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Decision support system using artificial immune recognition system for fault classification of centrifugal pump

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TLDR
This paper compares the fault classification efficiency of AIRS with hybrid systems such as principle component analysis (PCA)-Naive Bayes and PCA-Bayes Net and it is observed that the AIRS-based system outperforms the other two methods considered in the present study.
Abstract
Centrifugal pumps are a crucial part of many industrial plants. Early detection of faults in pumps can increase their reliability, reduce energy consumption, service and maintenance costs, and increase their life-cycle and safety, thus resulting in a significant reduction in life-time costs. Vibration analysis is a very popular tool for condition monitoring of machinery like pumps, turbines and compressors. The proposed method is based on a novel immune inspired supervised learning algorithm which is known as artificial immune recognition system (AIRS). This paper compares the fault classification efficiency of AIRS with hybrid systems such as principle component analysis (PCA)-Naive Bayes and PCA-Bayes Net. The robustness of the proposed method is examined using its classification accuracy and kappa statistics. It is observed that the AIRS-based system outperforms the other two methods considered in the present study.

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Citations
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Journal ArticleDOI

A comparative study of Naïve Bayes classifier and Bayes net classifier for fault diagnosis of monoblock centrifugal pump using wavelet analysis

TL;DR: A vibration based condition monitoring system for monoblock centrifugal pumps and the use of Naive Bayes algorithm and Bayes net algorithm for fault diagnosis through discrete wavelet features extracted from vibration signals of good and faulty conditions of the components of centrifugal pump is presented.
Journal ArticleDOI

A flexible algorithm for fault diagnosis in a centrifugal pump with corrupted data and noise based on ANN and support vector machine with hyper-parameters optimization

TL;DR: A unique flexible algorithm is proposed for classifying the condition of centrifugal pump based on support vector machine hyper-parameters optimization and artificial neural networks (ANNs) which are composed of eight distinct steps.
Journal ArticleDOI

Comparison of dimensionality reduction techniques for the fault diagnosis of mono block centrifugal pump using vibration signals

TL;DR: In the present study, statistical features derived from the vibration data are used as the features and the reduced feature set is classified using a decision tree to bring out the better dimensionality reduction technique–classifier combination.
Journal ArticleDOI

Re-visiting the artificial immune recognition system: a survey and an improved version

TL;DR: Experiments of the new AIRS3 algorithm on data sets taken from the UCI machine learning repository have shown that taking into account the numRepAg information enhances the classification accuracy of AIRS.
Journal ArticleDOI

Diagnostics of industrial equipment and faults prediction based on modified algorithms of artificial immune systems

TL;DR: The proposed diagnostic system allows to reduce the financial risks of an enterprise associated with equipment faults by predicting possible failures, the possibility of planning maintenance, reducing the time for equipment repair and increasing the reliability of production.
References
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Book

Artificial Immune Systems: A New Computational Intelligence Approach

TL;DR: The AIS in Context with Other Computational Intelligence Paradigms and Case Studies shows how the immune system in context with other biological systems and other paradigms has changed since the 1970s.
Book

Artificial Immune Systems: A New Computational Intelligence Paradigm

TL;DR: The best ebooks about Artificial Immune Systems A New Computational Intelligence Paradigm that you can get for free here by download this artificial immune systems A new computational intelligence Paradigm and save to your desktop.
Journal ArticleDOI

Artificial neural networks and support vector machines with genetic algorithm for bearing fault detection

TL;DR: A study to compare the performance of bearing fault detection using two different classifiers, namely, artificial neural networks and support vector machines (SMVs), using time-domain vibration signals of a rotating machine with normal and defective bearings.
Journal ArticleDOI

A resource limited artificial immune system for data analysis

TL;DR: It is argued that this new resource-based mechanism is a large step forward in making AISs a viable contender for effective unsupervised machine learning and allows for not just a one shot learning mechanism, but a continual learning model to be developed.
Book

Computational Intelligence and Feature Selection: Rough and Fuzzy Approaches

Richard Jensen, +1 more
TL;DR: Computational Intelligence and Feature Selection provides a high level audience with both the background and fundamental ideas behind feature selection with an emphasis on those techniques based on rough and fuzzy sets, including their hybridizations.
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