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onPanda: Efficient Annotation of On-Policy Alignment Data for LLMs and Agents via Token-Level Correction

Researchers introduced onPanda, an interactive tool for annotating LLM alignment data and agent trajectories that uses token-level correction as its core interaction, letting annotators locate the first inappropriate token in a model response and pick a substitute. The tool targets efficient annotation of on-policy alignment data for LLMs and agents.

read1 min views1 publishedSep 22, 2026

We present onPanda, an interactive tool for efficiently annotating LLM alignment data and agent trajectories. onPanda adopts token-level correction as its core interaction: while reading a model response, the annotator locates the first inappropriate token and either picks a substitute from the mode

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