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Research Article | Open Access |

Software Bug Prediction using Machine Learning Approach

Author 1: Awni Hammouri Author 2: Mustafa Hammad Author 3: Mohammad Alnabhan Author 4: Fatima Alsarayrah
International Journal of Advanced Computer Science and Applications (IJACSA) · Vol. 9, No. 2 · Published 2018 · Cited by 149

DOI: https://doi.org/10.14569/IJACSA.2018.090212

Abstract

Software Bug Prediction (SBP) is an important issue in software development and maintenance processes, which concerns with the overall of software successes. This is because predicting the software faults in earlier phase improves the software quality, reliability, efficiency and reduces the software cost. However, developing robust bug prediction model is a challenging task and many techniques have been proposed in the literature. This paper presents a software bug prediction model based on machine learning (ML) algorithms. Three supervised ML algorithms have been used to predict future software faults based on historical data. These classifiers are Naïve Bayes (NB), Decision Tree (DT) and Artificial Neural Networks (ANNs). The evaluation process showed that ML algorithms can be used effectively with high accuracy rate. Furthermore, a comparison measure is applied to compare the proposed prediction model with other approaches. The collected results showed that the ML approach has a better performance.

Keywords

How to Cite this Article

Hammouri, A., Hammad, M., Alnabhan, M., & Alsarayrah, F. (2018). Software Bug Prediction using Machine Learning Approach. International Journal of Advanced Computer Science and Applications, 9(2). https://doi.org/10.14569/IJACSA.2018.090212

Hammouri, Awni, et al.. "Software Bug Prediction using Machine Learning Approach." International Journal of Advanced Computer Science and Applications, vol. 9, no. 2, 2018, https://doi.org/10.14569/IJACSA.2018.090212.

@article{Hammouri2018,
  title     = {Software Bug Prediction using Machine Learning Approach},
  journal   = {International Journal of Advanced Computer Science and Applications},
  volume    = {9},
  number    = {2},
  year      = {2018},
  publisher = {The Science and Information Organization},
  author    = {Awni Hammouri and Mustafa Hammad and Mohammad Alnabhan and Fatima Alsarayrah},
  doi       = {10.14569/IJACSA.2018.090212},
  url       = {https://doi.org/10.14569/IJACSA.2018.090212}
}

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