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Interactive Global Mosaic Stitching from Mesentery Video Sequences

机译:来自肠系膜视频序列的互动全球马赛克缝合

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Mosaicing or large scale panoramic image generation is a crucial task in medical imaging especially examining cellular features or microstructures. Earlier we have proposed an algorithm, Deformable Normalized Cross Cor-relation (DNCC) [1] to mosaic feature-poor, motion-blurred frog mesentery video sequences. DNCC algorithm generates a single mosaic from each sequence establishing broad structure morphology. Unfortunately, a single mosaic cannot incorporate all information captured from all the sequences together. In another word, we aim to generate a global mosaic combining or fusing all the single mosaics from mesentery sequences. Global mosaic is desirable for comprehensive observation and exploration of the target region in microscopic resolution. Unfortunately, registration of single mosaics to a global mosaic is challenging due to the perspective distortion, scale change and visible seam of single mosaics which are introduced during stitching. Traditional feature based or correlation based method do not work well in such cases. To handle these challenges, we propose a new fused descriptor combining the strengths of both feature based and correlation based registration method for fusing/stitching the single mosaics into one global mosaic or panorama.
机译:镶嵌或大规模的全景图像生成是医学成像的重要任务,特别是检查细胞特征或微观结构。早期我们提出了一种算法,可变形的标准化交叉核心关系(DNCC)[1]到马赛克特征差,运动模糊的青蛙肠系膜视频序列。 DNCC算法从建立宽结构形态的每个序列产生单个马赛克。不幸的是,单个马赛克不能将所有序列捕获的所有信息纳入其中。在另一个单词中,我们的目标是从肠系膜序列中产生全球马赛克组合或融合所有单个马赛克。全球马赛克是为了综合观察和探索目标区域的微观分辨率。遗憾的是,由于在缝合期间引入的单一马赛克的透视变形,鳞片变化和可见接缝,单一马赛克的登记是挑战。基于传统的特征或基于相关的方法在这种情况下不起作用。为了处理这些挑战,我们提出了一种新的融合描述符,将基于特征和基于相关的相关性的配准方法的强度组合成融合/拼接单个马赛克或全局的马赛克或全景。

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