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The Design of a Novel Smart Home Control System using Smart Grid Based on Edge and Cloud Computing

机译:基于边缘和云计算的基于智能电网的新型智能家居控制系统设计

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The Internet of Things (IoT) has transpired as a fascinating technology for smart cities, smart homes, and smart grids by using a vast amount of IoT data. A smart grid is one of the core components where transport, generation, delivery, and electricity consumption are enhanced in terms of protection and reliability. The existing power grid is suffering from many problems such as outages and unpredictable power disturbances, inflexible energy rates, unnoticeable customer fraud, and many other disadvantages. These problems lead to the ever-rising demand for fossil fuel and service costs. For example, the peak hour demand needs to be overestimated and more energy generated to minimize the risk of an outage. The main problem of the smart grid is the tremendous amount of data needs to be collected from the IoT devices, and processing the data is a challenge. Using and predicting a large amount of data in smart Grid and IoT is still in its infancy. To remedy this problem, we propose a hybrid solution by using the Cloud and Edge Computing to process the data. Processing and predicting at the edge that is close to the embedded devices and homes to save in latency and storage compared to putting all the processing in the Cloud. In this paper, we define a hybrid solution where we use the edge computing for the smart grid information processing where the microgrids are located on the edge of the IoT network, and on the Cloud to use for the power grid that distributes power to the microgrids. We proposed a machine learning engine that used the decision tree to establish the communication between the edge layer, failover between edges, and the Cloud layer.
机译:事物互联网(IOT)通过使用大量物联网数据作为智能城市,智能家庭和智能电网的迷人技术。智能电网是在保护和可靠性方面提高运输,发电,交付和电力的核心组件之一。现有的电网遭受许多问题,如中断和不可预测的电力干扰,不灵活的能源率,无疑的客户欺诈和许多其他缺点。这些问题导致了对化石燃料和服务成本的不断增长的需求。例如,最高时刻需求需要高估,产生更多的能量,以尽量减少中断的风险。智能电网的主要问题是需要从物联网设备收集的大量数据,处理数据是一个挑战。使用和预测智能电网和IOT中的大量数据仍处于起步阶段。要解决此问题,我们通过使用云和边沿计算来处理混合解决方案来处理数据。与云中的所有处理放入延迟和存储的边缘处理和预测,以保存延迟和存储器。在本文中,我们定义了一个混合解决方案,其中我们使用边缘计算的智能电网信息处理,其中微普林位于物联网边缘的边缘,云上用于将电网分配给MicroGrids的电网。我们提出了一种机器学习引擎,该引擎使用决策树来建立边缘层之间的通信,边缘之间的故障和云层。

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