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Coronary artery segmentation in angiographic videos utilizing spatial-temporal information

机译:利用空间信息的血管造影视频中的冠状动脉细分

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Coronary artery angiography is an indispensable assistive technique for cardiac interventional surgery. Segmentation and extraction of blood vessels from coronary angiographic images or videos are very essential prerequisites for physicians to locate, assess and diagnose the plaques and stenosis in blood vessels. This article proposes a novel coronary artery segmentation framework that combines a three–dimensional (3D) convolutional input layer and a two–dimensional (2D) convolutional network. Instead of a single input image in the previous medical image segmentation applications, our framework accepts a sequence of coronary angiographic images as input, and outputs the clearest mask of segmentation result. The 3D input layer leverages the temporal information in the image sequence, and fuses the multiple images into more comprehensive 2D feature maps. The 2D convolutional network implements down–sampling encoders, up–sampling decoders, bottle–neck modules, and skip connections to accomplish the segmentation task. The spatial–temporal model of this article obtains good segmentation results despite the poor quality of coronary angiographic video sequences, and outperforms the state–of–the–art techniques. The results justify that making full use of the spatial and temporal information in the image sequences will promote the analysis and understanding of the images in videos.
机译:冠状动脉血管造影是一种心脏介入手术的不可或缺的辅助技术。来自冠状动脉血管造影图像或视频的血管分割和提取是医生定位,评估和诊断血管中斑块和狭窄的非常重要的先决条件。本文提出了一种新型冠状动脉分段框架,其结合了三维(3D)卷积输入层和二维(2D)卷积网络。我们的框架而不是在先前的医学图像分段应用中的单个输入图像,而是接受作为输入的冠状动脉血管造影图像序列,并输出分割结果的最清晰的掩码。 3D输入层利用图像序列中的时间信息,并将多个图像熔化为更全面的2D特征映射。 2D卷积网络实现了下采样编码器,上采样解码器,瓶颈模块和跳过连接,以完成分割任务。尽管冠状动脉血管造影视频序列质量差,但优于最先进的技术,但本文的空间时间模型获得了良好的分割结果。结果证明了充分利用图像序列中的空间和时间信息将促进视频中图像的分析和理解。

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