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vp-vla-visual-prompting-robotics

Replace monolithic VLA single-pathway decision-making with a decomposed System-2/System-1 architecture where a pretrained VLM planner identifies targets as visual prompts (crosshairs, bounding boxes) and a VLA controller executes on grounded observations, improving success rates by 5-8% on manipulation tasks. Use when spatial precision is critical, multi-step reasoning is needed, and you have access to pretrained segmentation and vision-language models.

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Source facts

Repository
ADu2021/skillXiv
Last source activity
March 26, 2026 at 05:22
Detected SKILL.md language
English
Stars
6
Forks
0

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