JOURNAL ARTICLE

Diagnosa Kerusakan Bearing Menggunakan Principal Component Analysis (PCA) dan Naïve Bayes Classifier

Dwi PudyastutiToni PrahastoAchmad Widodo

Year: 2016 Journal:   JURNAL SISTEM INFORMASI BISNIS Vol: 6 (2)Pages: 114-114   Publisher: Diponegoro University

Abstract

This research is discussing about the usage of data mining which addressed for bearing fault diagnosis. Bearing was one of the essential parts in industry machinery. Bearing was used to reduce machines frictions or could be a moving component which oppressed each other. This fault diagnosis can avoid loss and damage of other machines components. This research was started with data preprocessing using wavelet discrete transformation, feature extraction, feature reduction using Principal Component Analysis (PCA), and classification process using Naïve Bayes classifier methods. Naïve Bayes Classifier is a classification method which based on probability and Bayesian theorem. Output of these method shows that Naïve Bayes classification have a good performance which shown by a good accuracy in each data test.

Keywords:
Naive Bayes classifier Artificial intelligence Principal component analysis Pattern recognition (psychology) Computer science Preprocessor Bayes' theorem Bayes classifier Classifier (UML) Bayes error rate Feature extraction Data mining Bayesian probability Machine learning Support vector machine

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Topics

Data Mining and Machine Learning Applications
Physical Sciences →  Computer Science →  Information Systems
Computer Science and Engineering
Physical Sciences →  Computer Science →  Artificial Intelligence
Information Retrieval and Data Mining
Physical Sciences →  Computer Science →  Information Systems

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