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Software Defect Prediction Using an Intelligent Ensemble-Based Model

delete2024-01-01
delete15
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OA
AI
M
Misbah Ali
T
Tehseen Mazhar *
A
Arif, Yasir
S
Shaha Al‐Otaibi
Y
Yazeed Yasin Ghadi
T
Tariq Shahzad
M
Muhammad Amir Khan *
H
Habib Hamam
DOI:10.1109/ACCESS.2024.3358201delete
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摘要

摘要

En 中文
Software defect prediction plays a crucial role in enhancing software quality while achieving cost savings in testing. Its primary objective is to identify and send only defective modules to the testing stage. This research introduces an intelligent ensemble-based software defect prediction model that combines diverse classifiers. The proposed model employs a two-stage prediction process to detect defective modules. In the first stage, four supervised machine learning algorithms are employed: Random Forest, Support Vector Machine, Naive Bayes, and Artificial Neural Network. These algorithms are optimized through iterative parameter optimization to achieve the highest accuracy possible. In the second stage, the predictive accuracy of the individual classifiers is integrated into a voting ensemble to make the final predictions. This ensemble approach further improves the accuracy and reliability of the defect predictions. Seven historical defect datasets from the NASA MDP repository, namely CM1, JM1, MC2, MW1, PC1, PC3, and PC4, were utilized to implement and evaluate the proposed defect prediction system. The results demonstrate that each dataset's proposed intelligent system achieved remarkable accuracy, outperforming twenty state-of-the-art defect prediction techniques, including base classifiers and ensemble methods.
Keyword:
Machine learning
Bayes methods
software defect prediction
ensemble classification
heterogeneous classifiers
random forest
support vector machine
naive Bayes

期刊

IEEE Access 封面图
IEEE Access
IF:
3.6
论文数:
9.8W
被引数:
29.4W

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V
Virtual University of Pakistan
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317
论文数: 269
被引数: 1
P
Princess Nourah bint Abdulrahman University
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8.3K
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被引数: 10
U
University of Johannesburg
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6.8K
论文数: 6.8K
被引数: 1.2W
U
Universiti Teknologi MARA
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5.7K
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U
University of Moncton
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1.0K
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被引数: 0
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