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Robotic vehicles for planetary exploration

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Abstract

Future missions to the moon, Mars, or other planetary surfaces will use planetary rovers for exploration or other tasks. Operation of these rovers as unmanned robotic vehicles with some form of remote or semi-autonomous control is desirable to reduce the cost and increase the capability and safety of many types of missions. However, the long time delays and relatively low bandwidths associated with radio communications between planets precludes a total “telepresence” approach to controlling the vehicle. A program to develop planetary rover technology has been initiated at the Jet Propulsion Laboratory (JPL) under sponsorship of the National Aeronautics and Space Administration (NASA). Developmental systems with the necessary sensing, computing, power, and mobility resources to demonstrate realistic forms of control for various missions have been developed and initial testing has been completed. These testbed systems, the associated navigation techniques currently used and planned for implementation, and long-term mission strategies employing them are described.

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References

  1. M. D. Levine, D. A. O'Handley, and G. M. Yagi, “Computer determination of depth maps,” Computer Graphics and Image Processing, vol. 2, pp. 131–150, 1973.

    Google Scholar 

  2. D. A. O'Handley, “Scene analysis in support of a Mars rover,” Computer Graphics and Image Processing, vol. 2, pp. 281–297, 1973.

    Google Scholar 

  3. R. A. Lewis and A. R. Johnston, “A scanning laser rangefinder for a robotic vehicle,” Proc. Fifth International Joint Conference on Artificial Intelligence, Cambridge, MA, 1977, pp. 762–768.

  4. A. M. Thompson, “The navigation system of the JPL robot,” Proc. Fifth International Joint Conference on Artificial Intelligence, Cambridge, MA, 1977, pp. 749–757.

  5. S. W. Yerazunis, “Autonomous control of roving vehicles for unmanned exploration of the planets,” Technical Report MP-61, Rensselaer Polytechnic Institute, Troy, NY, 1978.

    Google Scholar 

  6. K. G. Holmes, B. H. Wilcox, J. M. Cameron, B. K. Cooper, and R. A. Salo. “Robotic vehicle computer aided remote driving,” vol. 1, JPL D-3282, Jet Propulsion Laboratory, Pasadena, CA, 1986.

    Google Scholar 

  7. B. H. Wilcox and D. B. Gennery, “A Mars rover for the 1990's,” Journal of the British Interplanetary Society, 1987.

  8. D. B. Gennery, “Visual terrain matching for aMMars rover,” Proc. IEEE Conf. on Computer Vision and Pattern Recognition, San Diego, CA, 1989.

  9. J. R. Randolph (ed.), “Mars rover 1996 mission concept,” JPL D-3922, Jet Propulsion Laboratory, Pasadena, CA, 1986.

    Google Scholar 

  10. J. C. Mankins (ed.), Proc. Technology Planning Workshop for the Mars Rover, Jet Propulsion Laboratory, Pasadena, CA, 1987.

  11. D. P. Miller, “Navigation in rough terrain: Deliberation versus reaction,” Proc. IEEE International Conference on Robotics and Automation, Sacramento, CA, 1991.

  12. E. Gat, “ALFA, A language for program reactive robotic control systems,” Proc. IEEE International Conference on Robotics and Automation, Sacramento, CA, 1991.

  13. D. B. Gennery, “Object detection and measurement using stereo vision,” Proc. Sixth International Joint Conference on Artificial Intelligence, Tokyo, Japan, 1979, pp. 320–327.

  14. D. B. Gennery, “A feature-based scene matcher,” Proc. Seventh International Joint Conference on Artificial Intelligence, Vancouver, British Columbia, 1981, pp. 667–673.

  15. B. H. Wilcox, “Vision-based planetary rover navigation,” SPIE International Conference on Image Processing and Visualization, Lausanne, Switzerland, 1990.

  16. L. H. Matthies, “Stereo vision for planetary rovers,” JPL report D-8131, January 1991.

  17. P. DeVries (ed.), “Mars sample return mission, 1984 study report,” JPL Document JPL D-1845 p7–19, Sept. 28, 1984.

  18. J. R. French (ed.), “Mars sample return mission, 1985 study report,” JPL Document JPL D-3114 p7–1, July 31, 1985.

  19. G. Klein (ed.), “Planetary spacecraft systems technology, final report 1986,” JPL Document JPL D-3731 p III-79, Oct. 30, 1986.

  20. J. Bares, M. Hebert, T. Kanade, E. Krotkov, T. Mitchell, R. Simmons, and W. Whittaker, “Ambler: An autonomous rover for planetary exploration,” IEEE Computer, pp. 18–26, 1989.

  21. D. S. Pivirotto, Jet Propulsion Laboratory, Pasadena, CA; private communication, 1989.

  22. D. Kerrisk, Jet Propulsion Laboratory, Pasadena, CA; private communication, 1991.

  23. R. M. Jones, “Microspacecraft missions and systems,” J. British Interplanetary Society, vol. 42, no. 10, p. 448, 1989.

    Google Scholar 

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Wilcox, B.H. Robotic vehicles for planetary exploration. Appl Intell 2, 181–193 (1992). https://doi.org/10.1007/BF00058762

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