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StackGen: Generating Stable Structures from Silhouettes via Diffusion
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Humans naturally obtain intuition about the interactions between and the stability of rigid objects by observing and interacting with the world. It is this intuition that governs the way in which we regularly configure objects in our environment, allowing us to build complex structures from simple, everyday objects. Robotic agents, on the other hand, traditionally require an explicit model of the world that includes the detailed geometry of each object and an analytical model of the environment dynamics, which are difficult to scale and preclude generalization. Instead, robots would benefit from an awareness of intuitive physics that enables them to similarly reason over the stable interaction of objects in their environment. Towards that goal, we propose StackGen, a diffusion model that generates diverse stable configurations of building blocks matching a target silhouette. To demonstrate the capability of the method, we evaluate it in a simulated environment and deploy it in the real setting using a robotic arm to assemble structures generated by the model.
Forward citations
Cited by 2 Pith papers
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FlashBack: Consistency Model-Accelerated Shared Autonomy
Consistency model distillation enables one-step denoising of user actions for shared autonomy, achieving faster assistance than DDPM-based methods with comparable or better task success.
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"Stack It Up!": 3D Stable Structure Generation from 2D Hand-drawn Sketch
StackItUp converts 2D hand-drawn sketches into stable 3D block arrangements using a symbolic relation graph and diffusion-based block pose generation.
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