首页> 外国专利> Fast Automated Detection of Seasonal Patterns in Time Series Data Without Prior Knowledge of Seasonal Periodicity

Fast Automated Detection of Seasonal Patterns in Time Series Data Without Prior Knowledge of Seasonal Periodicity

机译:快速自动检测时间序列数据中的季节模式,而无需事先了解季节周期性

摘要

A processing system receives a time series of values of a first metric corresponding to computing system performance. A computation module calculates an autocorrelation function (ACF) based on the time series of values across a set of values of tau. The spacing between each consecutive pair of values in the set of values of tau increases as tau increases. A local maxima extraction module identifies local maxima of the calculated ACF. A period determination module determines a significant period based on spacing between the local maxima and selectively outputs the significant period as a periodicity profile. A baseline profile indicating normal behavior of the first metric is generated based on the periodicity profile. An anomaly identification module selectively identifies an anomaly in present values of the first metric in response to the present values deviating outside the baseline profile.
机译:处理系统接收与计算系统性能相对应的第一度量的时间序列值。计算模块基于跨tau值集合的值的时间序列计算自相关函数(ACF)。 tau值集中的每对连续值对之间的间距随着tau的增加而增加。局部最大值提取模块识别所计算的ACF的局部最大值。周期确定模块基于局部最大值之间的间隔确定有效周期,并有选择地输出该有效周期作为周期性轮廓。基于周期性轮廓,生成指示第一度量的正常行为的基线轮廓。异常识别模块响应于当前值偏离基线简档而选择性地识别第一度量的当前值中的异常。

著录项

  • 公开/公告号US2018136994A1

    专利类型

  • 公开/公告日2018-05-17

    原文格式PDF

  • 申请/专利权人 ANODOT LTD.;

    申请/专利号US201615353709

  • 发明设计人 MEIR TOLEDANO;

    申请日2016-11-16

  • 分类号G06F11/07;

  • 国家 US

  • 入库时间 2022-08-21 13:05:05

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