Repaying architectural technical debt in 16 usable Apache codebase items increased average class connectivity, but the effect is negligible and smaller than changes seen in non-ATD files.
Deep Learning and Data Augmentation for Detecting Self-Admitted Technical Debt
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abstract
Self-Admitted Technical Debt (SATD) refers to circumstances where developers use textual artifacts to explain why the existing implementation is not optimal. Past research in detecting SATD has focused on either identifying SATD (classifying SATD items as SATD or not) or categorizing SATD (labeling instances as SATD that pertain to requirement, design, code, test debt, etc.). However, the performance of these approaches remains suboptimal, particularly for specific types of SATD, such as test and requirement debt, primarily due to extremely imbalanced datasets. To address these challenges, we build on earlier research by utilizing BiLSTM architecture for the binary identification of SATD and BERT architecture for categorizing different types of SATD. Despite their effectiveness, both architectures struggle with imbalanced data. Therefore, we employ a large language model data augmentation strategy to mitigate this issue. Furthermore, we introduce a two-step approach to identify and categorize SATD across various datasets derived from different artifacts. Our contributions include providing a balanced dataset for future SATD researchers and demonstrating that our approach significantly improves SATD identification and categorization performance compared to baseline methods.
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Tracing the Lifecycle of Architecture Technical Debt in Software Systems: A Dependency Approach
Repaying architectural technical debt in 16 usable Apache codebase items increased average class connectivity, but the effect is negligible and smaller than changes seen in non-ATD files.