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360° free space fluorescence molecular tomography using silhouette surface reconstruction

机译:360°自由空间荧光分子断层扫描使用轮廓表面重建

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Complete projection (360°) free-space fluorescence tomography of opaque media is poised to enable highly performing three-dimensional imaging through entire small animals in-vivo. This approach can lead to a new generation of Fluorescence Molecular Tomography (FMT) systems since it allows high spatial sampling of photon fields propagating through tissue at any projection, employing non-constricted animal surfaces. Key features of this development is the implementation of non-contact illumination, for example by using beam scanning techniques for light delivery on the tissue surface and direct non-contact imaging with CCD cameras. Similarly, the development of free-space geometries, i.e. implementations that do not utilize immersion of the animal in matching fluids are essential for obtaining appropriate experimental simplicity and avoid unnecessary diffusion through scattering matching media. To facilitate these developments it is important to retrieve the three-dimensional surface and a common coordinate system for the illumination system, the detection system and the animal. Herein, we employ a volume carving method to capture three-dimensional surfaces of diffusive objects from its silhouettes and register the captured surface in the geometry of an FMT 360°-projection acquisition system to obtain three-dimensional fluorescence image reconstructions. Using experimental measurements we evaluate the accuracy of the surface capture procedure by reconstructing the surfaces of phantoms of known dimensions and demonstrate how this surface extraction method can be utilized in an FMT inversion scheme. We then employ this methodology to characterize the animal movement of anaesthetized animals and study the effects of animal movement on the FMT reconstructed image quality.
机译:OPAQUE介质的完整投影(360°)自由空间荧光断层扫描是准备,使通过体内整个小动物进行高度表现三维成像。这种方法可以导致新一代荧光分子断层摄影(FMT)系统,因为它允许在任何突起的任何突出物中传播通过组织的光子场的高空间采样,采用非收缩的动物表面。该开发的主要特征是实现非接触照明,例如通过使用光束扫描技术,用于在组织表面上的光输送和具有CCD摄像机的直接非接触成像。类似地,自由空间几何形状的发展,即不利用动物在匹配的流体中浸没的实施方式对于获得适当的实验简单性是必不可少的,并且通过散射匹配介质避免不必要的扩散。为了便于这些发展,重要的是检索用于照明系统的三维表面和公共坐标系,检测系统和动物。这里,我们采用体积雕刻方法来捕获从其剪影的漫射物体的三维表面,并在FMT 360°的几何形状中注册捕获的表面,以获得三维荧光图像重建。使用实验测量,我们通过重建已知尺寸的幽灵表面来评估表面捕获过程的准确性,并证明如何在FMT反转方案中使用该表面提取方法。然后,我们采用这种方法来表征麻醉动物的动物运动,并研究动物运动对FMT重建图像质量的影响。

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