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Robust Automatic Registration of Multimodal Satellite Images Using CCRE With Partial Volume Interpolation

机译:使用部分体积插值的CCRE进行多模式卫星图像的鲁棒自动配准

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摘要

One of the most important steps in data fusion is image registration. Automatic image-to-image registration for images captured by different sensors traditionally requires the use of information-theoretic similarity measures such as mutual information. Recently, a new similarity measure known as cross-cumulative residual entropy (CCRE) has been proposed for multimodal image registration in medical imaging applications. In this paper, we investigate the use of CCRE for multisensor registration of remote sensing imagery. In particular, we investigate the extreme case of registering synthetic aperture radar images to optical images. We also propose a novel extension to the Parzen-window optimization approach proposed by Thévenaz which involves applying partial volume interpolation in the calculation of the gradients of the similarity measure. Our experimental results show that our proposed approach which uses CCRE as the similarity measure and partial volume interpolation in the optimization procedure provides superior performance to other approaches investigated.
机译:数据融合中最重要的步骤之一是图像配准。传统上,由不同传感器捕获的图像的自动图像到图像配准需要使用信息理论上的相似性度量,例如互信息。最近,已提出一种新的相似性度量,称为交叉累积残差熵(CCRE),用于医学成像应用中的多峰图像配准。在本文中,我们研究了CCRE在遥感影像多传感器配准中的使用。特别是,我们研究了将合成孔径雷达图像注册到光学图像的极端情况。我们还提出了对Thévenaz提出的Parzen窗口优化方法的新颖扩展,该方法包括在相似性度量的梯度计算中应用部分体积插值。我们的实验结果表明,我们提出的在优化过程中使用CCRE作为相似性度量和部分体积插值的方法提供了优于其他方法的性能。

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