A Model-Based Anomaly Detection Approach for Analyzing Streaming Aircraft Engine Measurement Data
Author(s) -
Donald L. Simon,
Aidan Rinehart
Publication year - 2014
Publication title -
volume 6: ceramics; controls, diagnostics and instrumentation; education; manufacturing materials and metallurgy
Language(s) - English
Resource type - Conference proceedings
DOI - 10.1115/gt2014-27172
Subject(s) - trim , anomaly detection , computer science , fault detection and isolation , fault (geology) , anomaly (physics) , data modeling , test data , operating point , piecewise , real time computing , data mining , engineering , artificial intelligence , mathematical analysis , physics , mathematics , condensed matter physics , database , seismology , actuator , programming language , geology , operating system , electrical engineering
This paper presents a model-based anomaly detection architecture designed for analyzing streaming transient aircraft engine measurement data. The technique calculates and monitors residuals between sensed engine outputs and model predicted outputs for anomaly detection purposes. Pivotal to the performance of this technique is the ability to construct a model that accurately reflects the nominal operating performance of the engine. The dynamic model applied in the architecture is a piecewise linear design comprising steady-state trim points and dynamic state space matrices. A simple curve-fitting technique for updating the model trim point information based on steadystate information extracted from available nominal engine measurement data is presented. Results from the application of the model-based approach for processing actual engine test data are shown. These include both nominal fault-free test case data and seeded fault test case data. The results indicate that the updates applied to improve the model trim point information also improve anomaly detection performance. Recommendations for follow-on enhancements to the technique are also presented and discussed.
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