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A Hybrid Vision-Map Method for Urban Road Detection

机译:一种混合视觉地图的城市道路检测方法

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A hybrid vision-map system is presented to solve the road detection problem in urban scenarios. The standardized use of machine learning techniques in classification problems has been merged with digital navigation map information to increase system robustness. The objective of this paper is to create a new environment perception method to detect the road in urban environments, fusing stereo vision with digital maps by detecting road appearance and road limits such as lane markings or curbs. Deep learning approaches make the system hard-coupled to the training set. Even though our approach is based on machine learning techniques, the features are calculated from different sources (GPS, map, curbs, etc.), making our system less dependent on the training set.
机译:提出了一种混合视觉地图系统来解决城市场景中的道路检测问题。分类问题中机器学习技术的标准化使用已与数字导航地图信息合并,以提高系统的鲁棒性。本文的目的是创建一种新的环境感知方法,以检测城市环境中的道路,通过检测道路外观和道路限制(例如车道标记或路缘石)将立体视觉与数字地图融合。深度学习方法使系统与训练集硬耦合。即使我们的方法是基于机器学习技术的,但功能都是从不同的来源(GPS,地图,路缘石等)计算出来的,这使得我们的系统对训练集的依赖程度降低了。

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