QBOT: An educational mobile robot controlled in MATLAB Simulink environment | IEEE Conference Publication | IEEE Xplore

QBOT: An educational mobile robot controlled in MATLAB Simulink environment


Abstract:

This paper describes Quanser's mobile robot control framework (QMRCF) for an educational robot called Qbot. The QMRCF accelerates the development of mobile robot control ...Show More

Abstract:

This paper describes Quanser's mobile robot control framework (QMRCF) for an educational robot called Qbot. The QMRCF accelerates the development of mobile robot control algorithms and hardware-in-the-loop (HIL) testing using model-based design techniques of matlab simulink. This paper also validates the performance of QMRCF using several experiments in various research fields of mobile robotics, e.g., teleoperation, navigation, and obstacle avoidance.
Date of Conference: 03-06 May 2009
Date Added to IEEE Xplore: 19 June 2009
ISBN Information:
Print ISSN: 0840-7789
Conference Location: St. John's, NL, Canada
References is not available for this document.

1. INTRODUCTION

Researchers today are focusing on mobile robots because of their potential applications in hazardous environments [1], agriculture and harvesting [2], house-hold tasks [3], and medical applications [4]. The core technologies involved in these applications are sensory augmented remote control of mobile robots, capability of self-localized autonomous navigation, obstacles avoidance, and intelligent decision-making for task execution [5]. Successful implementation of these techniques largely depends on various sensors, e.g., shaft encoder for position estimation of the robot, range finder for obstacle avoidance, vision system for visual pattern recognition, and force feedback for haptic application.

Select All
1.
G. Kantor, S. Singh1, R. Peterson, D. Rus, A. Das, V. Kumar, G. Pereira, and J. Spletzer, "Distributed search and rescue with robot and sensor teams," in Field and Service Robotics. 2006, vol. 24, pp. 529-538, Springer Berlin / Heidelberg.
2.
B. Astrand and A.J. Baerveldt, "An agricultural mobile robot with vision-based perception for mechanical weed control," Autonomous Robots, vol. 13, no. 1, pp. 21-35, July 2002.
3.
M. Hans, B. Graf, and R.D. Schraft, "Robotic home assistant care-Obot: Past-present-future," in Proc. IEEE International Conference on Robot and Human Interactive Communication, 2001, pp. 407-411.
4.
J. Eriksson, M.J. Mataric, and C.J.Winstein, "Hands-off assistive robotics for post-stroke arm rehabilitation," in Proc. IEEE International Conference on Rehabilitation Robotics, June 2005, pp. 21-24.
5.
R. Murphy, Introduction to AI Robotics, MIT Press, 2000.
6.
iRobot, http://www.irobot.com/.
7.
Pioneer Robot, http://www.mobilerobots.com/.
8.
Mobile Robot Team Control Toolbox, http://www.dziewierz.pl/moroteco/ index.html.
9.
Gumstix, http://www.gumstix.com.
10.
QuaRC, http://www.quanser.com/quarc.
11.
Open Source Computer Vision Library, http://en.wikipedia.org/wiki/ OpenCV.

Contact IEEE to Subscribe

References

References is not available for this document.