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#software testing Preprint Sep 2026

Trajectory-Aware Benchmark Subset Selection for Cost-Efficient Software Engineering Agent Regression Testing

This work proposes a trajectory-aware subset selection approach that replaces random sampling with deterministic selection based on trajectory embeddings, and shows that a 10% trajectory-aware subset keeps the median estimation error below 5% while cutting token cost by roughly 90%.

Mahmoud Ayyad, Ze-Hao Wang, Ji-Ho Shin et al. · 0 citations

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