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On Modular Design of Field Robotic Systems

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Abstract

Robots are needed to perform important field tasks such as hazardous material clean-up, nuclear site inspection, and space exploration. Unfortunately their use is not widespread due to their long development times and high costs. To make them practical, a modular design approach is proposed. Prefabricated modules are rapidly assembled to give a low-cost system for a specific task.

This paper described the modular design problem for field robots and the application of a hierarchical selection process to solve this problem. Theoretical analysis and an example case study are presented. The theoretical analysis of the modular design problem revealed the large size of the search space. It showed the advantages of approaching the design on various levels.

The hierarchical selection process applies physical rules to reduce the search space to a computationally feasible size and a genetic algorithm performs the final search in a greatly reduced space. This process is based on the observation that simple physically based rules can eliminate large sections of the design space to greatly simplify the search.

The design process is applied to a duct inspection task. Five candidate robots were developed. Two of these robots are evaluated using detailed physical simulation. It is shown that the more obvious solution is not able to complete the task, while the non-obvious asymmetric design develop by the process is successful.

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References

  • Ambrose, R. and Tesar, D. 1992. Modular robot connection design. In ASME DTM.

  • Chen, I. and Burdick, J. 1995. Determining task optimal robot assembly configurations. In IEEE Intl. Conf. on Robotics and Automation, pp. 132–137.

  • Chen, I. and Yang, G. 1997. Automatic generation of dynamics for modular robots with hybrid geometry. In IEEE ICRA, pp. 2288–2293.

  • Chirikjian, G. and Pamecha, A. 1996. A useful metric for modular robot motion planning. In Proceedings of 1996 IEEE ICRA, Minneapolis, MN.

  • Dubowsky, S., Moore, C., and Sunada, C. 1995. On the design and task planning of power efficient field robotic systems. In Proc. 6th ANS Robotic and Remote Systems.

  • Farritor, S. 1998. On modular design and planning for field robotic systems. Ph.D. Thesis, Dept. of M.E., MIT, Cambridge, MA.

    Google Scholar 

  • Farritor, S., Dubowsky, S., and Rutman, N. 1996. On the rapid design of field robotic systems. In ASME Conf. on Design Theory and Methodology.

  • Farritor, S., Hacot, H., and Dubowsky, S. 1998. Physics-based planning for planetary exploration. In IEEE Conference on Robotics and Automation.

  • Goldberg. 1989. Genetic Algorithms in Search, Optimization, and Machine Learning. Addision-Wesley.

  • Hamlin, G. and Sanderson, A. 1998. Tetrobot: A Modular Approach to Reconfigurable Paralles Robotics. Kluwer Acad. Pub.: Newton, MA.

    Google Scholar 

  • Kelmar, L. and Khosla, P. 1990. Automatic generation of forward and inverse kinematics for a reconfigurable modular manipulator system. Journal of Robotic Systems, 7(4):599–619.

    Google Scholar 

  • Kotay K., Rus D., Vona M., and McGray C. 1998. The self-reconfiguring robotic molecule. In Proc. IEEE Intl. Conf. On Robotics and Automation.

  • Murata, S., Kurokawa, H., Yoshida, E., Tomita, K., and Kokaji, 1998. A 3-D self-reconfigurable structure. In Proc. IEEE Intl. Conf. On Robotics and Automation.

  • Paredis, C. 1996. An agent-based approach to the design of rapidly deployable fault tolerant manipulators. Ph.D. Thesis, Dept. of Elec. and Comp. Eng., CMU, Pittsburgh, PA.

    Google Scholar 

  • Paredis, C.J.J., Brown, H.B., and Khosla, P.K. 1996. A rapidly deployable manipulator system. In IEEE ICRA, April 22–28, pp. 1434–1439.

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Farritor, S., Dubowsky, S. On Modular Design of Field Robotic Systems. Autonomous Robots 10, 57–65 (2001). https://doi.org/10.1023/A:1026596403167

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  • DOI: https://doi.org/10.1023/A:1026596403167

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