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Faults Discovery By Using Mined DataFault discovery in the complex systems consist of model based reasoning, fault tree analysis, rule based inference methods, and other approaches. Model based reasoning builds models for the systems either by mathematic formulations or by experiment model. Fault Tree Analysis shows the possible causes of a system malfunction by enumerating the suspect components and their respective failure modes that may have induced the problem. The rule based inference build the model based on the expert knowledge. Those models and methods have one thing in common; they have presumed some prior-conditions. Complex systems often use fault trees to analyze the faults. Fault diagnosis, when error occurs, is performed by engineers and analysts performing extensive examination of all data gathered during the mission. International Space Station (ISS) control center operates on the data feedback from the system and decisions are made based on threshold values by using fault trees. Since those decision-making tasks are safety critical and must be done promptly, the engineers who manually analyze the data are facing time challenge. To automate this process, this paper present an approach that uses decision trees to discover fault from data in real-time and capture the contents of fault trees as the initial state of the trees.
Document ID
20050240156
Acquisition Source
Ames Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Lee, Charles
(Science Applications International Corp. Moffett Field, CA, United States)
Date Acquired
September 7, 2013
Publication Date
January 1, 2005
Subject Category
Computer Programming And Software
Meeting Information
Meeting: International Conference on Machine Learning Model Technologies and Application
Location: Las Vegas, NV
Country: United States
Start Date: June 27, 2005
End Date: June 30, 2005
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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