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Generation and optimization of superpixels as image processing kernels for Jones matrix optical coherence tomography

机译:超像素的生成和优化作为琼斯矩阵光学相干断层扫描的图像处理内核

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摘要

Jones matrix-based polarization sensitive optical coherence tomography (JM-OCT) simultaneously measures optical intensity, birefringence, degree of polarization uniformity, and OCT angiography. The statistics of the optical features in a local region, such as the local mean of the OCT intensity, are frequently used for image processing and the quantitative analysis of JM-OCT. Conventionally, local statistics have been computed with fixed-size rectangular kernels. However, this results in a trade-off between image sharpness and statistical accuracy. We introduce a superpixel method to JM-OCT for generating the flexible kernels of local statistics. A superpixel is a cluster of image pixels that is formed by the pixels’ spatial and signal value proximities. An algorithm for superpixel generation specialized for JM-OCT and its optimization methods are presented in this paper. The spatial proximity is in two-dimensional cross-sectional space and the signal values are the four optical features. Hence, the superpixel method is a six-dimensional clustering technique for JM-OCT pixels. The performance of the JM-OCT superpixels and its optimization methods are evaluated in detail using JM-OCT datasets of posterior eyes. The superpixels were found to well preserve tissue structures, such as layer structures, sclera, vessels, and retinal pigment epithelium. And hence, they are more suitable for local statistics kernels than conventional uniform rectangular kernels.
机译:基于琼斯矩阵的偏振敏感光学相干断层扫描(JM-OCT)同时测量光学强度,双折射,偏振均匀度和OCT血管造影。局部区域中光学特征的统计信息(例如OCT强度的局部均值)经常用于图像处理和JM-OCT的定量分析。按照惯例,本地统计数据是使用固定大小的矩形核计算的。但是,这导致在图像清晰度和统计精度之间进行权衡。我们将超像素方法引入JM-OCT,以生成灵活的本地统计内核。超像素是由像素的空间和信号值附近形成的图像像素簇。提出了一种专门针对JM-OCT的超像素生成算法及其优化方法。空间接近度位于二维横截面空间中,信号值是四个光学特征。因此,超像素方法是针对JM-OCT像素的六维聚类技术。使用后眼的JM-OCT数据集详细评估了JM-OCT超像素的性能及其优化方法。发现超像素可以很好地保存组织结构,例如层结构,巩膜,血管和视网膜色素上皮。因此,与传统的统一矩形核相比,它们更适合于本地统计核。

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