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首页> 外文期刊>Geoscience and Remote Sensing, IEEE Transactions on >Bundle Adjustment With Rational Polynomial Camera Models Based on Generic Method
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Bundle Adjustment With Rational Polynomial Camera Models Based on Generic Method

机译:基于通用方法的有理多项式相机模型的捆绑调整

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摘要

A rational polynomial camera (RPC) model is a kind of generic sensor model that can be used in different remote sensing systems to model the relationship between object space and image space and transform image data to conform to a map projection. Unlike traditional physical camera models, an RPC model has many coefficients (a total of 80), and these coefficients do not have a physical interpretation. This represents a difficult challenge for the mapping community. For RPC refinement, many solutions, including direct and indirect methods, have been developed. One of them, the recent developed generic method has been shown to be a robust method. Because the generic method can simulate the camera's exterior parameters, it can be used in any geometric situation. Even so, the performance of bundle adjustment with the generic method is still unknown. In this paper, through experiments with a stereo pair and a stereo triplet, the capability of high-accuracy geopositioning based on the generic method is demonstrated. We first give a brief review of previous bundle adjustment methods based on RPC. Then, the bundle adjustment algorithm based on the generic method is introduced in detail. We finally present the experiments with both IKONOS and QuickBird imageries. The experiments show that the bundle adjustment based on the generic method can reach subpixel accuracy in image space and submeter accuracy in object space.
机译:有理多项式相机(RPC)模型是一种通用传感器模型,可以在不同的遥感系统中使用它来建模对象空间和图像空间之间的关系,并转换图像数据以符合地图投影。与传统的物理相机模型不同,RPC模型具有许多系数(总共80个),并且这些系数没有物理解释。对于制图界来说,这是一个艰巨的挑战。为了优化RPC,已经开发了许多解决方案,包括直接和间接方法。其中之一,最近开发的通用方法已被证明是一种可靠的方法。由于通用方法可以模拟相机的外部参数,因此可以在任何几何情况下使用。即使这样,使用通用方法进行束调整的性能仍然未知。通过对立体声对和立体声三重态的实验,证明了基于通用方法的高精度地理定位能力。我们首先简要回顾一下以前基于RPC的包调整方法。然后,详细介绍了基于通用方法的束调整算法。最后,我们将对IKONOS和QuickBird影像进行实验。实验表明,基于通用方法的束调整可以在图像空间达到亚像素精度,在物空间达到亚米级精度。

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