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Campus walkway following of an autonomous mobile robot based on color image.

, , , and . IROS, page 1690-1695. IEEE, (2000)

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Traversable Region Estimation for Mobile Robots in an Outdoor Image., , , and . J. Intell. Robotic Syst., 92 (3-4): 453-463 (2018)Manipulative difficulty of a mobile robot pushing and towing multiple trailers., , and . Adv. Robotics, 14 (3): 169-183 (2000)Editorial: Modern Trends in Mobile Robotics., and . J. Robotics Mechatronics, 14 (4): 323 (2002)Editorial: Selected Papers from ROBOMEC'05 (Part 2)., and . J. Robotics Mechatronics, 18 (3): 225 (2006)Editorial: Real World Robot Challenge in Tsukuba - Autonomous Technology for Coexistence with Human Beings -., , , and . J. Robotics Mechatronics, 28 (4): 431 (2016)On a Manipulative Difficulty of a Mobile Robot with Multiple Trailers for Pushing and Towing?, , and . ICRA, page 13-18. IEEE Robotics and Automation Society, (1999)Forest 3D Mapping and Tree Sizes Measurement for Forest Management Based on Sensing Technology for Mobile Robots., , , , , , , , , and 2 other author(s). FSR, volume 92 of Springer Tracts in Advanced Robotics, page 357-368. Springer, (2012)A development of a new mechanism of an autonomous unicycle., , , and . IROS, page 906-912. IEEE, (1997)An Efficient Algorithm Of Path Planning For An Internal Gas Pipe Inspection Robot., , , and . IROS, page 1155-1160. IEEE, (1992)A mobile robot campus walkway following with daylight-change-proof walkway color image segmentation., , , and . IROS, page 77-83. IEEE, (2001)