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  4. Cloud-based event detection platform for water distribution networks using machine-learning algorithms
 
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2015
Journal Article
Title

Cloud-based event detection platform for water distribution networks using machine-learning algorithms

Abstract
Modern water distribution networks are equipped with a large amount of sensors to monitor the drinking water quality. To detect anomalies, usually each sensor contains its own threshold, but machine-learning algorithms become an alternative to reduce the parametrization effort. Still, one reason why they are not used in practice is the geographical restricted data access. Data is stored at the plant, but data scientists needed for the data analysis are situated elsewhere. To overcome this challenge, this paper proposes a cloud-based event-detection and reporting platform, which provides a possibility to use machine learning algorithms. The plants measurements are cyclically transferred into a secure cloud service where they are downloaded and analyzed from the data scientist. Results are made available as reports.
Author(s)
Kühnert, Christian  
Baruthio, M.
Bernard, Thomas  
Steinmetz, C.
Weber, J.-M.
Journal
Procedia Engineering  
Conference
International Conference on Computing and Control for the Water Industry (CCWI) 2015  
Open Access
DOI
10.24406/publica-r-241047
10.1016/j.proeng.2015.08.963
File(s)
N-360535.pdf (915.9 KB)
Language
English
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Keyword(s)
  • machine learning

  • time series analysis

  • event-detection

  • cloud-based service

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