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One-to-Two Acting: A Novel Framework for Single-arm Agent Action Expansion to Dual Arms

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Dual-arm manipulation can improve throughput via parallel execution, but collecting bimanual demonstrations for training is costly and difficult. We present ExS2D, a hierarchical action expansion framework that enables dual-arm manipulation from single-arm supervision. ExS2D first generates structured subtasks from textual instructions while explicitly capturing temporal precedence. It then grounds each subtask into executable actions through subtask-guided action mapping in observation. Finally, precedence-aware action allocation and synchronized planning are performed by a multimodal large language model driven coordinator to select collision-free dual-arm executions. Simulation experiments demonstrate that ExS2D reduces the average execution steps by 54.4% while maintaining a comparable success rate to a single-arm baseline. Real-robot experiments on four tasks further demonstrate the reliability of ExS2D for dual-arm execution under few-shot single-arm samples, while using zero bimanual demonstrations.

Youbin Yao, Nieqin Cao, Mingyan Li, Yan Ding, Fuqiang Gu, Chao Chen• 2026

Related benchmarks

TaskDatasetResultRank
Placement of Blocks in Bowls (b)Raven Bench
Success Rate (SR)92.01
4
Assembling of Kits (d)Raven Bench
Success Rate93.25
4
Finding Horizontal Symmetry Letters (c)Raven Bench
Success Rate78.89
4
Macro-Average (Simulation Tasks)Raven Bench
Success Rate (SR)87.36
4
Stacking of Blocks in Zone (a)Raven Bench
Success Rate (SR)85.28
4
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