Bone surface extraction and dynamic tracking from ultrasound images by semantic segmentation

Taiga Haba, Taku Itami, J. Yoneyama
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Abstract

In this study, our aim is to extract bone surface of the tibial from ultrasound images by using semantic segmentation and track the feature point of the extraction during knee flexion and extension automatically for dynamic tracking of the tibial movement in the horizontal plane. Automatic dynamic tracking is performed by approximating the bone surface extraction line to a cubic function curve and tracking the inflection point. The effectiveness of the proposed method is verified by analyzing the lower leg during knee flexion and extension by three healthy men in their 20s using ultrasound diagnostic device and confirming the physiological movement of screw-home movement(SHM) during knee flexion and extension movement. From the experimental results, SHM is confirmed during knee flexion and extension movements in each subject. Therefore, the proposed method of this study is effective in the dynamic tracking of the tibial bone surface.
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基于语义分割的超声图像骨表面提取与动态跟踪
在本研究中,我们的目的是通过语义分割从超声图像中提取胫骨骨表面,并自动跟踪提取的特征点,在膝关节屈伸过程中动态跟踪胫骨在水平面上的运动。通过将骨表面提取线近似为三次函数曲线并跟踪拐点来实现自动动态跟踪。通过对3名20多岁健康男性膝关节屈伸运动过程中小腿的超声诊断分析,确认膝关节屈伸运动过程中螺钉复位运动(SHM)的生理运动,验证了所提方法的有效性。从实验结果来看,SHM在每个受试者的膝关节屈伸运动中都得到了证实。因此,本研究提出的方法在胫骨骨面动态跟踪中是有效的。
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