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Automatic georeferencing of imagery from high-resolution, low-altitude, low-cost aerial platforms

机译:来自高分辨率,低空,低成本航空平台的图像自动地理配准

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Existing nadir-viewing aerial image databases such as that available on Google Earth contain data from a variety of sources at varying spatial resolutions. Low-cost, low-altitude, high-resolution aerial systems such as unmanned aerial vehicles and balloon-borne systems can provide ancillary data sets providing higher resolution, oblique-looking data to enhance the data available to the user. This imagery is difficult to georeference due to the different projective geometry present in these data. Even if this data is accompanied by metadata from global positioning system (GPS) and inertial measurement unit (IMU) sensors, the accuracy obtained from low-cost versions of these sensors is limited. Combining automatic image registration techniques with the information provided by the IMU and onboard GPS, it is possible to improve the positioning accuracy of these oblique data sets on the ground plane using existing orthorectified imagery available from sources such as Google Earth. Using both the affine scale-invariant feature transform (ASIFT) and maximally stable extremal regions (MSER), feature detectors aid in automatically detecting correspondences between the obliquely collected images and the base map. These correspondences are used to georeference the high-resolution, oblique image data collected from these low-cost aerial platforms providing the user with an enhanced visualization experience.
机译:现有的最低观测航空图像数据库(例如Google Earth上可用的数据库)包含来自各种来源的具有不同空间分辨率的数据。低成本,低空,高分辨率的航空系统(例如无人飞行器和气球载系统)可以提供辅助数据集,从而提供更高分辨率,外观倾斜的数据,以增强用户可用的数据。由于这些数据中存在不同的投影几何,因此很难对这些图像进行地理配准。即使此数据伴随有来自全球定位系统(GPS)和惯性测量单元(IMU)传感器的元数据,从这些传感器的低成本版本获得的精度也受到限制。将自动图像配准技术与IMU和车载GPS提供的信息相结合,可以使用可从Google Earth等来源获得的现有正交校正图像来提高这些倾斜数据集在地平面上的定位精度。使用仿射尺度不变特征变换(ASIFT)和最大稳定极值区域(MSER),特征检测器有助于自动检测倾斜收集的图像和底图之间的对应关系。这些对应关系用于对从这些低成本航空平台收集的高分辨率,倾斜图像数据进行地理参考,从而为用户提供增强的可视化体验。

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