Curb detection for driving assistance systems: A cubic spline-based approach

F. Oniga, S. Nedevschi
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引用次数: 36

Abstract

In this paper we present a real-time algorithm that detects curbs using a cubic spline model. A Digital Elevation Map (DEM) is used to represent the dense stereovision data. Curb measurements (cells) are detected on the current frame DEM. In order to compensate the small number of curb measurements for each frame we perform temporal integration. The result is a rich set of curb measurements that provides a good support for the least square cubic spline fitting. Thus, the curb cubic spline approximation is more stable and available on a much larger area, around the ego car. This compensates the limited field of view of typical stereo sensors. The detected curbs enrich the description of the ego car's surrounding 3D environment and can be used for driving assistance applications.
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驾驶辅助系统的路边检测:基于三次样条的方法
本文提出了一种利用三次样条模型检测约束的实时算法。使用数字高程图(DEM)来表示密集的立体视觉数据。在当前帧DEM上检测抑制测量(单元)。为了补偿每帧的少量抑制测量,我们进行了时间积分。结果是一组丰富的抑制测量,为最小二乘三次样条拟合提供了良好的支持。因此,遏制三次样条近似是更稳定的,并可在一个更大的区域,周围的自我汽车。这弥补了典型立体传感器有限的视野。检测到的路缘丰富了ego汽车周围3D环境的描述,并可用于驾驶辅助应用。
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