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US Patent 11803773 Machine learning-based anomaly detection using time series decomposition

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Contents

Is a
Patent
Patent

Patent attributes

Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
Patent Number
11803773
Patent Inventor Names
Peter Beale
Zachary W. Arnold
Bina K. Thakkar
Date of Patent
October 31, 2023
Patent Application Number
16526103
Date Filed
July 30, 2019
Patent Citations
‌
US Patent 9323599 Time series metric data modeling and prediction
‌
US Patent 10102056 Anomaly detection using machine learning
‌
US Patent 10972491 Anomaly detection with missing values and forecasting data streams
‌
US Patent 10248533 Detection of anomalous computer behavior
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US Patent 10990891 Predictive modeling for aggregated metrics
‌
US Patent 7783510 Computer storage capacity forecasting system using cluster-based seasonality analysis
‌
US Patent 7904330 Event type estimation system, event type estimation method, and event type estimation program stored in recording media
Patent Primary Examiner
‌
Gabriel Chu
CPC Code
‌
H04L 43/0823
‌
H04L 43/0852
‌
G06F 11/3072
‌
G06F 11/0781
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G06F 11/3006
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H04L 43/08
Patent abstract

Methods, apparatus, and processor-readable storage media for machine learning-based anomaly detection using time series decomposition are provided herein. An example computer-implemented method includes processing, via machine learning techniques pertaining to time series decomposition functions, a first set of historical time series data derived from multiple systems within an enterprise; generating, based on the processed data, one or more pairs of upper bounds and lower bounds directed to system metrics; identifying system anomalies attributed to one or more of the multiple systems within the enterprise by comparing a second set of historical time series data derived from the one or more systems against the one or more pairs of upper bounds and lower bounds; prioritizing, via machine learning techniques pertaining to weighting functions, the system anomalies; and outputting, in accordance with the prioritization, the system anomalies to a user within the enterprise.

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