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NutriBench-Kitchen: Benchmarking Embodied AI for Nutrition Management

arXiv · AI, language, vision and robotics · article · Sep 7, 2026 · UTC

An embodied kitchen assistant must do more than recognize food in isolated frames. It must track ingredient states over time and integrate visual observations with recipe and nutritional knowledge to support constraint-aware decision-making. We formalize this capability as \emph{Embodied Nutrition Management}: perceiving nutrition-relevant events, maintaining a persistent food state, and using it for knowledge-grounded planning. Existing benchmarks evaluate static food understanding or embodied cooking actions, but do not measure whether an agent can continuously update and use nutrition-relev

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Evidence & attribution

First collected: 2026-09-20T20:52:10.320Z. This is not the publication date.