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Smart grid data mining and visualization

机译:智能电网数据挖掘和可视化

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摘要

The power industry innovation has increasingly become a top concern for current reforms. Power systems feature scattered data storage, incapable data analysis ability, poor computing capability, and ineffective interaction interface. To resolve these issues, we need multiple data mining techniques to extract information for analytical capacity improvement. Secondly, we need visualization techniques to analyze and optimize interaction. Lastly, we need distributed technologies for unified data management to increase computing capability and system scalability. Considering China's smart grid information, this paper proposes solutions to problems, such as the existing underdeveloped power management systems, a lack of automation methods, low data visualization, and poor data management. The electric power industry has functional requirements for this research. Based on existing data mining, visualization and understanding of distributed technologies, we discussed the functions of each part of the implementation in a smart grid management system: the data mining module, visualization module and data management module.
机译:电力行业创新越来越成为目前改革的最佳关注点。电源系统采用散射数据存储,无法数据分析能力,差的计算能力差,交互界面无效。为了解决这些问题,我们需要多种数据挖掘技术来提取分析能力改进的信息。其次,我们需要可视化技术来分析和优化交互。最后,我们需要分布式技术进行统一数据管理,以提高计算能力和系统可扩展性。考虑到中国的智能电网信息,本文提出了解决问题的解决方案,如现有的欠发达的电源管理系统,缺乏自动化方法,低数据可视化和数据管理差。电力行业对该研究具有功能性要求。基于现有数据挖掘,可视化和对分布式技术的理解,我们讨论了智能电网管理系统中实现的每个部分的功能:数据挖掘模块,可视化模块和数据管理模块。

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