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Power-Adaptive Computing System Design for Solar-Energy-Powered Embedded Systems

机译:太阳能嵌入式系统的功率自适应计算系统设计

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Through energy harvesting system, new energy sources are made available immediately for many advanced applications based on environmentally embedded systems. However, the harvested power, such as the solar energy, varies significantly under different ambient conditions, which in turn affects the energy conversion efficiency. In this paper, we propose an approach for designing power-adaptive computing systems to maximize the energy utilization under variable solar power supply. Using the geometric programming technique, the proposed approach can generate a customized parallel computing structure effectively. Then, based on the prediction of the solar energy in the future time slots by a multilayer perceptron neural network, a convex model-based adaptation strategy is used to modulate the power behavior of the real-time computing system. The developed power-adaptive computing system is implemented on the hardware and evaluated by a solar harvesting system simulation framework for five applications. The results show that the developed power-adaptive systems can track the variable power supply better. The harvested solar energy utilization efficiency is 2.46 times better than the conventional static designs and the rule-based adaptation approaches. Taken together, the present thorough design approach for self-powered embedded computing systems has a better utilization of ambient energy sources.
机译:通过能量收集系统,新的能源可立即用于基于环境嵌入式系统的许多高级应用程序。然而,诸如太阳能之类的收获的功率在不同的环境条件下变化很大,这反过来又影响了能量转换效率。在本文中,我们提出了一种用于设计功率自适应计算系统的方法,以在可变太阳能电源下最大程度地利用能源。使用几何编程技术,所提出的方法可以有效地生成定制的并行计算结构。然后,基于多层感知器神经网络对未来时隙中太阳能的预测,使用基于凸模型的自适应策略来调制实时计算系统的功率行为。所开发的功率自适应计算系统在硬件上实现,并通过太阳能收集系统仿真框架针对五个应用进行了评估。结果表明,所开发的自适应系统可以更好地跟踪可变电源。与传统的静态设计和基于规则的适应方法相比,收获的太阳能利用效率高出2.46倍。综上所述,目前用于自供电嵌入式计算系统的全面设计方法具有对环境能源的更好利用。

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