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auditing-sft-dataset

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更新时间2026年6月17日 00:55

Audits a supervised fine-tuning (SFT) dataset before training across seven dimensions: schema and format validity, chat-template conformance, length-distribution sanity, duplicate detection (exact and near-duplicate), leakage against the held-out eval set, PII / sensitive-content detection with a user-supplied policy, and label-quality spot-check. Use when an SFT corpus has been assembled (scraped chats, synthetic demonstrations, human-annotated instructions, RLHF preference pairs converted to SFT) and the user is about to launch a fine-tune run. Refuses to certify the dataset without an explicit eval-set boundary and refuses to silently drop rows without a per-rule audit log.

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