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Caging complex objects with geodesic balls

Conference Paper Accepted Paper Artificial Intelligence ยท Robotics

Abstract

This paper proposes a novel approach for the synthesis of grasps of objects whose geometry can be observed only in the presence of noise. We focus in particular on the problem of generating caging grasps with a realistic robot hand simulation and show that our method can generate such grasps even on complex objects. We introduce the idea of using geodesic balls on the object's surface in order to approximate the maximal contact surface between a robotic hand and an object. We define two types of heuristics which extract information from approximate geodesic balls in order to identify areas on an object that can likely be used to generate a caging grasp. Our heuristics are based on two scoring functions. The first uses winding angles measuring how much a geodesic ball on the surface winds around a dominant axis, while the second explores using the total discrete Gaussian curvature of a geodesic ball to rank potential caging postures. We evaluate our approach with respect to variations in hand kinematics, for a selection of complex real-world objects and with respect to its robustness to noise.

Authors

Keywords

  • Windings
  • Approximation methods
  • Noise
  • Grasping
  • Geometry
  • Robot kinematics
  • Complex Objects
  • Geodesic Ball
  • Scoring Function
  • Contact Surface
  • Presence Of Noise
  • Realistic Simulation
  • Object Surface
  • Robotic Hand
  • Gaussian Curvature
  • Scaling Factor
  • Center Of Mass
  • First Approximation
  • Friction Coefficient
  • Object Size
  • Normal Direction
  • Large Objects
  • Object Parts
  • Soft Robots
  • Physical Simulation
  • Type Of Manipulation
  • Large-scale Object
  • Original Mesh
  • Winding Number
  • Euler Characteristic
  • Closed Curve
  • Smallest Scale
  • Vertex Position
  • Surface Normals
  • Soft Actuators

Context

Venue
IEEE/RSJ International Conference on Intelligent Robots and Systems
Archive span
1988-2025
Indexed papers
26578
Paper id
891542576814808646
v2026.09.13