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A system for segmentation of anatomical structures in cardiac CTA using fully convolutional neural networks

机译:一种使用完全卷积神经网络心脏CTA解剖结构分割的系统

摘要

A method comprises (a) collecting (i) a set of chest computed tomography angiography (CTA) images scanned in the axial view and (ii) a manual segmentation of the images, for each one of multiple organs; (b) preprocessing the images such that they share the same field of view (FOV); (c) using both the images and their manual segmentation to train a supervised deep learning segmentation network, wherein loss is determined from a multi-dice score that is the summation of the dice scores for all the multiple organs, each dice score being computed as the similarity between the manual segmentation and the output of the network for one of the organs; (d) testing a given (input) pre-processed image on the trained network, thereby obtaining segmented output of the given image; and (e) smoothing the segmented output of the given image.
机译:一种方法包括(a)收集(i)在轴向视图中扫描的一组胸部计算断层造影血管造影(CTA)图像,并且(ii)对于每一个多个器官的图像的手动分割; (b)预处理图像,使得它们共享相同的视野(FOV); (c)使用图像和他们的手动分割来训练监督的深度学习分割网络,其中丢失是从多骰子分数确定的,这是所有多个器官的骰子分数的求和,每个骰子分数被计算为手动分段与网络的输出之间的相似性; (d)在训练网络上测试给定(输入)预处理图像,从而获得给定图像的分段输出; (e)平滑给定图像的分段输出。

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