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Rapidly Exploring Random Tree Algorithm-Based Path Planning for Worm-Like Robot

delete2020-06-05
delete13
delete
OA
AI
Y
Yifan Wang
P
Prathamesh Pandit
A
Akhil Kandhari
Z
Zehao Liu
K
Kathryn A. Daltorio *
DOI:10.3390/biomimetics5020026delete
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Abstract

Abstract

En 中文
Inspired by earthworms, worm-like robots use peristaltic waves to locomote. While there has been research on generating and optimizing the peristalsis wave, path planning for such worm-like robots has not been well explored. In this paper, we evaluate rapidly exploring random tree (RRT) algorithms for path planning in worm-like robots. The kinematics of peristaltic locomotion constrain the potential for turning in a non-holonomic way if slip is avoided. Here we show that adding an elliptical path generating algorithm, especially a two-step enhanced algorithm that searches path both forward and backward simultaneously, can make planning such waves feasible and efficient by reducing required iterations by up around 2 orders of magnitude. With this path planner, it is possible to calculate the number of waves to get to arbitrary combinations of position and orientation in a space. This reveals boundaries in configuration space that can be used to determine whether to continue forward or back-up before maneuvering, as in the worm-like equivalent of parallel parking. The high number of waves required to shift the body laterally by even a single body width suggests that strategies for lateral motion, planning around obstacles and responsive behaviors will be important for future worm-like robots.
Keywords:
soft robotics
worm-like robot
path planning
RRT
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Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

B
Biomimetics
IF:
3.9
Papers:
3.2K
Citations:
5.1K

Organization

U
University System of Ohio
Scholars:
15.4W
Papers: 13.0W
Citations: 200
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