No / In recent years, several accidents in pioneer gas
processing industries led industries to put emphasis on real-time
fault detection. Neural Network (NN) based fault (abnormal
situation) detection technique played an important role in
monitoring industrial safety. In this work, an attempt has been
made to study the fault detection of Brahmanbaria gas
processing plant using multi layered feed forward NN based
system. NN based fault detection system is trained, validated
and tested using data generated using the dynamic model.
Preliminary results show that NN based method is able to detect
the faults of Brahmanbaria Gas processing plant for fewer no of
faults.
Identifer | oai:union.ndltd.org:BRADFORD/oai:bradscholars.brad.ac.uk:10454/10981 |
Date | 22 December 2014 |
Creators | Sowgath, Md Tanvir, Ahmed, S. |
Source Sets | Bradford Scholars |
Language | English |
Detected Language | English |
Type | Conference paper, No full-text in the repository |
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