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Novel fusion for hybrid optical/microcomputed tomography imaging based on natural light surface reconstruction and iterated closest point

机译:基于自然光表面重建和迭代最近点的混合光学/微计算机断层成像成像的新型融合

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摘要

In mathematics, optical molecular imaging including bioluminescence tomography (BLT), fluorescence tomography (FMT) and Cerenkov luminescence tomography (CLT) are concerned with a similar inverse source problem. They all involve the reconstruction of the 3D location of a single/multiple internal luminescent/fluorescent sources based on 3D surface flux distribution. To achieve that, an accurate fusion between 2D luminescent/fluorescent images and 3D structural images that may be acquired form micro-CT, MRI or beam scanning is extremely critical. However, the absence of a universal method that can effectively convert 2D optical information into 3D makes the accurate fusion challengeable. In this study, to improve the fusion accuracy, a new fusion method for dual-modality tomography (luminescence/fluorescence and micro-CT) based on natural light surface reconstruction (NLSR) and iterated closest point (ICP) was presented. It consisted of Octree structure, exact visual hull from marching cubes and ICP. Different from conventional limited projection methods, it is 360° free-space registration, and utilizes more luminescence/fluorescence distribution information from unlimited multi-orientation 2D optical images. A mouse mimicking phantom (one XPM-2 Phantom Light Source, XENOGEN Corporation) and an in-vivo BALB/C mouse with implanted one luminescent light source were used to evaluate the performance of the new fusion method. Compared with conventional fusion methods, the average error of preset markers was improved by 0.3 and 0.2 pixels from the new method, respectively. After running the same 3D internal light source reconstruction algorithm of the BALB/C mouse, the distance error between the actual and reconstructed internal source was decreased by 0.19 mm.
机译:在数学中,包括生物发光层析成像(BLT),荧光层析成像(FMT)和切伦科夫发光层析成像(CLT)在内的光学分子成像都与类似的逆源问题有关。它们都涉及基于3D表面通量分布来重建单个/多个内部发光/荧光源的3D位置。为了实现这一点,在2D发光/荧光图像和3D结构图像之间的精确融合非常关键,可以通过微型CT,MRI或束扫描获得该融合。但是,由于缺少可以将2D光学信息有效转换为3D的通用方法,因此很难进行精确的融合。在这项研究中,为提高融合精度,提出了一种基于自然光表面重建(NLSR)和迭代最近点(ICP)的双峰层析成像(发光/荧光和微型CT)融合方法。它由Octree结构,行进立方体和ICP精确的视觉外壳组成。与传统的有限投影方法不同,它是360°自由空间配准,并利用来自无限多方位2D光学图像的更多发光/荧光分布信息。模仿幻影的小鼠(XPE-2幻影光源,XENOGEN公司)和植入了一个发光光源的体内BALB / C小鼠用于评估新融合方法的性能。与传统的融合方法相比,新方法的预设标记的平均误差分别提高了0.3和0.2个像素。运行与BALB / C鼠标相同的3D内部光源重建算法后,实际和重建的内部光源之间的距离误差减少了0.19 mm。

著录项

  • 来源
    《Multimodal biomedical imaging IX》|2014年|893713.1-893713.7|共7页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Harbin University of Science and Technology, School of Automation, Harbin, Heilongjiang 150080, China;

    Chinese Academy of Sciences, Institute of Automation, Intelligent Medical Research Center, Beijing 100190, China,Xidian University, Life Sciences Research Center, School of Life Sciences and Technology, Xi'an, Shaanxi 710071, China;

    Harbin University of Science and Technology, School of Automation, Harbin, Heilongjiang 150080, China;

    Xidian University, Life Sciences Research Center, School of Life Sciences and Technology, Xi'an, Shaanxi 710071, China;

    Chinese Academy of Sciences, Institute of Automation, Intelligent Medical Research Center, Beijing 100190, China;

    Harbin University of Science and Technology, School of Automation, Harbin, Heilongjiang 150080, China;

    Chinese Academy of Sciences, Institute of Automation, Intelligent Medical Research Center, Beijing 100190, China;

    Chinese Academy of Sciences, Institute of Automation, Intelligent Medical Research Center, Beijing 100190, China;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Times Roman; image area; acronyms; references;

    机译:时代罗马图像区域首字母缩写词参考资料;

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