Investigating Modular Relative Jacobian Control for Bipedal Robot

被引:0
作者
Jamisola, Rodrigo S., Jr. [1 ]
Mbedzi, Olebogeng [1 ]
Makati, Tlamelo [1 ]
Roberts, Rodney G. [2 ]
机构
[1] Botswana Int Univ Sci & Technol, Dept Mech Energy & Ind Engn, Palapye, Botswana
[2] Florida State Univ, Dept Elect & Comp Engn, Tallahassee, FL 32306 USA
来源
PROCEEDINGS OF THE IEEE 2019 9TH INTERNATIONAL CONFERENCE ON CYBERNETICS AND INTELLIGENT SYSTEMS (CIS) ROBOTICS, AUTOMATION AND MECHATRONICS (RAM) (CIS & RAM 2019) | 2019年
关键词
Relative Jacobian; walking robot; modular; dynamics control; relative motion; task prioritization; WALKING ROBOT;
D O I
10.1109/cis-ram47153.2019.9095768
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper presents a new method of generating walking motion for bipedal robots through modular relative Jacobian, that is normally used 14 dual-arms. In this paper, the two legs are equivalent to the two arms of the dual-arm, while the two feet are equivalent to the two end-effectors of the dualarm. Two legs, each with three degrees-of-freedom (3-DOFs), are combined to form a 6-DOFs bipedal robot. Then the 3-DOFs relative position between the two feet of the bipedal robot are controlled as the relative end-effectors of the relative Jacobian, while the remaining 3-DOFs are used to control the robot posture. As in a robot manipulator control, the first priority is the relative feet motion, while the second priority is bipedal robot posture in the null space. It is noted that if individual leg control for each foot was used, with 3-DOFs control on each foot, there will be no more DOFs to control the biped robot posture. The control uses dynamics information on inertia, gravitational torques, and dynamically consistent relative Jacobian inverse. Bipedal walking simulation is shown in Gazebo.
引用
收藏
页码:428 / 432
页数:5
相关论文
共 50 条
[31]   Developing and Implementation of the Walking Robot Control System [J].
Chwila, Sebastian ;
Zawiski, Radoslaw ;
Babiarz, Artur .
MAN-MACHINE INTERACTIONS 3, 2014, 242 :97-105
[32]   A Review and Evaluation of Control Architectures for Modular Legged and Climbing Robots [J].
Prados, Carlos ;
Hernando, Miguel ;
Gambao, Ernesto ;
Brunete, Alberto .
BIOMIMETICS, 2024, 9 (06)
[33]   COMPLIANCE CONTROL OF A LEGGED ROBOT BASED ON IMPROVED ADAPTIVE CONTROL: METHOD AND EXPERIMENTS [J].
Zhu, Yaguang ;
Jin, Bo .
INTERNATIONAL JOURNAL OF ROBOTICS & AUTOMATION, 2016, 31 (05) :366-373
[34]   2DxoPod - A Modular Robot for Mimicking Locomotion in Vertebrates [J].
S. Sankhar Reddy CH. ;
Rohan Abhimanyu ;
Tejas Godiyal ;
Tejas Zodage .
Journal of Intelligent & Robotic Systems, 2021, 101
[35]   Preliminary Investigation on Modular Self-Reconfigurable Robot Architecture [J].
Hasbulah, M. Haziq ;
Jafar, Fairul Azni ;
Nordin, Mohd Hisham ;
Yokota, Kazutaka .
PROCEEDINGS OF INNOVATIVE RESEARCH AND INDUSTRIAL DIALOGUE 2018 (IRID'18), 2019, :29-30
[36]   Sambot II: A Self-Assembly Modular Swarm Robot [J].
Zhang, Yuchao ;
Wei, Hongxing ;
Yang, Bo ;
Jiang, Cancan .
ADVANCES IN MATERIALS, MACHINERY, ELECTRONICS II, 2018, 1955
[37]   Development of an underwater modular robot system for autonomous manipulation tasks [J].
Yu, SC ;
Kim, TW ;
Rosa, K ;
Yi, KY ;
Choi, SK ;
Ura, T ;
Yuh, J .
PROCEEDINGS OF THE FIFTEENTH (2005) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 2, 2005, :283-288
[38]   A Modular Wireless In Vivo Surgical Robot with Multiple Surgical Applications [J].
Hawks, Jeff A. ;
Rentschler, Mark E. ;
Farritor, Shane ;
Oleynikov, Dmitry ;
Platt, Stephen R. .
MEDICINE MEETS VIRTUAL REALITY 17 - NEXTMED: DESIGN FOR/THE WELL BEING, 2009, 142 :117-121
[39]   CONCEPTUAL DESIGN OF MODULAR MULTI FUNCTIONAL AGRICULTURAL MOBILE ROBOT [J].
Pecka, Aldis ;
Osadcuks, Vitalijs .
RESEARCH FOR RURAL DEVELOPMENT 2018, VOL 1, 2018, :202-206
[40]   2DxoPod-A Modular Robot for Mimicking Locomotion in Vertebrates [J].
Reddy, Ch. S. Sankhar ;
Abhimanyu ;
Godiyal, Rohan ;
Zodage, Tejas ;
Rane, Tejas .
JOURNAL OF INTELLIGENT & ROBOTIC SYSTEMS, 2021, 101 (01)