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Aerial Images Visual Localization on a Vector Map Using Color-Texture Segmentation

机译:使用颜色纹理分割的矢量地图上的航空影像可视化定位

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In this paper we study the problem of combining UAV obtained optical data and a coastal vector map in absence of satellite navigation data. The method is based on presenting the territory as a set of segments produced by color-texture image segmentation. We then find such geometric transform which gives the best match between these segments and land and water areas of the georeferenced vector map. We calculate transform consisting of an arbitrary shift relatively to the vector map and bound rotation and scaling. These parameters are estimated using the RANSAC algorithm which matches the segments contours and the contours of land and water areas of the vector map. To implement this matching we suggest computing shape descriptors robust to rotation and scaling. We performed numerical experiments demonstrating the practical applicability of the proposed method.
机译:在本文中,我们研究了在没有卫星导航数据的情况下将无人机获得的光学数据与海岸矢量地图相结合的问题。该方法基于将区域呈现为一组由彩色纹理图像分割产生的分割。然后,我们找到这样的几何变换,它可以在这些段与地理参考矢量地图的土地和水域之间提供最佳匹配。我们计算的变换包括相对于向量图的任意移位以及绑定的旋转和缩放。这些参数是使用RANSAC算法估算的,该算法与矢量地图的线段轮廓以及陆地和水域轮廓相匹配。为了实现这种匹配,我们建议计算对旋转和缩放具有鲁棒性的形状描述符。我们进行了数值实验,证明了该方法的实际适用性。

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