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[HTML][HTML] An artificial intelligence framework on software bug triaging, technological evolution, and future challenges: A review
The timely release of defect-free software and the optimization of development costs depend
on efficient software bug triaging (SBT) techniques. SBT can also help in managing the vast …
on efficient software bug triaging (SBT) techniques. SBT can also help in managing the vast …
Linevul: A transformer-based line-level vulnerability prediction
Software vulnerabilities are prevalent in software systems, causing a variety of problems
including deadlock, information loss, or system failures. Thus, early predictions of software …
including deadlock, information loss, or system failures. Thus, early predictions of software …
Predicting the precise number of software defects: Are we there yet?
Abstract Context: Defect Number Prediction (DNP) models can offer more benefits than
classification-based defect prediction. Recently, many researchers proposed to employ …
classification-based defect prediction. Recently, many researchers proposed to employ …
Data quality matters: A case study on data label correctness for security bug report prediction
In the research of mining software repositories, we need to label a large amount of data to
construct a predictive model. The correctness of the labels will affect the performance of a …
construct a predictive model. The correctness of the labels will affect the performance of a …
The impact of automated parameter optimization on defect prediction models
Defect prediction models-classifiers that identify defect-prone software modules-have
configurable parameters that control their characteristics (eg, the number of trees in a …
configurable parameters that control their characteristics (eg, the number of trees in a …
Deepjit: an end-to-end deep learning framework for just-in-time defect prediction
Software quality assurance efforts often focus on identifying defective code. To find likely
defective code early, change-level defect prediction-aka. Just-In-Time (JIT) defect prediction …
defective code early, change-level defect prediction-aka. Just-In-Time (JIT) defect prediction …
Jitline: A simpler, better, faster, finer-grained just-in-time defect prediction
C Pornprasit… - 2021 IEEE/ACM 18th …, 2021 - ieeexplore.ieee.org
A Just-In-Time (JIT) defect prediction model is a classifier to predict if a commit is defect-
introducing. Recently, CC2Vec-a deep learning approach for Just-In-Time defect prediction …
introducing. Recently, CC2Vec-a deep learning approach for Just-In-Time defect prediction …
Assessing generalizability of codebert
Pre-trained models like BERT have achieved strong improvements on many natural
language processing (NLP) tasks, showing their great generalizability. The success of pre …
language processing (NLP) tasks, showing their great generalizability. The success of pre …
A comparative study of class rebalancing methods for security bug report classification
Identifying security bug reports (SBRs) accurately from a bug repository can reduce a
software product's security risk. However, the class imbalance problem exists for SBR …
software product's security risk. However, the class imbalance problem exists for SBR …
Deep just-in-time defect prediction: how far are we?
Defect prediction aims to automatically identify potential defective code with minimal human
intervention and has been widely studied in the literature. Just-in-Time (JIT) defect prediction …
intervention and has been widely studied in the literature. Just-in-Time (JIT) defect prediction …