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首页> 外文期刊>Medical and Biological Engineering and Computing: Journal of the International Federation for Medical and Biological Engineering >Influence of multi-angle input of intraoperative fluoroscopic images on the spatial positioning accuracy of the C-arm calibration-based algorithm of a CAOS system
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Influence of multi-angle input of intraoperative fluoroscopic images on the spatial positioning accuracy of the C-arm calibration-based algorithm of a CAOS system

机译:术中荧光图像多角度输入对CAOS系统C形臂校准算法的空间定位精度的影响

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摘要

Intraoperative fluoroscopic images, as one of the most important input data for computer-assisted orthopedic surgery (CAOS) systems, have a significant influence on the positioning accuracy of CAOS system. In this study, we proposed to use multi-angle intraoperative fluoroscopy images as input based on real clinical scenario, and the aim was to analyze the positioning accuracy and the error propagation rules with multi-angle input images compared with traditional two input images. In the experiment, the positioning accuracy of the C-arm calibration-based algorithm was studied, respectively, using two, three, four, five, and six intraoperative fluoroscopic images as input data. Moreover, the error propagation rules of the positioning error were analyzed by the Monte Carlo method. The experiment result showed that increasing the number of multi-angle input fluoroscopic images could reduce the positioning error of CAOS system, which has dropped from 1.01 to 0.61 mm. The Monte Carlo simulation analysis showed that for random input errors subject to normal distribution (mu = 0, sigma = 1), the image positioning error dropped from 0.29 to 0.23 mm, and the staff gauge positioning error dropped from 1.36 to 1.19 mm, while the tracking device positioning error dropped from 3.41 to 2.13 mm. In addition, the results showed that image positioning error and staff gauge positioning error were all nonlinear error for the whole system, but tracker device positioning error was a strictly linear error. In conclusion, using multi-angle fluoroscopy images was helpful for clinic, which could improve the positioning accuracy of the CAOS system by nearly 30%.
机译:术中荧光透视图像作为计算机辅助整形外科手术(CAOS)系统最重要的输入数据之一,对CAOS系统的定位精度具有显着影响。在这项研究中,我们提出使用多角度术中透视图像作为基于真实临床场景的输入,目的是分析定位精度和与传统两个输入图像相比的多角度输入图像的定位精度和误差传播规则。在实验中,使用两种三个,四个,五个和六个术中透视图像作为输入数据,分别研究了C形臂校准的算法的定位精度。此外,通过Monte Carlo方法分析了定位误差的误差传播规则。实验结果表明,增加多角度输入荧光透视图像的数量可以降低Caos系统的定位误差,从1.01降至0.61mm。蒙特卡罗模拟分析显示,对于经常分布的随机输入误差(mu = 0,sigma = 1),图像定位误差从0.29降至0.23mm,并且员工测量值定位误差从1.36降至1.19 mm跟踪设备定位误差从3.41降至2.13 mm。此外,结果表明,图像定位误差和员工计定位误差是整个系统的所有非线性误差,但跟踪器设备定位误差是严格的线性误差。总之,使用多角度荧光检查图像有助于诊所,这可以通过近30%提高Caos系统的定位精度。

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