REPURPOSING A SAMPLING-BASED PLANNER FOR A SIX-DEGREE-OF-FREEDOM MANIPULATOR TO AVOID UNPREDICTABLE OBSTACLES

被引:0
|
作者
Iman, Hafiz [1 ]
Khan, Md Raisuddin [1 ]
机构
[1] Int Islamic Univ Malaysia, Dept Mechatron Engn, Kulliyyah Engn, Jalan Gombak, Kuala Lumpur 53100, Malaysia
来源
IIUM ENGINEERING JOURNAL | 2023年 / 24卷 / 01期
关键词
mechatronics; mhot manipulator; planner; motion planning; dynamic environment;
D O I
10.31436/iiumej.v24i1.2642
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper presents the use of a sampling-based planner as a reactive planning scheme to avoid obstacles between a robotic arm and a moving obstacle. Based on a planner benchmark on an obstacle-ridden environment, a rapidly-exploring random tree (RRT) planner has been used to populate the trajectories of the task space and map them into a configuration space using a Newton-Raphson-based inverse kinematic solver. Two robot poses are defined in a cycle of back-and-forth motion; the initial and the goal poses. The robot repeatedly moves from the starting pose to the end pose via the midpoint pose. Each set of trajectories is unique. We define this unique solution within the context of the configuration space as a cycle space. We impose a periodically occurring synthetic obstacle that moves in and out of the robot arm workspace defined in a simulated environment. Within the robot's workspace, the obstacle moves and cuts through the cycle space to emulate a dynamic environment. We also ran a benchmark on the available sampling planner in the OMPL library for static obstacle avoidance. Our benchmark shows that the RRT has the lowest time planning time at 0.031 s compared with other sampling -based planners available in the OMPL library, RRT implicitly avoids singularities within the cycle space, and reactively attempts to avoid synthetic moving objects near the robot hardware. This research intends to further investigate on the use of RGB-D sensor and LiDAR to track moving obstacles while abiding by the task spacc commands described by the initial and goal poses.
引用
收藏
页码:319 / 332
页数:14
相关论文
共 50 条
  • [31] A Six-Degree-of-Freedom Measurement Method Based on Swinging Multi-Camera Tracking
    Cao Shouqin
    Sun Zijie
    Yang Ze
    Sun Yanbiao
    Zhu Jigui
    [J]. LASER & OPTOELECTRONICS PROGRESS, 2023, 60 (03)
  • [32] Development of a grating-based interferometer for six-degree-of-freedom displacement and angle measurements
    Hsieh, Hung-Lin
    Pan, Ssu-Wen
    [J]. OPTICS EXPRESS, 2015, 23 (03): : 2451 - 2465
  • [33] Six-degree-of-freedom pose estimation with μm/μrad accuracy based on laser multilateration
    Nitsche, Jan
    Franke, Matthias
    Haverkamp, Nils
    Heisselmann, Daniel
    [J]. JOURNAL OF SENSORS AND SENSOR SYSTEMS, 2021, 10 (01) : 19 - 24
  • [34] Generalized penetration depth for penalty-based six-degree-of-freedom haptic rendering
    Kolesnikov, Maxim
    Zefran, Milos
    [J]. ROBOTICA, 2008, 26 (04) : 513 - 524
  • [35] Exploration of high-altitude dynamic soaring based on six-degree-of-freedom model
    Liu S.
    Bai J.
    [J]. Xibei Gongye Daxue Xuebao/Journal of Northwestern Polytechnical University, 2021, 39 (04): : 703 - 711
  • [36] DESIGN OF STATICALLY BALANCED SIX-DEGREE-OF-FREEDOM PARALLEL MECHANISMS BASED ON TENSEGRITY SYSTEM
    Shekarforoush, S. M. Mehdi
    Eghtesad, Mohammad
    Farid, Mehrdad
    [J]. IMECE2009, VOL 4, 2010, : 245 - 253
  • [37] A Hybrid ADMM for Six-Degree-of-Freedom Entry Trajectory Optimization Based on Dual Quaternions
    Pei, Chaoying
    Wan, Changhuang
    Dai, Ran
    Rea, Jeremy R.
    [J]. IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS, 2023, 59 (03) : 3280 - 3295
  • [38] A singularity handling algorithm based on operational space control for six-degree-of-freedom anthropomorphic manipulators
    Kang, Zhi-Hao
    Cheng, Ching-An
    Huang, Han-Pang
    [J]. INTERNATIONAL JOURNAL OF ADVANCED ROBOTIC SYSTEMS, 2019, 16 (03)
  • [39] Large Language Model Guided Reinforcement Learning Based Six-Degree-of-Freedom Flight Control
    Han, Yanqiao
    Yang, Menglong
    Ren, Yang
    Li, Weizheng
    [J]. IEEE ACCESS, 2024, 12 : 89479 - 89492