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凯萨自相关法和最大似然估计法在多普勒光学相干断层扫描中的比较。

Comparison of Kasai autocorrelation and maximum likelihood estimators for Doppler optical coherence tomography.

机构信息

Department of Electrical and Electronic Engineering, University of Hong Kong, Pokfulam, Hong Kong.

出版信息

IEEE Trans Med Imaging. 2013 Jun;32(6):1033-42. doi: 10.1109/TMI.2013.2248163. Epub 2013 Feb 21.

Abstract

In optical coherence tomography (OCT) and ultrasound, unbiased Doppler frequency estimators with low variance are desirable for blood velocity estimation. Hardware improvements in OCT mean that ever higher acquisition rates are possible, which should also, in principle, improve estimation performance. Paradoxically, however, the widely used Kasai autocorrelation estimator's performance worsens with increasing acquisition rate. We propose that parametric estimators based on accurate models of noise statistics can offer better performance. We derive a maximum likelihood estimator (MLE) based on a simple additive white Gaussian noise model, and show that it can outperform the Kasai autocorrelation estimator. In addition, we also derive the Cramer Rao lower bound (CRLB), and show that the variance of the MLE approaches the CRLB for moderate data lengths and noise levels. We note that the MLE performance improves with longer acquisition time, and remains constant or improves with higher acquisition rates. These qualities may make it a preferred technique as OCT imaging speed continues to improve. Finally, our work motivates the development of more general parametric estimators based on statistical models of decorrelation noise.

摘要

在光学相干断层扫描(OCT)和超声中,对于血流速度估计,需要具有低方差的无偏多普勒频率估计器。OCT 中的硬件改进意味着可以实现更高的采集速率,这原则上也应该提高估计性能。然而,具有广泛应用的 Kasai 自相关估计器的性能却随着采集速率的增加而恶化。我们提出,基于噪声统计准确模型的参数估计器可以提供更好的性能。我们基于简单的加性白高斯噪声模型推导出了最大似然估计器(MLE),并表明它可以胜过 Kasai 自相关估计器。此外,我们还推导出了克拉美罗下限(CRLB),并表明在中等数据长度和噪声水平下,MLE 的方差接近 CRLB。我们注意到,随着采集时间的延长,MLE 的性能会提高,并且在更高的采集速率下保持不变或提高。随着 OCT 成像速度的不断提高,这些特性可能使其成为首选技术。最后,我们的工作促使开发了基于去相关噪声统计模型的更通用的参数估计器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3454/3745780/87e61705e489/nihms495408f1.jpg

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