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Blood flow velocity vector field reconstruction from dual-beam bidirectional Doppler OCT measurements in retinal veins

机译:视网膜静脉中双束双向多普勒OCT测量的血流速度矢量场重建

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摘要

In this paper, we demonstrate the possibility to reconstruct the actual blood flow velocity vector field in retinal microvessels from dual-beam bidirectional Doppler optical coherence tomography measurements. First, for a better understanding of measured phase patterns, several flow situations were simulated on the basis of the known dual beam measurement geometry. We were able to extract the vector field parameters that determine the measured phase pattern, allowing for the development of an algorithm to reconstruct the velocity vector field from measured phase data. In a next step, measurements were performed at a straight vessel section and at a venous convergence; the obtained phase data were evaluated by means of the new approach. For the straight vessel section, the reconstructed flow velocity vector field yielded a parabolic flow. For the venous convergence, however, the reconstructed vector field deviated from a parabolic profile, but was in very good accordance with the simulated vector field for the given vessel geometry. The proposed algorithm allows predictions of the velocity vector field. Moreover, the algorithm is also sensitive to directional changes of the flow velocity as small as <1°, thereby offering insight in the flow characteristics of the non-Newtonian fluid blood in microvessels.
机译:在本文中,我们证明了通过双光束双向多普勒光学相干断层扫描测量重建视网膜微血管中实际血流速度矢量场的可能性。首先,为了更好地了解所测量的相位模式,在已知的双光束测量几何结构的基础上模拟了几种流动情况。我们能够提取确定测量相位模式的矢量场参数,从而允许开发一种算法,从测量相位数据重建速度矢量场。下一步,在直管段和静脉汇合处进行测量。通过新方法评估获得的相位数据。对于直管段,重建的流速矢量场产生了抛物线流动。但是,对于静脉收敛,重建的矢量场偏离了抛物线轮廓,但是与给定血管几何结构的模拟矢量场非常吻合。所提出的算法允许预测速度矢量场。此外,该算法对小至<1°的流速方向变化也很敏感,从而提供了对微血管中非牛顿流体血液流动特性的了解。

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