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首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >Energy-Efficient Spectral Analysis Method Using Autoregressive Model-Based Approach for Internet of Things
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Energy-Efficient Spectral Analysis Method Using Autoregressive Model-Based Approach for Internet of Things

机译:基于自回归模型的物联网节能光谱分析方法

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This paper presents an energy-efficient spectral analysis method for the Internet of Things (IoT). The objective of this paper is to reduce the energy consumption of edge devices. The proposed method uses an autoregressive (AR) model for spectral analysis instead of the discrete Fourier transform, and its calculation process is distributed to the edge device and a base station by considering the energy consumption tradeoff of the data processing and the data communication. In this paper, the Yule-Walker method is employed for the AR coefficient calculation. The calculation process of Yule-Walker method can be divided into two parts: an autocorrelation calculation and an AR coefficient calculation. The autocorrelation calculation is implemented in the edge devices, and its dedicated hardware is designed using Verilog HDL. Meanwhile, the AR coefficient is calculated in the base station and is used for the spectral analysis. According to this distributed processing approach, the energy consumption of the edge device can be reduced compared with conventional DFT approaches using the fast Fourier transform (FFT). The system level energy consumption is evaluated assuming the IoT edge device, which has a wireless transceiver using Bluetooth low energy. The evaluation results show that the proposed method can reduce 79% of the edge device energy consumption for spectral analysis in a practical application.
机译:本文提出了一种用于物联网(IoT)的节能频谱分析方法。本文的目的是减少边缘设备的能耗。所提出的方法使用自回归(AR)模型进行频谱分析,而不是离散傅立叶变换,并且考虑到数据处理和数据通信的能耗折衷,将其计算过程分配给边缘设备和基站。本文采用Yule-Walker方法进行AR系数计算。 Yule-Walker方法的计算过程可分为两部分:自相关计算和AR系数计算。自相关计算在边缘设备中实现,其专用硬件是使用Verilog HDL设计的。同时,AR系数在基站中被计算并且用于频谱分析。根据这种分布式处理方法,与使用快速傅里叶变换(FFT)的常规DFT方法相比,可以减少边缘设备的能耗。假设使用具有低功耗蓝牙功能的无线收发器的IoT边缘设备,评估系统级能耗。评估结果表明,在实际应用中,该方法可以减少79%的边缘设备能耗。

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