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Image registration for prerspective deformation recovery

机译:图像注册以获得苛刻的变形恢复

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This paper describes a herarchical image registration algorithm to infer the perspective transformation that best matches a pair of images. This work estimates the perspective parameters by approximating the transformation to be piecewise affine. We demonstrate the process by subdividing a reference image into tiles and applying affine registration to match them in the target image. The affine parameters are computed iteratively in a coarse-to-fine hierarchical framework using a variation of the Lefenberg-Marquadt nonlinear least squares optimization method. This approach yields a robust solution that precisely registers image tiles with subpixel accuracy. The corresponding image tiles are used to estimate a global perspective transformation. We demonstrate this approach on pairs of digital images subjected to large perspective deformation.
机译:本文介绍了一种大小的图像登记算法,可推断最佳匹配一对图像的透视变换。这项工作通过近似转换为分段仿射来估计透视参数。我们通过将参考图像细分为瓦片并应用仿射注册来展示该过程,以将它们匹配在目标图像中。使用Lefenberg-Marquadt非线性最小二乘优化方法的变化,仿射参数迭代地计算在粗到细分的分层框架中。该方法产生了一种坚固的解决方案,可以精确地寄存具有子像素精度的图像块。相应的图像瓦片用于估计全局透视变换。我们展示了这种方法,对大量透视变形的数字图像。

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