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RECONSTRUCTION FROM IMAGE SEQUENCES BY MEANS OF RELATIVE DEPTHS

机译:通过相对深度从图像序列重建

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This paper deals with the problem of reconstructing the locations of n points in space from m different images without camera calibration. It shows how these problems can be put into a similar theoretical framework. A new concept, the reduced fundamental matrix, is introduced. It contains just 4 parameters and can be used to predict locations of points in the images and to make reconstruction. We also introduce the concept of reduced fundamental tensor, which describes the relations between points in 3 images. It has 15 components and depends on 9 parameters. Necessary and sufficient conditions for a tensor to be a reduced fundamental tensor are derived. This framework can be generalised to a sequence of images. The dependencies between the different representations are investigated. Furthermore a canonical form of the camera matrices in a sequence are presented. [References: 13]
机译:本文涉及在不进行相机校准的情况下,从m个不同的图像中重建空间中n个点的位置的问题。它显示了如何将这些问题放入类似的理论框架中。引入了一个新概念,即简化的基本矩阵。它仅包含4个参数,可用于预测图像中点的位置并进行重建。我们还介绍了简化基本张量的概念,该概念描述了3张图像中点之间的关系。它具有15个组件,并取决于9个参数。得出将张量减小为基本张量的充要条件。该框架可以推广到一系列图像。研究了不同表示之间的依赖性。此外,给出了序列的相机矩阵的规范形式。 [参考:13]

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