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Regrasping and unfolding of garments using predictive thin shell modeling

Yinxiao Li, Danfei Xu, Yonghao Yue, Yan Wang, Shih‐Fu Chang, Eitan Grinspun, Peter K. Allen

发表年份
2015
引用次数
60

摘要

Deformable objects such as garments are highly unstructured, making them difficult to recognize and manipulate. In this paper, we propose a novel method to teach a two-arm robot to efficiently track the states of a garment from an unknown state to a known state by iterative regrasping. The problem is formulated as a constrained weighted evaluation metric for evaluating the two desired grasping points during regrasping, which can also be used for a convergence criterion The result is then adopted as an estimation to initialize a regrasping, which is then considered as a new state for evaluation. The process stops when the predicted thin shell conclusively agrees with reconstruction. We show experimental results for regrasping a number of different garments including sweater, knitwear, pants, and leggings, etc.

关键词

Convergence (economics)Computer scienceState (computer science)Metric (unit)Process (computing)Mathematical optimizationAlgorithmArtificial intelligenceEngineeringMathematics

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