基于三维传感器成像的脊柱侧凸评估中躯干旋转角度自动检测

Jie Yang, Ziqi Zhao, Xuesu Xiao, Jiankun Wang, M. Meng
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摘要

早期发现青少年特发性脊柱侧凸(AIS)对于AIS治疗和预防AIS进展至关重要。然而,现有的临床脊柱侧凸评估方法——站立式全柱x线片(x线)成像具有放射性,不适合在青少年中大规模推广。因此,许多国家实施了学校脊柱侧凸筛查计划(SSS),通过测量躯干旋转角度(ATR)来实现对青少年脊柱侧凸的大规模筛查和监测。然而,由于主观的人工检查,SSS耗时且不准确。本文提出了一种基于人体背部轮廓曲线的ATR自动计算方法。该方法从三维深度传感器扫描的人体背部点云模型入手,通过深度信息获取背部轮廓曲线,识别棘突和应力点。最后,根据脊柱侧弯仪的测量原理计算ATR。我们使用来自9名AFBT参与者的27对ATR数据证明了我们方法的有效性。在SSS中,自动方法得到的atr与手工方法得到的atr之间不仅存在显著的正相关,而且存在令人信服的一致性。实验结果表明,该方法可以有效地实现SSS中ATR的精确测量。
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Automatic Angle of Trunk Rotation Detection Using 3D Sensor Imaging in Scoliosis Assessment
Early detection of adolescent idiopathic scoliosis (AIS) is essential for AIS treatment and prevention of AIS progression. However, the existing clinical scoliosis assessment method, the standing full-column radiographs (X-ray) imaging, is radioactive, making this method unsuitable for large-scale promotion among adolescents. As a result, many countries have implemented school scoliosis screening programs (SSS) to achieve large-scale scoliosis screening and monitoring of adolescents by measuring the angle of trunk rotation (ATR). However, the SSS is time-consuming and inaccurate due to subjective manual examination. In this paper, we present an automatic method to calculate ATR based on the contour curve of the human back. This automatic method begins with a 3D depth sensor-scanned point cloud model of the human back and identifies the spinous process and stress points by obtaining the back contour curve from the depth information. Finally, the ATR is calculated according to the measurement principle of scoliosis meter. We demonstrate the effectiveness of our method using twenty-seven pairs of ATR data from nine participants with AFBT. There is not only a significant positive correlation, but also a convinced level of agreement between ATRs obtained using automatic method and ATRs obtained using manual method in the SSS. The experiment results reveal that the proposed method can efficiently achieve accurate measurement of ATR in the SSS.
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