Chan R, Chau A, Karl W, Nadkarni S, Khalil A, Iftimia N, Shishkov M, Tearney G, Kaazempur-Mofrad M, Bouma B
Opt Express. 2004 Sep 20;12(19):4558-72. doi: 10.1364/opex.12.004558.
We present a novel multi-resolution variational framework for vascular optical coherence elastography (OCE). This method exploits prior information about arterial wall biomechanics to produce robust estimates of tissue velocity and strain, reducing the sensitivity of conventional tracking methods to both noise- and strain-induced signal decorrelation. The velocity and strain estimation performance of this new estimator is demonstrated in simulated OCT image sequences and in benchtop OCT scanning of a vascular tissue sample.
我们提出了一种用于血管光学相干弹性成像(OCE)的新型多分辨率变分框架。该方法利用有关动脉壁生物力学的先验信息来生成组织速度和应变的稳健估计值,降低了传统跟踪方法对噪声和应变引起的信号去相关的敏感性。这种新估计器的速度和应变估计性能在模拟的光学相干断层扫描(OCT)图像序列以及血管组织样本的台式OCT扫描中得到了验证。