
Data Visualization and Knowledge Engineering: Spotting Data Points with Artificial Intelligence
Explores how artificial intelligence is used to identify and analyze complex data points. A significant portion of the material focuses on cross-project defect prediction, a method in software engineering that utilizes external datasets to anticipate errors in new software. The authors conduct experiments using machine learning classifiers and the SMOTE algorithm to demonstrate that predicting defects across different projects is as effective as traditional within-project methods. By addressing class imbalance issues through oversampling, the research highlights how specific object-oriented metrics can improve software quality and reliability. Additionally, the sources touch upon broader applications of these technologies, including recommendation systems for interactive entertainment and semantic segmentation for satellite imagery.
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Information
- Show
- FrequencyUpdated daily
- Published18 May 2026 at 06:00 UTC
- Length21 min
- RatingClean