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Enabling Learning From Large Datasets: Applying Active Learning to Mobile Robotics
2018
Autonomous navigation in outdoor, off-road environments requires solving complex classification problems. Obstacle detection, road following and terrain classification are examples of tasks which have been successfully approached using supervised machine learning techniques for classification. Large amounts of training data are usually necessary in order to achieve satisfactory generalization. In such cases, manually labeling data becomes an expensive and tedious process. This work describes a
doi:10.1184/r1/6554720
fatcat:455jzsr6xjgnnjaelcf4chys5q