Automatic Image-Map Alignment Using Edge-Based Code Mutual Information and 3-D Hilbert Scan

Li Tian, S. Kamata
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引用次数: 1

Abstract

〈Summary〉 This study presents a new algorithm for automatic image-map alignment problem using a new similarity measure named Edge-Based Code Mutual Information (EBCMI) and 3-D Hilbert scan. In general, each image-map pair can be viewed as two special multimodal images, however, are very different in their representations such as the intensity. Therefore, the normal Mutual Information (MI) using the intensity in traditional alignment method may result in misalignment. To solve the problem, codes based on the edges of the image-map pairs are constructed and Mutual Information of the codes is computed as the similarity measure for the alignment in our method. Since Edge-Based Code (EBC) is robust to the differences between the image-map pairs in their representations, EBCMI also can overcome the differences. On the other hand, the 3-D search space in alignment can be converted to a 1-D search space sequence by 3-D Hilbert Scan and a new search strategy is proposed on the 1-D search space sequence. The experimental results show that the proposed EBCMI performed better than the normal MI and some other similarity measures and the proposed search strategy gives flexibility between efficiency and accuracy for automatic image-map alignment task.
基于边缘码互信息和三维希尔伯特扫描的图像地图自动对齐
摘要:本文提出了一种基于边缘码互信息(EBCMI)和三维希尔伯特扫描的图像地图自动对齐算法。一般来说,每个图像映射对都可以看作是两个特殊的多模态图像,但是它们的表现形式(如强度)有很大的不同。因此,在传统的对准方法中,使用强度的正常互信息(MI)可能会导致不对准。为了解决这一问题,该方法基于图像映射对的边缘构造编码,并计算编码的互信息作为对齐的相似性度量。由于基于边缘的代码(EBC)对图像映射对在表示上的差异具有鲁棒性,因此EBCMI也可以克服这些差异。另一方面,利用三维希尔伯特扫描将三维搜索空间转换为一维搜索空间序列,并在一维搜索空间序列上提出了一种新的搜索策略。实验结果表明,本文提出的搜索策略优于常规搜索策略和其他一些相似度度量,并且在效率和精度之间具有灵活性,可以用于自动图像地图对齐任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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