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Maximum likelihood estimation of blood velocity using Doppler optical coherence tomography

机译:使用多普勒光学相干断层扫描估计血流速度的最大似然

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摘要

A recent trend in optical coherence tomography (OCT) hardware has been the move towards higher A-scan rates. However, the estimation of axial blood flow velocities is affected by the presence and type of noise, as well as the estimation method. Higher acquisition rates alone do not enable the accurate quantification of axial blood velocity. Moreover, decorrelation is an unavoidable feature of OCT signals when there is motion relative to the OCT beam. For in-vivo OCT measurements of blood flow, decorrelation noise affects Doppler frequency estimation by broadening the signal spectrum. Here we derive a maximum likelihood estimator (MLE) for Doppler frequency estimation that takes into account spectral broadening due to decorrelation. We compare this estimator with existing techniques. Both theory and experiment show that this estimator is effective, and outperforms the Kasai and additive white Gaussian noise (AWGN) ML estimators. We find that maximum likelihood estimation can be useful for estimating Doppler shifts for slow axial flow and near transverse flow. Due to the inherent linear relationship between decorrelation and Doppler shift of scatterers moving relative to an OCT beam, decorrelation itself may be a measure of flow speed.
机译:光学相干断层扫描(OCT)硬件的最新趋势是向更高的A扫描速率迈进。但是,轴向血流速度的估计受噪声的存在和类型以及估计方法的影响。仅较高的采集速度不能准确定量轴向血流速度。而且,当相对于OCT光束有运动时,去相关是OCT信号的不可避免的特征。对于体内OCT血流测量,去相关噪声会通过扩展信号频谱来影响多普勒频率估计。在这里,我们推导了多普勒频率估计的最大似然估计器(MLE),该估计器考虑了因去相关而引起的频谱展宽。我们将此估算器与现有技术进行比较。理论和实验均表明,该估计器是有效的,并且优于Kasai和加性高斯白噪声(AWGN)ML估计器。我们发现最大似然估计可用于估计缓慢的轴向流和接近横向流的多普勒频移。由于去相关和相对于OCT光束移动的散射体的多普勒频移之间固有的线性关系,去相关本身可能是流速的度量。

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