stanford_self_driving_car_learning
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Stanford Code From Cars That Entered DARPA Grand Challenges
Stanford Self Driving Car Learning
Stanford Code From Cars That Entered DARPA Grand Challenges.
Software Infrastructure for Stanford's Autonomous Vehicles.
See http://robots.stanford.edu/papers/junior08.pdf.
Originally found on Sourceforge.
Perception Guides
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David Held, works in 2013~2016
In developing fast, effective algorithms for model-free segmentation and tracking.
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Alex Teichman, works in 2011~2013
Multiclass track classification, where model-free segmentation and tracking is at least somewhat reliable.
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Fully-supervised Track Classifier
Teichman A, Levinson J, Thrun S. Towards 3D object recognition via classification of arbitrary object tracks[C]//Robotics and Automation (ICRA), 2011 IEEE International Conference on. IEEE, 2011: 4034-4041.
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Semi-supervised: Offline
Teichman, Alex, and Sebastian Thrun. Tracking-based semi-supervised learning, Robotics: Science and Systems (RSS), 2011.
Teichman, Alex, and Sebastian Thrun. "Tracking-based semi-supervised learning." The International Journal of Robotics Research 31.7 (2012): 804-818.
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Semi-supervised: Online
Teichman, Alex, and Sebastian Thrun. "Group induction." Intelligent Robots and Systems (IROS), 2013 IEEE/RSJ International Conference on. IEEE, 2013.
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