JOURNAL ARTICLE

On Software Defect Prediction Using Machine Learning

Jinsheng RenKe QinYing MaGuangchun Luo

Year: 2014 Journal:   Journal of Applied Mathematics Vol: 2014 Pages: 1-8   Publisher: Hindawi Publishing Corporation

Abstract

This paper mainly deals with how kernel method can be used for software defect prediction, since the class imbalance can greatly reduce the performance of defect prediction. In this paper, two classifiers, namely, the asymmetric kernel partial least squares classifier (AKPLSC) and asymmetric kernel principal component analysis classifier (AKPCAC), are proposed for solving the class imbalance problem. This is achieved by applying kernel function to the asymmetric partial least squares classifier and asymmetric principal component analysis classifier, respectively. The kernel function used for the two classifiers is Gaussian function. Experiments conducted on NASA and SOFTLAB data sets using F -measure, Friedman’s test, and Tukey’s test confirm the validity of our methods.

Keywords:
Kernel principal component analysis Classifier (UML) Principal component analysis Artificial intelligence Pattern recognition (psychology) Partial least squares regression Computer science Gaussian function Kernel (algebra) Machine learning Kernel method Variable kernel density estimation Mathematics Gaussian Support vector machine

Metrics

56
Cited By
11.30
FWCI (Field Weighted Citation Impact)
23
Refs
0.98
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Software Engineering Research
Physical Sciences →  Computer Science →  Information Systems
Imbalanced Data Classification Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Software Reliability and Analysis Research
Physical Sciences →  Computer Science →  Software

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