基于视觉的轨道估计和道岔递归检测

R. Ross
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引用次数: 9

摘要

铁路车辆的轨道选择本地化是提高物流效率、提高安全性和自动驾驶的先决条件。通常,基于卫星的导航系统用于定位任务。然而,在许多情况下,卫星导航是不可用的或传感器信息被破坏。为了提高可用性和定位质量,需要新的传感器。在这项工作中,我们提出使用单焦点摄像机来提高定位质量。我们的算法在相机图像中递归估计轨迹。结果用于道岔检测。与GPS/INS相比,曲率和结果可以提前检测到。我们的方法使用递归估计来跟踪图像中的轨迹并估计轨迹的几何形状。实验结果表明了该算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Vision-based track estimation and turnout detection using recursive estimation
Track selective localization of railway vehicles is a precondition to more efficient logistics, improved security and autonomous driving. Often, satellite based navigation systems are used for localization tasks. However, in many cases, satellite navigation is not available or the sensor information is corrupted. To enhance availability and localization quality new sensors are needed. In this work we propose the usage of a monofocal video camera to improve the localization quality. Our algorithm estimates the track recursively in the camera pictures. The result is used for a turnout detection. Compared to GPS/INS curvature and turnouts can be detected in advance. Our approach uses recursive estimation to track the tracks in the pictures and to estimate the geometry of the tracks. Experimental results show the efficiency of the proposed algorithm.
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