TartanDrive: Roboticists Go Off Road @cmurobotics
TartanDrive: Roboticists Go Off Road  @cmurobotics
Uploaded May 2022 | Updated September 2026, 2 weeks ago
Researchers from Carnegie Mellon University took an all-terrain vehicle on wild rides through tall grass, loose gravel and mud to gather data about how the ATV interacted with a challenging, off-road environment.

They drove the heavily instrumented ATV aggressively at speeds up to 30 miles an hour. They slid through turns, took it up and down hills, and even got it stuck in the mud — all while gathering data such as video, the speed of each wheel and the amount of suspension shock travel from seven types of sensors.

The resulting dataset, called TartanDrive, includes about 200,000 of these real-world interactions. The researchers believe the data is the largest real-world, multimodal, off-road driving dataset, both in terms of the number of interactions and types of sensors. The five hours of data could be useful for training a self-driving vehicle to navigate off road.
TartanDrive: Roboticists Go Off RoadRI Seminar: Andrea Bajcsy : Towards Open World Robot SafetyMobot 2019 : CMU Carnival : 25th Anniversary RaceMobot 2024RI Seminar: Tucker Hermans : Improving Multi-fingered Robot Manipulation...RI Seminar: Jorgen Pedersen: RE2 Robotics: from RI spinout to AcquisitionRaj Reddy : The Future of AI : Doomers vs. AbundanceRichard Scheines : Carnegie Mellon University : AI & Humanity ArchiveRI Seminar: Ross L. Hatton : Snakes & Spiders, Robots & GeometryRi Seminar: Ross Knepper : Formalizing Teamwork in Human-Robot Interaction
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TartanDrive: Roboticists Go Off Road

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