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Shape-controllable inverse kinematics of hyper-redundant robots based on the improved FABRIK method

  • Pingan Niu
  • , Liang Han*
  • , Yunzhi Huang
  • , Lei Yan
  • *Corresponding author for this work
  • Hefei University of Technology
  • Harbin Institute of Technology Shenzhen

Research output: Contribution to journalArticlepeer-review

Abstract

Hyper-redundant robots have good prospects for applications in confined space due to their high flexibility and slim body size. However, the super-redundant structure brings great challenges for its inverse kinematics with shape constraints. Unfortunately, traditional Jacobian pseudo-inverse-based inverse kinematics method and forward and backward reaching inverse kinematics (FABRIK) method are difficult to constrain the arm shape and realize trajectory tracking in confined spaces. To solve this problem, we propose a shape-controllable FABRIK method to satisfy the given path and shape constraints. Firstly, the kinematic model of the hyper-redundant robot is established, and the canonical FABRIK method is introduced. Based on the preliminary works, the single-layer improved FABRIK method is developed to solve the position and pointing inverse kinematics considering path environment and joint angle constraints instead of two-layer geometric iterations. For tracking the desired end roll angles, the polygonal virtual arm is designed. The real arm roll angle is achieved by controlling its winding on the virtual arm. In this way, the shape can be controlled. Finally, we compare the proposed method with other three approaches by simulations. Results show that the proposed method is more efficient and the arm shape is controllable.

Original languageEnglish
Pages (from-to)225-241
Number of pages17
JournalRobotica
Volume42
Issue number1
DOIs
StatePublished - 7 Jan 2024
Externally publishedYes

Keywords

  • controllable shape
  • hyper-redundant robot
  • improved FABRIK
  • inverse kinematics

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