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FTRAC--a robust fluoroscope tracking fiducial.

机译:FTRAC-强大的荧光镜跟踪基准。

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摘要

C-arm fluoroscopy is ubiquitous in contemporary surgery, but it lacks the ability to accurately reconstruct three-dimensional (3D) information. A major obstacle in fluoroscopic reconstruction is discerning the pose of the x-ray image, in 3D space. Optical/magnetic trackers tend to be prohibitively expensive, intrusive and cumbersome in many applications. We present single-image-based fluoroscope tracking (FTRAC) with the use of an external radiographic fiducial consisting of a mathematically optimized set of ellipses, lines, and points. This is an improvement over contemporary fiducials, which use only points. The fiducial encodes six degrees of freedom in a single image by creating a unique view from any direction. A nonlinear optimizer can rapidly compute the pose of the fiducial using this image. The current embodiment has salient attributes: small dimensions (3 x 3 x 5 cm); need not be close to the anatomy of interest; and accurately segmentable. We tested the fiducial and the pose recovery method on synthetic data and also experimentally on a precisely machined mechanical phantom. Pose recovery in phantom experiments had an accuracy of 0.56 mm in translation and 0.33 degrees in orientation. Object reconstruction had a mean error of 0.53 mm with 0.16 mm STD. The method offers accuracies similar to commercial tracking systems, and appears to be sufficiently robust for intraoperative quantitative C-arm fluoroscopy. Simulation experiments indicate that the size can be further reduced to 1 x 1 X 2 cm, with only a marginal drop in accuracy.
机译:C臂透视在当今的外科手术中无处不在,但缺乏准确重建三维(3D)信息的能力。荧光透视重建的主要障碍是辨别3D空间中X射线图像的姿势。在许多应用中,光学/磁性跟踪器往往过于昂贵,侵入且麻烦。我们通过使用外部射线照相基准点(由数学上优化的椭圆,线和点组成)来呈现基于单图像的荧光镜跟踪(FTRAC)。这是对仅使用积分的现代基准的一种改进。通过从任何方向创建唯一视图,基准在单个图像中编码六个自由度。非线性优化器可以使用此图像快速计算基准的姿态。当前的实施例具有显着的属性:小尺寸(3 x 3 x 5 cm);不必接近感兴趣的解剖结构;并准确细分。我们在合成数据上以及在精确加工的机械模型上通过实验测试了基准和姿势恢复方法。体模实验中的姿势恢复的平移精度为0.56 mm,方向精度为0.33度。对象重建的平均误差为0.53 mm(标准差为0.16 mm)。该方法具有与商业跟踪系统相似的准确性,并且对于术中定量C臂荧光透视法似乎足够健壮。仿真实验表明,该尺寸可以进一步减小到1 x 1 X 2 cm,而精度仅略有下降。

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