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Real-world multisensor image alignment using edge focusing and Hausdorff distances

机译:使用边缘聚焦和Hausdorff距离进行实际的多传感器图像对齐

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Abstract: The area-based methods, such as using Laplacian pyramid and Fourier transform-based phase matching, benefit by highlighting high spatial frequencies to reduce sensitivity to the feature inconsistency problem in the multisensor image registration. The feature extraction and matching methods are more powerful and versatile to process poor quality IR images. We implement multi-scale hierarchical edge detection and edge focusing and introduce a new salience measure for the horizon, for multisensor image registration. The common features extracted from images of two modalities can be still different in detail. Therefore, the transformation space match methods with the Hausdorff distance measure is more suitable than the direct feature matching methods. We have introduced image quadtree partition technique to the Hausdorff distance matching, that dramatically reduces the size of the search space. Image registration of real world visible/IR images of battle fields is shown. !12
机译:摘要:基于面积的方法,例如使用拉普拉斯金字塔和基于傅里叶变换的相位匹配,通过突出显示高空间频率来减少多人传统图像登记中对特征不一致问题的敏感性。特征提取和匹配方法更强大且多功能地处理质量差的IR图像。我们实施多尺度层次边缘检测和边缘聚焦,并为多传感器图像配准,引入地平线的新显着措施。从两个模态的图像中提取的常见特征可以详细仍然不同。因此,具有Hausdorff距离测量的变换空间匹配方法比直接特征匹配方法更适合。我们已经向Hausdorff距离匹配引入了图像Quadtree分区技术,这显着降低了搜索空间的大小。图像注册现实世界可见/ IR图像的战斗领域。 !12

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