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Detection of outliers in time series data.

机译:检测时间序列数据中的异常值。

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摘要

This thesis presents the detection of time series outliers. The data set used in this work is provided by the GasDay Project at Marquette University, which produces mathematical models to predict the consumption of natural gas for Local Distribution Companies (LDCs). Flow with no outliers is required to develop and train accurate models. GasDay is using statistical approaches motivated by normally distributed samples such as the 3 -- sigma rule and the 5 -- sigma rule to aid the experts in detecting outliers in residuals from the models. However, the Jarque-Bera statistical test shows that the residuals from the GasDay models are not normally distributed.;We present an explanation of Density Based Spatial Clustering of Applications with Noise (DBSCAN) and how it is used to detect time series outliers. We have introduced a new application for the DBSCAN algorithm by adapting it to detect outliers in natural gas flow. The performance of DBSCAN is compared with GasDay's existing technique. Five data sets from temperature-sensitive operating areas with identified outliers and 1000 data sets with synthetic outliers are used in the evaluation process. The 1000 synthetic data sets are prepared using the same empirical distribution as one of the identified data set. This work indicates that DBSCAN has shown some improvement in detecting outliers over GasDays existing technique and merits further exploration.
机译:本文提出了时间序列离群值的检测。 Marquette大学的GasDay项目提供了这项工作中使用的数据集,该项目产生了数学模型来预测本地分销公司(LDC)的天然气消耗。开发和训练准确的模型需要没有异常值的流程。 GasDay正在使用以正态分布样本(例如3-sigma规则和5-sigma规则)为动力的统计方法,以帮助专家从模型中检测残差中的离群值。但是,Jarque-Bera统计测试表明,GasDay模型的残差不是正态分布。我们对基于噪声的应用程序的基于密度的空间聚类(DBSCAN)进行了解释,并说明了如何将其用于检测时间序列离群值。通过引入DBSCAN算法以检测天然气流量中的异常值,我们引入了一个新的应用程序。将DBSCAN的性能与GasDay的现有技术进行了比较。在评估过程中,使用了来自温度敏感型操作区域的五个已识别异常值的数据集和1000个具有综合异常值的数据集。使用与已识别数据集之一相同的经验分布来准备1000个综合数据集。这项工作表明,与GasDays现有技术相比,DBSCAN在检测异常值方面已显示出一些改进,值得进一步探索。

著录项

  • 作者

    Kiware, Samson.;

  • 作者单位

    Marquette University.;

  • 授予单位 Marquette University.;
  • 学科 Mathematics.;Computer Science.
  • 学位 M.S.
  • 年度 2010
  • 页码 88 p.
  • 总页数 88
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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