shape-of-thought
Demonstrate that synthetic CoT traces with incorrect final answers outperform human-written correct solutions for supervised fine-tuning. Distribution proximity between training data and student model's natural output matters more than correctness—validating human traces with model-like distributions improves performance, providing practical guidance for dataset curation.
Source facts
- Repository
- ADu2021/skillXiv
- Last source activity
- March 24, 2026 at 19:42
- Detected SKILL.md language
- English
- Stars
- 6
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- 0
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