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使用神经网络从非偏振敏感光学相干断层扫描信号中合成偏振均匀度。

Synthesizing the degree of polarization uniformity from non-polarization-sensitive optical coherence tomography signals using a neural network.

作者信息

Makita Shuichi, Miura Masahiro, Azuma Shinnosuke, Mino Toshihiro, Yasuno Yoshiaki

机构信息

Computational Optics Group, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki 305-8573, Japan.

Department of Ophthalmology, Tokyo Medical University Ibaraki Medical Center, 3-20-1 Chuo, Ami, Ibaraki 300-0395, Japan.

出版信息

Biomed Opt Express. 2023 Mar 17;14(4):1522-1543. doi: 10.1364/BOE.482199. eCollection 2023 Apr 1.

Abstract

Degree of polarization uniformity (DOPU) imaging obtained by polarization-sensitive optical coherence tomography (PS-OCT) has the potential to provide biomarkers for retinal diseases. It highlights abnormalities in the retinal pigment epithelium that are not always clear in the OCT intensity images. However, a PS-OCT system is more complicated than conventional OCT. We present a neural-network-based approach to estimate the DOPU from standard OCT images. DOPU images were used to train a neural network to synthesize the DOPU from single-polarization-component OCT intensity images. DOPU images were then synthesized by the neural network, and the clinical findings from ground truth DOPU and synthesized DOPU were compared. There is a good agreement in the findings for RPE abnormalities: recall was 0.869 and precision was 0.920 for 20 cases with retinal diseases. In five cases of healthy volunteers, no abnormalities were found in either the synthesized or ground truth DOPU images. The proposed neural-network-based DOPU synthesis method demonstrates the potential of extending the features of retinal non-PS OCT.

摘要

通过偏振敏感光学相干断层扫描(PS-OCT)获得的偏振度均匀性(DOPU)成像有潜力为视网膜疾病提供生物标志物。它突出了视网膜色素上皮中的异常情况,而这些异常在OCT强度图像中并不总是清晰可见。然而,PS-OCT系统比传统OCT更为复杂。我们提出了一种基于神经网络的方法,用于从标准OCT图像估计DOPU。使用DOPU图像训练神经网络,以便从单偏振分量OCT强度图像合成DOPU。然后由神经网络合成DOPU图像,并比较来自真实DOPU和合成DOPU的临床发现。在视网膜色素上皮异常的发现方面存在良好的一致性:对于20例视网膜疾病患者,召回率为0.869,精度为0.920。在5例健康志愿者中,合成的DOPU图像和真实的DOPU图像均未发现异常。所提出的基于神经网络的DOPU合成方法展示了扩展视网膜非PS OCT特征的潜力。

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