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Research PaperResearchia:202608.05106

Unified Visuomotor Targets: Supervising VLAs Beyond Physical Actions

Zhenyang Feng

Abstract

VLA models are trained to predict robot actions from visual and language observations. This is a natural choice, but it creates a mismatch: VLMs encode rich, high-level representations of scenes and goals, while robot actions are low-level signals with limited task structure. We ask whether changing what the policy is trained to predict, rather than how it is architecturally designed, can yield better and more efficiently trained policies. We propose UVT (Unified Visuomotor Target), a unified la...

Submitted: August 5, 2026Subjects: Robotics; Robotics

Description / Details

VLA models are trained to predict robot actions from visual and language observations. This is a natural choice, but it creates a mismatch: VLMs encode rich, high-level representations of scenes and goals, while robot actions are low-level signals with limited task structure. We ask whether changing what the policy is trained to predict, rather than how it is architecturally designed, can yield better and more efficiently trained policies. We propose UVT (Unified Visuomotor Target), a unified latent prediction target that jointly encodes motor control and visual scene transition information, requiring no architectural changes and no additional data. Applied to two representative VLA systems across simulation benchmarks and real bimanual manipulation tasks, UVT improves training efficiency, final task performance, and policy robustness, with particularly strong gains under limited training budgets and challenging environmental conditions. Rollout videos and additional qualitative results are available at our project webpage: https://unified-visuomotor-targets.github.io/


Source: arXiv:2608.03563v1 - http://arxiv.org/abs/2608.03563v1 PDF: https://arxiv.org/pdf/2608.03563v1 Original Link: http://arxiv.org/abs/2608.03563v1

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Date:
Aug 5, 2026
Topic:
Robotics
Area:
Robotics
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