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2015
Conference Paper
Title

Big data analysis of manufacturing processes

Abstract
The high complexity of manufacturing processes and the continuously growing amount of data lead to excessive demands on the users with respect to process monitoring, data analysis and fault detection. For these reasons, problems and faults are often detected too late, maintenance intervals are chosen too short and optimization potential for higher output and increased energy efficiency is not sufficiently used. A possibility to cope with these challenges is the development of self-learning assistance systems, which identify relevant relationships by observation of complex manufacturing processes so that failures, anomalies and need for optimization are automatically detected. The assistance system developed in the present work accomplishes data acquisition, process monitoring and anomaly detection in industrial and agricultural processes. The assistance system is evaluated in three application cases: Large distillation columns, agricultural harvesting processes and large-scale sorting plants. In this paper, the developed infrastructures for data acquisition in these application cases are described as well as the developed algorithms and initial evaluation results.
Author(s)
Windmann, Stefan  
Maier, Alexander
Niggemann, Oliver
Frey, Christian  
Bernardi, Ansger
Gu, Ying
Pfrommer, Holger
Steckel, Thilo
Krüger, Michael
Kraus, Robert
Mainwork
12th European Workshop on Advanced Control and Diagnosis, ACD 2015  
Conference
European Workshop on Advanced Control and Diagnosis (ACD) 2015  
Open Access
File(s)
Download (2.48 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.24406/publica-r-390145
10.1088/1742-6596/659/1/012055
Language
English
Fraunhofer-Institut für Optronik, Systemtechnik und Bildauswertung IOSB  
Keyword(s)
  • NAT

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