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arXiv AI

Enhancing Software Engineering Agents via Scaling Test-Time Compute

By Advanced AI EditorApril 9, 2025No Comments2 Mins Read
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[Submitted on 31 Mar 2025 (v1), last revised 8 Apr 2025 (this version, v2)]

View a PDF of the paper titled Thinking Longer, Not Larger: Enhancing Software Engineering Agents via Scaling Test-Time Compute, by Yingwei Ma and 7 other authors

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Abstract:Recent advancements in software engineering agents have demonstrated promising capabilities in automating program improvements. However, their reliance on closed-source or resource-intensive models introduces significant deployment challenges in private environments, prompting a critical question: \textit{How can personally deployable open-source LLMs achieve comparable code reasoning performance?}

To this end, we propose a unified Test-Time Compute scaling framework that leverages increased inference-time computation instead of larger models. Our framework incorporates two complementary strategies: internal TTC and external TTC. Internally, we introduce a \textit{development-contextualized trajectory synthesis} method leveraging real-world software repositories to bootstrap multi-stage reasoning processes, such as fault localization and patch generation. We further enhance trajectory quality through rejection sampling, rigorously evaluating trajectories along accuracy and complexity. Externally, we propose a novel \textit{development-process-based search} strategy guided by reward models and execution verification. This approach enables targeted computational allocation at critical development decision points, overcoming limitations of existing “end-point only” verification methods.

Evaluations on SWE-bench Verified demonstrate our \textbf{32B model achieves a 46\% issue resolution rate}, surpassing significantly larger models such as DeepSeek R1 671B and OpenAI o1. Additionally, we provide the empirical validation of the test-time scaling phenomenon within SWE agents, revealing that \textbf{models dynamically allocate more tokens to increasingly challenging problems}, effectively enhancing reasoning capabilities. We publicly release all training data, models, and code to facilitate future research. this https URL

Submission history

From: Yingwei Ma [view email]
[v1]
Mon, 31 Mar 2025 07:31:32 UTC (2,462 KB)
[v2]
Tue, 8 Apr 2025 12:36:08 UTC (2,462 KB)



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