Computer Science > Computation and Language
[Submitted on 19 May 2023 (v1), last revised 27 May 2024 (this version, v2)]
Title:Searching by Code: a New SearchBySnippet Dataset and SnippeR Retrieval Model for Searching by Code Snippets
View PDF HTML (experimental)Abstract:Code search is an important and well-studied task, but it usually means searching for code by a text query. We argue that using a code snippet (and possibly an error traceback) as a query while looking for bugfixing instructions and code samples is a natural use case not covered by prior art. Moreover, existing datasets use code comments rather than full-text descriptions as text, making them unsuitable for this use case. We present a new SearchBySnippet dataset implementing the search-by-code use case based on StackOverflow data; we show that on SearchBySnippet, existing architectures fall short of a simple BM25 baseline even after fine-tuning. We present a new single encoder model SnippeR that outperforms several strong baselines on SearchBySnippet with a result of 0.451 Recall@10; we propose the SearchBySnippet dataset and SnippeR as a new important benchmark for code search evaluation.
Submission history
From: Valentin Malykh [view email][v1] Fri, 19 May 2023 12:09:30 UTC (7,714 KB)
[v2] Mon, 27 May 2024 05:44:48 UTC (7,349 KB)
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