首页> 外文会议>2013 IEEE 3rd Eastern European Regional Conference on the Engineering of Computer Based Systems >An On-Line and Off-Line Pipeline-Based Architecture of the System for Gaps and Outlier Detection in Energy Data Stream
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An On-Line and Off-Line Pipeline-Based Architecture of the System for Gaps and Outlier Detection in Energy Data Stream

机译:基于在线和离线管道的体系结构,用于能源数据流中的间隙和异常值检测

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摘要

The quality of energy data (e.g. electric energy consumption, gas consumption data, energy production data) is very crucial issue in the energy domain. Low quality data is expressed in terms of large number of gaps and outliers in the data stream. These drawbacks can be caused by different reasons (e.g. devices faults, loss connections) but just-in-time detection of these cases is the mandatory step for further data handling. This paper describes an on-line and off-line pipeline-based architecture of a system for gaps and outlier detection in energy data streams. As decision making process is limited by time, it is proposed to split the data mining mechanism for gaps and outlier detection in real-time mode(on-line pipeline) from the adjustment mechanism of on-line pipeline's parameters (off-line pipeline). Each pipeline contains the sequence of filters for data handling. Filters in the on-line pipeline use only last input fraction of data. In contrast, filters in the off-line pipeline use all data stored in the data base. The results indicate that the proposed architecture allows to perform real-time gaps and outlier detection with the desired quality and constant latency despite increasing volume of data.
机译:能源数据的质量(例如电能消耗,气体消耗数据,能源生产数据)是能源领域中非常关键的问题。低质量数据表示为数据流中存在大量间隙和异常值。这些缺陷可能是由不同的原因造成的(例如设备故障,连接丢失),但是及时检测这些情况是进一步处理数据的必要步骤。本文介绍了一种基于在线和离线管道的体系结构,用于能源数据流中的间隙和异常值检测。由于决策过程受时间的限制,建议从在线管道参数的调整机制(离线管道)中分离出实时挖掘模式(在线管道)的数据挖掘机制,以用于间隙和离群值的检测。 。每个管道包含用于数据处理的过滤器序列。在线管道中的过滤器仅使用数据的最后输入部分。相反,离线管道中的过滤器使用存储在数据库中的所有数据。结果表明,尽管数据量增加,但所提出的体系结构仍允许以所需的质量和恒定的等待时间执行实时间隔和离群值检测。

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