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Segmentation of diabetic macular edema for retinal OCT images

机译:糖尿病性黄斑水肿的视网膜OCT图像分割

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摘要

Optical coherence tomography (OCT) is becoming one of the most important detection modalities for fast and noninvasive assessment of ophthalmological diseases. Diabetic macular edema (DME) is one of the important reasons leads to blindness. Its pathological features are mainly manifested in the accumulation of fluid in the retina. An automated method is proposed to identify and quantify the volume of cystoid macular edema in Spectral Domain OCT (SD-OCT) images. In the first stage of preprocessing, we balance the apparent signal-to-noise of each retinal OCT image. Because the signal-to-noise of OCT images is variable from patient to patient, and balance of the signal-to-noise ensures consistent segmentation of cystoid fluid. Speckle noise is the main reason leads to quality degrading in OCT images. The denoising method should be efficient for the noise suppression, and the edge information can be preserved at the same time. Then we used the anisotropic diffusion filter to suppress shot noise. The intensity inhomogeneity in OCT images may lead to false detection in the further segmentation work. Then we used the gamma transformation to change the brightness, which eliminates the effect availably. In the second stage of segmentation, we solve the problem of segmentation effectively by the improved level set method and calculated the area of edema area, which provides quantitative analytic tools for clinical diagnosis and therapy. Finally, the proposed method was evaluated on 15 SD-OCT retinal images from DME adults. Leave-one-out evaluation resulted in a precision, sensitivity and dice similarity coefficient (DSC) of 81.12%, 86.90% and 80.05%, respectively.
机译:光学相干断层扫描(OCT)成为眼科疾病快速,无创评估中最重要的检测方式之一。糖尿病性黄斑水肿(DME)是导致失明的重要原因之一。其病理特征主要表现为视网膜中积液。提出了一种自动方法来识别和量化光谱域OCT(SD-OCT)图像中的囊状黄斑水肿的体积。在预处理的第一阶段,我们平衡每个视网膜OCT图像的表观信噪比。由于OCT图像的信噪比因患者而异,并且信噪比的平衡确保了囊状液的一致分割。斑点噪声是导致OCT图像质量下降的主要原因。去噪方法对于抑制噪声应该是有效的,并且可以同时保留边缘信息。然后,我们使用各向异性扩散滤波器来抑制散粒噪声。 OCT图像中的强度不均匀性可能导致在进一步的分割工作中出现错误检测。然后,我们使用伽玛变换来更改亮度,从而有效地消除了这种影响。在分割的第二阶段,我们通过改进的水平集方法有效地解决了分割问题,并计算了水肿面积,为临床诊断和治疗提供了定量的分析工具。最后,对来自DME成人的15张SD-OCT视网膜图像进行了评估。留一法评估的精度,灵敏度和骰子相似系数(DSC)分别为81.12%,86.90%和80.05%。

著录项

  • 来源
    《Optics in health care and biomedical optics VIII》|2018年|108200X.1-108200X.11|共11页
  • 会议地点 Beijing(CN)
  • 作者单位

    Institute of Biomedical Optical Optometry, Shanghai Institute for Minimally Invasive Therapy, University of Shanghai for Science and Technology, 516 Jungong Rd., Shanghai 200093, China,Beckman Laser Institute and the Center for Biomedical Engineering University of California, Irvine, California 92612;

    Institute of Biomedical Optical Optometry, Shanghai Institute for Minimally Invasive Therapy, University of Shanghai for Science and Technology, 516 Jungong Rd., Shanghai 200093, China;

    Institute of Biomedical Optical Optometry, Shanghai Institute for Minimally Invasive Therapy, University of Shanghai for Science and Technology, 516 Jungong Rd., Shanghai 200093, China;

    Institute of Biomedical Optical Optometry, Shanghai Institute for Minimally Invasive Therapy, University of Shanghai for Science and Technology, 516 Jungong Rd., Shanghai 200093, China;

    Beckman Laser Institute and the Center for Biomedical Engineering University of California, Irvine, California 92612;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    optical coherence tomography (OCT); diabetic macular edema(DME); level set; segmentation;

    机译:光学相干断层扫描(OCT);糖尿病性黄斑水肿(DME);水平设置;分割;
  • 入库时间 2022-08-26 14:33:00

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