Structure-Aware Corpus Construction and User-Perception-Aligned Metrics for Large-Language-Model Code Completion
May 19, 2025 Β· Declared Dead Β· π arXiv.org
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Authors
Dengfeng Liu, Jucai Zhai, Xiaoguang Jiang, Ziqun Li, Qianjin Yu, Feng Liu, Rui Ye, Huang Liu, Zhiguo Yang, Yongsheng Du, Fang Tan
arXiv ID
2505.13073
Category
cs.SE: Software Engineering
Cross-listed
cs.AI
Citations
0
Venue
arXiv.org
Last Checked
5 months ago
Abstract
Code completion technology based on large language model has significantly improved the development efficiency of programmers. However, in practical applications, there remains a gap between current commonly used code completion evaluation metrics and users' actual perception. To address this issue, we propose two evaluation metrics for code completion tasks--LCP and ROUGE-LCP, from the perspective of probabilistic modeling. Furthermore, to tackle the lack of effective structural semantic modeling and cross-module dependency information in LLMs for repository-level code completion scenarios, we propose a data processing method based on a Structure-Preserving and Semantically-Reordered Code Graph (SPSR-Graph). Through theoretical analysis and experimental validation, we demonstrate the superiority of the proposed evaluation metrics in terms of user perception consistency, as well as the effectiveness of the data processing method in enhancing model performance.
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