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#artificial intelligence Preprint Aug 2026

Learning to Follow In-Context Watermark Instructions via Self-Distillation

This work proposes a self-contained two-stage training method, requiring no distillation from a stronger model, no manual annotation, and no pre-existing ICW IF ability, and introduces $\mathsf{ICWBench}$, a benchmark of three verifiable ICW instruction families, each scored on both detectability and answer quality.

Yepeng Liu, Tian-Yi Chen, Xuandong Zhao et al. · 0 citations

Dataset Protection via Watermarked Canaries in Retrieval-Augmented LLMs

This work introduces a novel approach, \textit{CanaryTrace}, to safeguard the ownership of text datasets and effectively detect unauthorized use by RA-LLMs, and demonstrates high query efficiency, detectability, and consistency, along with minimal perturbation to the original dataset, all without compromising the performance of the RAG system.

Yepeng Liu, Xuandong Zhao, D. Song et al. · 15 citations · ⚡1

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