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Multimodal Remote Sensing Image Registration Based on Image Transfer and Local Features

机译:基于图像传递和局部特征的多峰遥感图像配准

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摘要

Automatic registration is still a challenging problem for multimodal remote sensing images including optical, light detection and ranging, synthetic aperture radar images, and so on. Due to the differences in imaging principles, the gray value, texture, and landscape characteristic of these images are different in the local area. This also makes it difficult to obtain satisfactory results for the conventional image registration methods. In order to achieve registration of multimodal images to obtain complementary information, we apply the transfer algorithm based on a deep image analogy to the preprocessing of image registration. It eliminates the differences in multimodal remote sensing images by blending the original image structure and texture. The conventional local feature-based method is applied to match the original and generated images. Correspondences are increased and the registration error is reduced. The experiments demonstrate that our method can effectively deal with multimodal data and produce more accurate results. The algorithm is based on the joint of image deep semantic features and indirectly achieves matching of the original image pair. It provides a new solution to the problem of multimodal images registration.
机译:对于包括光学,光检测和测距,合成孔径雷达图像等在内的多模式遥感影像,自动配准仍然是一个具有挑战性的问题。由于成像原理的差异,这些图像的灰度值,纹理和风景特征在局部区域不同。这也使得对于常规图像配准方法难以获得令人满意的结果。为了实现多模态图像的配准以获得互补信息,我们将基于深度图像类比的传输算法应用于图像配准的预处理。通过混合原始图像结构和纹理,消除了多模式遥感图像中的差异。应用常规的基于局部特征的方法来匹配原始图像和生成的图像。对应关系增加,注册错误减少。实验表明,我们的方法可以有效地处理多峰数据并产生更准确的结果。该算法基于图像深度语义特征的联合,间接实现了原始图像对的匹配。它为多模式图像配准问题提供了新的解决方案。

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