Semiconductor Optoelectronics, Volume. 45, Issue 6, 966(2024)

Multimodal Image Registration Based on Binary Self-similarity Descriptors

ZHANG Weigang, XIE Zhihua, CHE Chi, FU Zhengquan, and XU Benyuan
Author Affiliations
  • Chongqing Optoelectronics Research Institute, Chongqing 400060, CHN
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    A notable limitation of the local self-similarity descriptor (LSS) is that it is considered unsuitable for multimodal image registration. In order to address this issue, a novel self-similarity descriptor is proposed and effectively applied for multi-modal image registration. First, the phase congruency algorithm is used to extract the maximum moment of the multimodal image. Second, Harris keypoints are extracted from the edge images obtained from the maximum moment information. Third, a binary image is produced based on the edge image, and a binary self-similar descriptor is constructed based on the binary image. Finally, descriptor similarity calculations and keypoint matching are performed for multimodal images. Comparative experiments demonstrate that the proposed binary self-similar descriptor serve as a replacement for the traditional self-similar descriptor, and it effectively improve the compatibility and efficiency of the self-similar descriptor for multimodal images.

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    ZHANG Weigang, XIE Zhihua, CHE Chi, FU Zhengquan, XU Benyuan. Multimodal Image Registration Based on Binary Self-similarity Descriptors[J]. Semiconductor Optoelectronics, 2024, 45(6): 966

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    Paper Information

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    Received: Jun. 14, 2024

    Accepted: Feb. 28, 2025

    Published Online: Feb. 28, 2025

    The Author Email:

    DOI:10.16818/j.issn1001-5868.2024061405

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