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Automatic segmentation of coronary lumen and external elastic membrane in intravascular ultrasound images using 8-layer U-Net

机译:使用8层U-Net在血管内超声图像中的冠状内腔和外部弹性膜的自动分割

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Intravascular ultrasound (IVUS) is the golden standard in accessing the coronary lesions, stenosis, and atherosclerosis plaques. In this paper, a fully automatic approach by an 8-layer U-Net is developed to segment the coronary artery lumen and the area bounded by external elastic membrane (EEM), i.e., cross-sectional area (EEM-CSA). The database comprises single-vendor and single-frequency IVUS data. Particularly, the proposed data augmentation of MeshGrid combined with flip and rotation operations is implemented, improving the model performance without pre- or post-processing of the raw IVUS images. The mean intersection of union (MIoU) of 0.937 and 0.804 for the lumen and EEM-CSA, respectively, were achieved, which exceeded the manual labeling accuracy of the clinician. The accuracy shown by the proposed method is sufficient for subsequent reconstruction of 3D-IVUS images, which is essential for doctors’ diagnosis in the tissue characterization of coronary artery walls and plaque compositions, qualitatively and quantitatively.
机译:血管内超声(IVUS)是访问冠状动脉病变,狭窄和动脉粥样硬化斑块的黄金标准。在本文中,开发了8层U-Net的全自动方法以将冠状动脉内腔和由外部弹性膜(EEM),即横截面积(EEM-CSA)的区域进行分段。数据库包括单供应商和单频IVUS数据。特别地,实现了网格格栅的所提出的数据增强与翻转和旋转操作组合,而改善了模型性能而不预先处理原始IVUS图像。达到腔和EEM-CSA的0.937和0.804的联合(Miou)的平均交叉点,其超出了临床医生的手动标记精度。所提出的方法所示的准确性足以随后重建3D-IVUS图像,这对于冠状动脉壁和斑块组合物的组织表征中的医生诊断至关重要,定性和定量。

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