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Automated road pavement marking detection from high resolution aerial imagesbased on multi-resolution image analysis and anisotropic Gaussian filtering

机译:高分辨率空中图像的自动化路面标记检测,多分辨率图像分析和各向异性高斯滤波

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Road features extraction from remotely sensed imagery has been a long-term topic of great interest within the photogrammetry and remote sensing communities for over three decades. The majority of the early work only focused on linear feature detection approaches, with restrictive assumption on image resolution and road appearance. The widely available of high resolution digital aerial images makes it possible to extract sub-road features, e.g. road pavement markings. In this paper, we will focus on the automatic extraction of road lane markings, which are required by various lane-based vehicle applications, such as, autonomous vehicle navigation, and lane departure warning. The proposed approach consists of three phases: i) road centerline extraction from low resolution image, ii) road surface detection in the original image, and iii) pavement marking extraction on the generated road surface. The proposed method was tested on the aerial imagery dataset of the Bruce Highway, Queensland, and the results demonstrate the efficiency of our approach.
机译:从遥感图像提取的道路特征是在摄影测量和遥感社区内部的长期兴趣,超过三十年。大多数早期工作仅重点关注线性特征检测方法,对图像分辨率和道路外观的限制性假设。广泛可用的高分辨率数字空中图像使得可以提取亚道路特征,例如,道路路面标记。在本文中,我们将专注于道路车道标记的自动提取,这是由各种车道的车辆应用所要求的,例如自主车辆导航和车道偏离警告。所提出的方法包括三个阶段:i)路中心线提取从低分辨率图像,ii)在原始图像中的路面检测,III​​的路面检测,以及所产生的路面上的路面标记提取。所提出的方法在昆士兰州布鲁斯公路的航空图像数据集上进行了测试,结果表明了我们的方法的效率。

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