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Unsupervised Pattern Discovery in Automotive Time Series

Unsupervised Pattern Discovery in Automotive Time Series

von Fabian Kai Dietrich Noering
Softcover - 9783658363352
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Beschreibung

In the last decade unsupervised pattern discovery in time series, i.e. the problem of finding recurrent similar subsequences in long multivariate time series without the need of querying subsequences, has earned more and more attention in research and industry. Pattern discovery was already successfully applied to various areas like seismology, medicine, robotics or music. Until now an application to automotive time series has not been investigated. This dissertation fills this desideratum by studying the special characteristics of vehicle sensor logs and proposing an appropriate approach for pattern discovery. To prove the benefit of pattern discovery methods in automotive applications, the algorithm is applied to construct representative driving cycles.

 

Pattern-based Construction of Representative Driving Cycles

Details

Verlag Springer Fachmedien Wiesbaden GmbH
Ersterscheinung 24. März 2022
Maße 21 cm x 14.8 cm
Gewicht 231 Gramm
Format Softcover
ISBN-13 9783658363352
Auflage 1st ed. 2022
Seiten 148

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