Contact-based Grasp Control and Inverse Kinematics for a Five-fingered Robotic Hand

Fuente: arXiv
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Autor principal: Umeike, Robinson
Formato: Preprint
Publicado: 2025
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author Umeike, Robinson
author_facet Umeike, Robinson
contents This paper presents an implementation and analysis of a five-fingered robotic grasping system that combines contact-based control with inverse kinematics solutions. Using the PyBullet simulation environment and the DexHand v2 model, we demonstrate a comprehensive approach to achieving stable grasps through contact point optimization with force closure validation. Our method achieves movement efficiency ratings between 0.966-0.996 for non-thumb fingers and 0.879 for the thumb, while maintaining positional accuracy within 0.0267-0.0283m for non-thumb digits and 0.0519m for the thumb. The system demonstrates rapid position stabilization at 240Hz simulation frequency and maintains stable contact configurations throughout the grasp execution. Experimental results validate the effectiveness of our approach, while also identifying areas for future enhancement in thumb opposition movements and horizontal plane control.
format Preprint
id arxiv_https___arxiv_org_abs_2503_19171
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Contact-based Grasp Control and Inverse Kinematics for a Five-fingered Robotic Hand
Umeike, Robinson
Robotics
I.2.9
This paper presents an implementation and analysis of a five-fingered robotic grasping system that combines contact-based control with inverse kinematics solutions. Using the PyBullet simulation environment and the DexHand v2 model, we demonstrate a comprehensive approach to achieving stable grasps through contact point optimization with force closure validation. Our method achieves movement efficiency ratings between 0.966-0.996 for non-thumb fingers and 0.879 for the thumb, while maintaining positional accuracy within 0.0267-0.0283m for non-thumb digits and 0.0519m for the thumb. The system demonstrates rapid position stabilization at 240Hz simulation frequency and maintains stable contact configurations throughout the grasp execution. Experimental results validate the effectiveness of our approach, while also identifying areas for future enhancement in thumb opposition movements and horizontal plane control.
title Contact-based Grasp Control and Inverse Kinematics for a Five-fingered Robotic Hand
topic Robotics
I.2.9
url https://arxiv.org/abs/2503.19171