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3D-real-time visualization of blood flow in cerebral aneurysms by light field particle image velocimetry

机译:光场粒子图像速度测速脑动脉瘤中血流的3D实时可视化

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Cerebral aneurysms require endovascular treatment to eliminate potentially lethal hemorrhagic rupture by hemostasis of blood flow within the aneurysm. Devices (e.g. coils and flow diverters) promote homeostasis, however, measurement of blood flow within an aneurysm or cerebral vessel before and after device placement on a microscopic level has not been possible so far. This would allow better individualized treatment planning and improve manufacture design of devices. For experimental analysis, direct measurement of real-time microscopic cerebrovascular flow in micro-structures may be an alternative to computed flow simulations. An application of microscopic aneurysm flow measurement on a regular basis to empirically assess a high number of different anatomic shapes and the corresponding effect of different devices would require a fast and reliable method at low cost with high throughout assessment. Transparent three dimensional 3D models of brain vessels and aneurysms may be used for microscopic flow measurements by particle image velocimetry (PIV), however, up to now the size of structures has set the limits for conventional 3D-imaging camera set-ups. On line flow assessment requires additional computational power to cope with the processing large amounts of data generated by sequences of multi-view stereo images, e.g. generated by a light field camera capturing the 3D information by plenoptic imaging of complex flow processes. Recently, a fast and low cost workflow for producing patient specific three dimensional models of cerebral arteries has been established by stereo-lithographic (SLA) 3D printing. These 3D arterial models are transparent an exhibit a replication precision within a submillimeter range required for accurate flow measurements under physiological conditions. We therefore test the feasibility of microscopic flow measurements by PIV analysis using a plenoptic camera system capturing light field image sequences. Averaging across a sequence of single double or triple shots of flashed images enables reconstruction of the real-time corpuscular flow through the vessel system before and after device placement. This approach could enable 3D-insight of microscopic flow within blood vessels and aneurysms at submillimeter resolution. We present an approach that allows real-time assessment of 3D particle flow by high-speed light field image analysis including a solution that addresses high computational load by image processing. The imaging set-up accomplishes fast and reliable PIV analysis in transparent 3D models of brain aneurysms at low cost. High throughput microscopic flow assessment of different shapes of brain aneurysms may therefore be possibly required for patient specific device designs.
机译:脑动脉瘤需要血管内治疗,以消除动脉瘤内血流止血的潜在致命的出血破裂。然而,到目前为止,装置(例如,线圈和流量分流器)促进稳态病态血管血管内部和脑管血管内的血流。这将允许更好的个性化治疗规划和改善设备的制造设计。对于实验分析,微结构中实时微观脑血管流动的直接测量可以是计算流量模拟的替代方案。微观动脉瘤流量测量定期应用了凭证评估大量不同解剖形状和不同器件的相应效果将在整个评估中以高成本需要快速可靠的方法。脑血管和动脉瘤的透明三维3D模型可用于通过粒子图像速度测量(PIV)进行微观流量测量,然而,到目前为止,结构的尺寸已经设定了传统的3D成像相机设置的限制。在线流量评估需要额外的计算能力来应对由多视图立体图像序列产生的大量数据,例如,由捕获3D信息的光场摄像机由复杂流程过程的全部成像捕获3D信息。最近,通过立体光刻(SLA)3D印刷建立了用于生产患者特异性三维模型的快速和低成本的工作流程。这些3D动脉模型是透明的,在生理条件下精确流量测量所需的亚倍数钟范围内表现出复制精度。因此,我们使用通风摄像机系统捕获光场图像序列来测试PIV分析的微观流量测量的可行性。在闪电图像的单个双射线序列上平均可以通过在设备放置之前和之后通过容器系统重建实时肉类流。这种方法可以在血管分辨率下启用血管和动脉瘤内的微观流动的3D洞察。我们提出一种方法,允许通过高速光场图像分析实时评估3D粒子流量,包括通过图像处理解决高计算负荷的解决方案。成像设置以低成本,在脑动脉瘤的透明3D模型中完成快速可靠的PIV分析。因此,可能需要对患者特定装置设计的不同形状的脑动脉瘤的高吞吐量微观流量评估。

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