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RoPotter: Toward Robotic Pottery and Deformable Object Manipulation with Structural Priors

Uksang Yoo, Jonathan Francis, Jean Oh, Jeffrey Ichnowski

发表年份
2024
引用次数
2

摘要

Humans are capable of continuously manipulating a wide variety of deformable objects into complex shapes. This is made possible by our intuitive understanding of material properties and mechanics of the object that allow us to reason about object states even when visual perception is occluded. These capabilities allow us to perform diverse tasks ranging from cooking with dough to expressing ourselves with potterymaking. However, developing robot systems to robustly perform similar tasks remains challenging, as current methods struggle to effectively model volumetric deformable objects and reason about the complex behavior they typically exhibit. To study the robot systems and algorithms capable of deforming volumetric objects, we introduce a novel robot task of continuously deforming clay on a pottery wheel. We propose a pipeline for perception and pottery skill-learning, called RoPotter, wherein we demonstrate that structural priors specific to the task of pottery-making can be exploited to simplify the pottery skilllearning process. Namely, we can project the cross-section of the clay to a plane to represent the state of the clay, reducing dimensionality. We also demonstrate a mesh-based method of occluded clay state recovery, toward robot agents capable of continuously deforming clay. Our experiments show that by using the reduced representation with structural priors based on the deformation behaviors of the clay, RoPotter can perform the long-horizon pottery task with ${4 4. 4 \%}$ lower final shape error compared to the state-of-the-art baselines. Supplemental materials, experiment data, and visualizations are available at https://robot-pottery.github.io.

关键词

Object (grammar)Prior probabilityComputer scienceArtificial intelligenceComputer visionPotteryBayesian probabilityGeographyArchaeology

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