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A GENERATIVE MODEL FOR TRUE ORTHORECTIFICATION

机译:真正矫正器的生成模型

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Orthographic images compose an efficient and economic way to represent aerial images. This kind of information allows to measure two-dimensional objects and relate these to Geographic Information Systems. This paper deals with the computation of a true orthographic image given a set of overlapping perspective images. These are, together with the internal and external calibration the only input to our approach. These few requirements form a large advantage to systems where the digital surface model (DSM), e.g. provided by LIDAR data, is necessary. We used a Bayesian approach and define a generative model of the input images. In this, the input images are regarded as noisy measurements of an underlying true and hence unknown orthoimage. These measurements are obtained by an image formation process (generative model) that involves apart from the true orthoimage several additional parameters. Our goal is to invert the image formation process by estimating those parameters which make our input images most likely. We present results on aerial images of a complex urban environment.
机译:正交图像构成有效和经济的方式来代表空中图像。这种信息允许测量二维对象并将这些与地理信息系统相关联。本文涉及给定一组重叠透视图像的真正正射图像的计算。这些是与内部和外部校准的唯一输入到我们的方法。这几个要求形成了数字表面模型(DSM),例如,例如数字表面模型(DSM)的大量优点。由LIDAR数据提供,是必要的。我们使用了贝叶斯方法并定义了输入图像的生成模型。在此,输入图像被视为底层真实的噪声测量,因此未知的orthoImage。这些测量由图像形成过程(生成模型)获得,其涉及与真正的正弦图像分开几个附加参数。我们的目标是通过估计最有可能的输入图像的参数来颠倒图像形成过程。我们在复杂的城市环境的空中形象上显示结果。

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