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Learning Adversarially Enhanced Heatmaps for Aorta Segmentation in CTA

机译:学习CTA中主动脉细分的逆势增强热插拔

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In this work, we propose a method to combine ADversarially enhanced HeatMaps (short for AD-HM) to segment the aorta from CTA (Computed Tomography Angiography). The intuition of the AD-HM is that heatmaps encompass rich information on locations of the targets. The positions of the aorta are relatively regular in CTA, thus training with heatmaps exploits the positional information to boost the segmentation results. The quality of heatmaps can be further enhanced with adversarial learning to refine the performance. The AD-HM can embed almost any state-of-the-art deep segmentation networks off the shelf. We collect 111 CTA volumes counting to 79082 slices to verify the effectiveness of our method. The training set is constituted of 104 volumes drawn from the dataset accounting to 74000 slices. The remaining 5082 slices from 7 CTA samples are reserved for validating the algorithm and the results are reported on the validation set. Our experiments with 7 state-of-the-art deep segmentation networks demonstrate the effectiveness of our method. The absolute improvement on IOU(Intersection-over-Union) of the aorta from the 7 models is 1.77% on average, with minimum improvement of 0.8% (UNet: 86.5%?> 87.3%) and maximum improvement of 3.4% (SegNet: 83.8%?> 87.2%).
机译:在这项工作中,我们提出了一种将逆势增强的热手(短暂的Ad-HM)组合以将主动脉与CTA(计算机断层造影血管造影)组合的方法。 Ad-HM的直觉是,热带包含有关目标位置的丰富信息。在CTA中,主动脉的位置在CTA中是相对规律的,因此利用Heatmaps的训练利用位置信息来提高分段结果。通过对抗性学习可以进一步增强热量的质量以改善性能。 Ad-HM可以在架子上几乎嵌入任何最先进的深度分段网络。我们收集111个CTA卷计数到79082片,以验证我们方法的有效性。培训集由104卷从数据集占14000片绘制到74000片。剩余的5082片从7个CTA样本中保留用于验证算法,并在验证集上报告结果。我们的7种最先进的深度分割网络的实验证明了我们方法的有效性。来自7种型号的主动脉的IOO(交汇处)的绝对改善平均为1.77%,最低提高0.8%(UNET:86.5%?> 87.3%)和3.4%的最大提高(SEGNET: 83.8%?> 87.2%)。

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