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Generating All the Roads to Rome: Road Layout Randomization for Improved Road Marking Segmentation
[article]
2019
arXiv
pre-print
Road markings provide guidance to traffic participants and enforce safe driving behaviour, understanding their semantic meaning is therefore paramount in (automated) driving. However, producing the vast quantities of road marking labels required for training state-of-the-art deep networks is costly, time-consuming, and simply infeasible for every domain and condition. In addition, training data retrieved from virtual worlds often lack the richness and complexity of the real world and
arXiv:1907.04569v1
fatcat:76nwbyj5fvbp5l3djnzlxgyd6m