الباحثون

Jianfei Yang

المنشورات 12

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TUCO: Curating Simulation Demonstrations for Sim-to-Real Robot Policy Co-Training

Ning Zhu, Mengfei Zhao, Yikai Tang وآخرون · 2026

Simulation demonstrations can supplement scarce real-world data for robot policy co-training. However, the value of using data curation to actively select these demonstrations for sim-to-real co-training remains underexplored. Existing curation methods also lack a unified criterion for measuring trajectory-level utilit …

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Parasitic Co-Denoising: Unlocking 3D Human Motion Generation in a Frozen Video Diffusion Model

Yunjiao Zhou, Junlang Qian, Lihua Xie وآخرون · 2026

Despite never being supervised on explicit 3D motion, large-scale text-to-video diffusion models synthesize realistic human motion in their generated videos. We ask whether this implicit knowledge can be turned into explicit 3D motion generation, without training a separate motion model. Probing a frozen Wan2.1 reveals …

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TALK-Dem: Benchmarking Embodied Task Planning under Dementia-Associated Communication Patterns

Guangxin Zhao, Yiran Hu, Yuan Cao وآخرون · 2026

Existing LLM-driven robot task planners rely on a taken-for-granted assumption of an ideal user whose instructions are clear, complete, and task-focused. However, when interacting with real-world users, especially those experiencing cognitive impairments, such as people living with dementia (PLWD), the planners often m …

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LIBERO-MAX: Do Robot Policies Adapt When the World Changes?

Yunbei Zhang, Zijian Jin, Yuanzhe Liu وآخرون · 2026

Robots must often continue a task after a target moves, the viewpoint shifts, or an obstacle appears, even though their earlier observations and committed actions reflect the previous scene. Many simulation robustness benchmarks fix external conditions at reset, leaving this temporal challenge underexamined. We introdu …

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F4R: Failure-Driven Recognition, Reconstruction, Refinement, and Redeployment for Continual Robot Self-Improvement

Zhuoyuan Yu, Jiacheng Wang, Tianle Liu وآخرون · 2026

The real-world performance of current vision-language-action models is fundamentally constrained by the limited coverage of expert demonstrations and their insufficient understanding of physical interactions. A common remedy is to collect additional real-world demonstrations of newly encountered failures. However, this …

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mmHRI: Towards Privacy-Preserving Human-Robot Interaction with Millimeter-Wave Radar

Junqiao Fan, Yuxuan Hu, Bofan Lyu وآخرون · 2026

Assistive robots increasingly operate in many human-centered environments and perform various human-robot interaction (HRI) tasks, such as object delivery. However, most existing HRI systems rely on RGB cameras that continuously observe humans to respond to non-verbal commands, such as hand gestures. This raises privac …

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Fast Plans, Faithful Actions: Closing the Planning-Execution Gap in Hierarchical Vision-Language-Action Models

Chuanliang Xie, Boyu Ma, Gen Li وآخرون · 2026

Hierarchical vision-language-action (VLA) systems consist of a high-level vision-language planner and a low-level action expert that generates continuous actions. This hierarchical design has practical value only if the planner can generate plans fast enough to meet real-time control requirements, and the resulting pla …

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MemBodied: Recurrent Associative Memory for Vision-Language-Action Models

Tej Deep Pala, Navonil Majumder, Bryce Goh وآخرون · 2026

Vision-Language-Action models provide a strong foundation for general-purpose robot control, yet a vast majority of policies do not preserve and leverage episode-level information beyond the current observation. This limitation is consequential in history-dependent manipulation tasks that depend on information availabl …

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