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Abstract
The rapid capability gains of frontier language models are widely attributed to improved reasoning abilities, yet this cannot be verified as raw CoT traces in closed-source systems are hidden. By registering a simple custom tool through a standard API feature, we induce frontier models to externalize intermediate reasoning. Because these traces may reflect post-hoc rationalization rather than genuine reasoning, we first evaluate against native CoT on open-source models and extend to closed-source frontier models including GPT-6 Astra. We find that the extracted reasoning matches native reasoning performance and substantially outperforms no-reasoning baselines, across competition mathematics, science, and code generation. We then characterize how frontier models structure their intermediate reasoning. Across token efficiency, reasoning-step types, and induced reasoning trees, we identify systematic differences in how models externalize, compress, and organize reasoning. We find that Astra exhibits token-efficient directed reasoning, selecting a correct trajectory earlier, while resolving elementary steps internally and externalizing only crucial reasoning. These findings provide a behavioral lens on frontier-model reasoning beyond benchmark scores.
| Original language | English |
|---|---|
| Number of pages | 33 |
| DOIs | |
| Publication status | Published - 22 Sept 2026 |
Keywords
- cs.CL
- cs.AI
- cs.CR
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Dive into the research topics of 'Capable yet Parsimonious: Extracting and Characterizing Hidden Chain-of-Thought in Frontier Models'. Together they form a unique fingerprint.Projects
- 4 Active
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TRUST: Building TRUST in Text: Linguistically Motivated Language Model Detection
Bjerva, J. (PI)
Independent Research Fund Denmark | Sapere Aude
01/05/2026 → 30/04/2030
Project: Research
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LM2-SEC: Linguistically Motivated Language Model Security
Bjerva, J. (PI), Lent, H. C. (Project Participant), Biswas, R. (Project Participant) & Ploeger, E. (Project Participant)
01/09/2025 → 31/08/2030
Project: Research
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