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MREAK: Morphological Retina Keypoint Descriptor

机译:MREAK:形态视网膜关键点描述符

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摘要

A variety of computer vision applications depend on the efficiency of image matching algorithms used. Various descriptors are designed to detect and match features in images. Deployment of this algorithms in mobile applications creates a need for low computation time. Binary descriptors requires less computation time than float-point based descriptors because of the intensity comparison between pairs of sample points and comparing after creating a binary string. In order to decrease time complexity, quality of keypoints matched is often compromised. We propose a keypoint descriptor named Morphological Retina Keypoint Descriptor (MREAK) inspired by the function of human pupil which dilates and constricts responding to the amount of light. By using morphological operators of opening and closing and modifying the retinal sampling pattern accordingly, an increase in the number of accurately matched keypoints is observed. Our results show that matched keypoints are more efficient than FREAK descriptor and requires low computation time than various descriptors like SIFT, BRISK and SURF.
机译:各种计算机视觉应用取决于所使用的图像匹配算法的效率。设计了各种描述符来检测和匹配图像中的特征。在移动应用程序中部署此算法会导致需要较少的计算时间。二进制描述符比基于浮点的描述符需要更少的计算时间,这是因为采样点对之间的强度比较以及创建二进制字符串后的比较。为了降低时间复杂度,匹配的关键点质量通常会受到影响。我们提出了一个称为形态视网膜关键点描述符(MREAK)的关键点描述符,其灵感来自于人类瞳孔的功能,该功能会扩张并收缩对光量的响应。通过使用打开和关闭的形态运算符并相应地修改视网膜采样模式,可以观察到精确匹配的关键点数量的增加。我们的结果表明,匹配的关键点比FREAK描述符更有效,并且比各种描述符(如SIFT,BRISK和SURF)所需的计算时间短。

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