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SemAnCorr: Semantic Anchored Correspondence for Zero-Shot Manipulation Skill Transfer

Authors

Do you know Xiaoxiang Dong?You can claim authorship or link another user.Do you know William Baron?You can claim authorship or link another user.Do you know Hongyi Chen?You can claim authorship or link another user.Do you know Uksang Yoo?You can claim authorship or link another user.Do you know Jeffrey Ichnowski?You can claim authorship or link another user.Do you know Weiming Zhi?You can claim authorship or link another user.

Abstract

Transferring manipulation skills across object instances that share functionality but differ in geometry remains a fundamental challenge in robot learning. While recent correspondence methods leverage dense visual descriptors and 3D feature fields, nearest-neighbor feature matching often produces spatially incoherent correspondences that fail to recover the local geometric frames required for reliable skill transfer. We introduce SemAnCorr, a training-free framework that establishes dense correspondence by selecting semantically consistent anchor regions through joint pose-correspondence optimization and propagating these constraints over the object surface using functional maps. The resulting correspondences preserve both semantic consistency and geometric coherence, enabling object-centric manipulation skills to transfer across geometrically diverse instances. We evaluate SemAnCorr on a dense correspondence benchmark built on PartNet-Mobility, achieving 90.8% semantic accuracy in our benchmark evaluation while improving geometric coherence over recent state-of-the-art baselines. Finally, we show that these improvements translate directly into real-world manipulation performance: using a single demonstration, SemAnCorr enables substantially more reliable zero-shot manipulation skill transfer to previously unseen objects than existing correspondence methods. Videos and additional visualizations are available at [https://semancorr.github.io](https://semancorr.github.io) .

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