Invention Grant
- Patent Title: Robust forecasting techniques with reduced sensitivity to anomalous data
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Application No.: US12726188Application Date: 2010-03-17
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Publication No.: US08370194B2Publication Date: 2013-02-05
- Inventor: Samvid H. Dwarakanath , Monty VanderBilt , John M. Zook
- Applicant: Samvid H. Dwarakanath , Monty VanderBilt , John M. Zook
- Applicant Address: US NV Reno
- Assignee: Amazon Technologies, Inc.
- Current Assignee: Amazon Technologies, Inc.
- Current Assignee Address: US NV Reno
- Agency: Knobbe, Martens, Olson & Bear, LLP
- Main IPC: G06F9/46
- IPC: G06F9/46

Abstract:
Robust forecasting techniques are relatively immune from anomalies or outliers in observed data, such as a stream of data values reflective of the operation or use of a computer system. One robust technique provides a relatively accurate forecast of seasonal behavior even in the presence of an anomaly in corresponding historical data. Another robust forecasting technique provides a relatively accurate forecast even in the presence of an anomaly that spans multiple recent observations. In one embodiment, both techniques are used in combination to automatically detect anomalies in the operation and/or use of a multi-user computer system.
Public/Granted literature
- US20100185499A1 ROBUST FORECASTING TECHNIQUES WITH REDUCED SENSITIVITY TO ANOMALOUS DATA Public/Granted day:2010-07-22
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