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Mission Path Following for an Autonomous Unmanned Airship., , , and . ICRA, page 1269-1275. IEEE, (2000)Internet-based solutions in the development and operation of an unmanned robotic airship., , , , , , , and . Proc. IEEE, 91 (3): 463-474 (2003)Road grades and tire forces estimation using two-stage extended Kalman filter in a delayed interconnected cascade structure., , , , , , and . Intelligent Vehicles Symposium, page 115-120. IEEE, (2017)Optimal visual servoed guidance of outdoor autonomous robotic airships., , , , , and . ACC, page 779-784. IEEE, (2002)Project AURORA: Development of an Autonomous Unmanned Remote Monitoring Robotic Airship., , , , and . J. Braz. Comp. Soc., (1998)A Semi-Autonomous Robotic Airship for Environmental Monitoring Missions., , , and . ICRA, page 3449-3455. IEEE Computer Society, (1998)Towards a slam solution for a robotic airship., , and . ICINCO-RA, page 241-248. INSTICC Press, (2006)Visual Servo Control for the Hovering of an Outdoor Robotic Airship., , , , , and . ICRA, page 2787-2792. IEEE, (2002)Dynamic modeling and bio-inspired LQR approach for off-road robotic vehicle path tracking., , , and . ICAR, page 1-6. IEEE, (2013)A Fast Vision-Based Road Following Strategy Applied to the Control of Aerial Robots., , , , and . SIBGRAPI, page 226-231. IEEE Computer Society, (2001)