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Bayesian Prediction-Based Energy-Saving Algorithm for Embedded Intelligent Terminal

机译:基于贝叶斯预测的嵌入式智能终端节能算法

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摘要

The Internet of Things (IoT) has received an increasing attention in recent years. Embedded intelligent terminal (EIT), an indispensable part of IoT, works not only as a sensor but also as a primary processor. Due to the limited power resource of EIT, it is important to study how to improve the efficiency of its power use. To tackle this problem, we propose an energy-saving algorithm, Bayesian idle time prediction (BIP). The basic idea of BIP is to explore historical information and obtain a better estimation of idle time. In this paper, we provide a theoretical analysis of BIP and compare our method with three existing algorithms [weighted idle-time-prediction (IP) algorithm, IP algorithm, and running time fixed threshold in IP algorithm] with respect to energy-saving potential, as well as system delay under a random number of tasks. Both simulation and field experiment results demonstrate the advantages of our algorithm in energy saving.
机译:近年来,物联网(IoT)受到越来越多的关注。嵌入式智能终端(EIT)是物联网中不可或缺的一部分,它不仅可以充当传感器,还可以充当主处理器。由于EIT的电力资源有限,因此研究如何提高其电力使用效率非常重要。为了解决这个问题,我们提出了一种节能算法,即贝叶斯空闲时间预测(BIP)。 BIP的基本思想是探索历史信息并更好地估计空闲时间。在本文中,我们提供了BIP的理论分析,并将我们的方法与三种现有算法[节能时间预测加权(IP)算法,IP算法以及IP算法中的运行时间固定阈值]进行了节能对比。 ,以及随机任务数下的系统延迟。仿真和现场实验结果均表明了该算法在节能方面的优势。

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