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Monitoring Achilles Tendon Healing Progress in Ultrasound Imaging with Convolutional Neural Networks

机译:用卷积神经网络监测超声成像中的Achilles肌腱治疗进展

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Achilles tendon rupture is a debilitating injury, which is typically treated with surgical repair and long-term rehabilitation. The recovery, however, is protracted and often incomplete. Diagnosis, as well as healing progress assessment, are largely based on ultrasound and magnetic resonance imaging. In this paper, we propose an automatic method based on deep learning for analysis of Achilles tendon condition and estimation of its healing progress on ultrasound images. We develop custom convolutional neural networks for classification and regression on healing score and feature extraction. Our models are trained and validated on an acquired dataset of over 250.000 sagittal and over 450.000 axial ultrasound slices. The obtained estimates show high correlation with the assessment of expert radiologists, with respect to all key parameters describing healing progress. We also observe that parameters associated with i.a. intratendinous healing processes are better modeled with sagittal slices. We prove that ultrasound imaging is quantitatively useful for clinical assessment of Achilles tendon healing process and should be viewed as complementary to magnetic resonance imaging.
机译:阿基里斯肌腱破裂是一种衰弱的损伤,其通常用手术修复和长期康复治疗。然而,延长且经常不完整的恢复。诊断以及治疗进度评估主要基于超声波和磁共振成像。在本文中,我们提出了一种基于深度学习的自动方法,用于分析阿基里斯腱条件及其在超声图像中愈合进展的估算。我们开发定制卷积神经网络,以进行愈合得分和特征提取的分类和回归。我们的型号培训并在收购的数据集上验证,以超过250.000射击和超过450.000轴超声切片。所获得的估计显示关于专家放射科医师的评估以及描述愈合进展的所有关键参数的高度相关性。我们还观察到与i.a.相关的参数。肠球愈合过程与矢状切片更好。我们证明,超声成像对于患者肌腱愈合过程的临床评估是定量的,并且应该被视为与磁共振成像的互补。

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