边缘/物联网环境下基于快速傅里叶变换(FFT)的智能计量微服务开发

Alina Buzachis, A. Galletta, A. Celesti, M. Fazio, M. Villari
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引用次数: 11

摘要

近年来,物联网(IoT)新技术引起了人们的极大关注。如今,物联网概念已成为传统产品和服务的固有概念。随着物联网的快速发展,越来越多的小型智能设备通过互联网连接起来,实时监控、采集和交换数据,提供智能物联网即服务(IoTaaS)。几年前,物联网设备专门将数据发送到集中式云数据中心;今天,可以在网络边缘执行“机载”处理任务,随后在更接近用户的地方共享或使用获得的结果。本文以智能电网场景为重点,研究了为智能计量创建IoTaaS的可能性,包括能够使用快速傅里叶变换(FFT)算法获取和处理电气数据的物联网设备的微服务。特别是,我们实验使用运行在树莓派3设备上的智能计量IoTaaS对国内电网的频率信号进行谐波分析,以表征与电子设备(例如,智能电视,计算机等)相关的非线性负载,目的是监测其状态并防止可能的故障和故障。
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Development of a Smart Metering Microservice Based on Fast Fourier Transform (FFT) for Edge/Internet of Things Environments
In recent years, great attention has been given to new Internet of Things (IoT) technologies. The IoT concept is nowadays intrinsic to traditional products and services. With its rapid development, more and more small smart devices are connected over the Internet in order to monitor, collect and exchange data in real-time to provide smart IoT-as-a-Services (IoTaaS). A few years ago, IoT devices exclusively sent data to a centralized Cloud data center; today it is possible to perform "on board" processing tasks at the Edge of the network and subsequently share or use the obtained results closer to users. This paper, focusing on a smart grid scenario, investigates the possibility of creating an IoTaaS for smart metering, including a microservice for IoT devices capable of acquiring and processing electrical data using the Fast Fourier Transform (FFT) algorithm. In particular, we experimentally use the smart metering IoTaaS running on a Raspberry Pi 3 device to perform a harmonic analysis of a frequency signal of the domestic electrical grid in order to characterize the non-linear loads associated to the electronic devices (e.g., smart TV, computers, etc) with the purpose of monitoring their status and preventing possible malfunctions and faults.
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Machine Learning based Timeliness-Guaranteed and Energy-Efficient Task Assignment in Edge Computing Systems Development of a Smart Metering Microservice Based on Fast Fourier Transform (FFT) for Edge/Internet of Things Environments Enabling Fog Computing using Self-Organizing Compute Nodes Edge-to-Edge Resource Discovery using Metadata Replication ORCH: Distributed Orchestration Framework using Mobile Edge Devices
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