Enhanced machine learning and data mining methods for analysing large hybrid electric vehicle fleets based on load spectrum data / Philipp Bergmeir.
2018
Q325.5
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Title
Enhanced machine learning and data mining methods for analysing large hybrid electric vehicle fleets based on load spectrum data / Philipp Bergmeir.
Author
ISBN
9783658203672 (electronic book)
3658203676 (electronic book)
9783658203665
3658203676 (electronic book)
9783658203665
Published
Wiesbaden, Germany : Springer Vieweg, 2018.
Language
English
Description
1 online resource (xxxii, 166 pages) : illustrations.
Item Number
10.1007/978-3-658-20367-2 doi
Call Number
Q325.5
Dewey Decimal Classification
006.3/1
Summary
Philipp Bergmeir works on the development and enhancement of data mining and machine learning methods with the aim of analysing automatically huge amounts of load spectrum data that are recorded for large hybrid electric vehicle fleets. In particular, he presents new approaches for uncovering and describing stress and usage patterns that are related to failures of selected components of the hybrid power-train. Contents Classifying Component Failures of a Vehicle Fleet Visualising Different Kinds of Vehicle Stress and Usage Identifying Usage and Stress Patterns in a Vehicle Fleet Target Groups Students and scientists in the field of automotive engineering and data science Engineers in the automotive industry About the Author Philipp Bergmeir did a PhD in the doctoral program “Promotionskolleg HYBRID” at the Institute for Internal Combustion Engines and Automotive Engineering, University of Stuttgart, in cooperation with the Esslingen University of Applied Sciences and a well-known vehicle manufacturer. Currently, he is working as a data scientist in the automotive industry.
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Source of Description
Online resource; title from PDF title page (SpringerLink, viewed December 7, 2017).
Series
Wissenschaftliche Reihe Fahrzeugtechnik Universität Stuttgart
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