the same service time.
机译:在传统的电池供电的嵌入式系统中,能量收集是克服电池有限能量限制的一种很有前途的技术。特别是,研究了如何通过应用全局控制策略实现具有能量收集能力(RTES-EH)的实时嵌入式系统的完全能量自主权(即永久、无电池运行)。能量收集模块由用于收集能量的光伏(PV)板和用于存储任何多余能量的超级电容器组成。全局控制器执行光伏板的最佳工作点跟踪、超级电容器的充电状态管理,以及嵌入式负载设备中具有动态电压和频率缩放(DVFS)的能量收集感知实时任务调度。该控制器考虑了光伏板的动态V-I特性、超级电容器的终端电压变化和自泄漏,以及电压转换器中的功率损耗,采用级联反馈控制结构,内部控制回路确定光伏板的V-I工作点,外部监控回路执行实时任务调度,并在嵌入式负载设备中设置电压和频率水平(以将超级电容器的充电状态保持在理想范围内)。实验结果表明,与基线控制器相比,在相同的服务时间内,所提出的全局控制器将RTES-EH中的任务丢失率降低了60%。

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