Neural Code Search Revisited: Enhancing Code Snippet Retrieval through Natural Language Intent
August 27, 2020 Β· Declared Dead Β· π arXiv.org
"No code URL or promise found in abstract"
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Authors
Geert Heyman, Tom Van Cutsem
arXiv ID
2008.12193
Category
cs.IR: Information Retrieval
Cross-listed
cs.LG,
cs.SE
Citations
34
Venue
arXiv.org
Last Checked
4 months ago
Abstract
In this work, we propose and study annotated code search: the retrieval of code snippets paired with brief descriptions of their intent using natural language queries. On three benchmark datasets, we investigate how code retrieval systems can be improved by leveraging descriptions to better capture the intents of code snippets. Building on recent progress in transfer learning and natural language processing, we create a domain-specific retrieval model for code annotated with a natural language description. We find that our model yields significantly more relevant search results (with absolute gains up to 20.6% in mean reciprocal rank) compared to state-of-the-art code retrieval methods that do not use descriptions but attempt to compute the intent of snippets solely from unannotated code.
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