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MirrorDuo: Reflection-Consistent Visuomotor Learning from Mirrored Demonstration Pairs

About

Image-based behaviour cloning leverages demonstrations captured from ubiquitous RGB cameras. However, it remains constrained by the cost of collecting diverse demos, especially for generalizing across workspace variations. We propose MirrorDuo, a reflection-based formulation that operates on image, proprioception, and full 6-DoF end-effector action tuples, generating a mirrored counterpart for each original demonstration, effectively achieving "collect one, get one for free". It can be applied as a data augmentation strategy for existing learning pipelines, such as standard behaviour cloning or diffusion policy, or as a structural prior for reflection-equivariant policy networks. By leveraging the overlap between the original and mirrored domains, MirrorDuo achieves significantly improved performance under the same data budget when demonstrations are evenly distributed across both sides of the workspace. When demonstrations are confined to one side, MirrorDuo enables efficient skill transfer to the mirrored workspace with as few as zero or five demos in the target arrangement.

Zheyu Zhuang, Ruiyu Wang, Giovanni Luca Marchetti, Florian T. Pokorny, Danica Kragic• 2026

Related benchmarks

TaskDatasetResultRank
Robot ManipulationMimicGen 3-Part Assembly D2
Success Rate61.3
72
Robot ManipulationMimicGen Square D2
Success Rate59.3
51
Robot ManipulationMimicGen Stack Three D1
Success Rate91.3
46
Stacking Three BlocksRobomimic MimicGen Stack Three (D1)
Success Rate0.913
46
SquareMimicGen D2
Success Rate59.3
36
Pick-&-PlaceReal-world Plush Toy task Mirrored Setup
Success Rate83.3
6
Pick-&-PlaceReal-world Plush Toy task Original Setup
Success Rate86.7
3
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