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Understanding the Effect of Bias in Fiducial Localization Error on Point-Based Rigid-Body Registration

机译:了解基于基准点的刚体注册中基准定位误差中的偏差影响

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摘要

Image registration is a single point of failure in the image-guided computer-assisted surgery. Registration is primarily used to align and fuse the data sets taken from patient's anatomy before and during surgeries. Point-based rigid-body registration is usually performed by identifying corresponding fiducials (either natural landmarks or implanted ones) in the data sets. Since the localization of fiducials is imprecise and is generally perturbed by random noise, the performed registration is imperfect and has some error. Previous work has extensively analyzed the behavior of this error when the fiducial localization error has zero-mean over the entire set of fiducials. However, if noise has a nonzero-mean or a bias, no formulation yet exists to determine the effect of noise on the overall registration accuracy. In this work, we derive novel formulations that relate the bias in the localized fiducials to the accuracy of the performed registration. We analytically and numerically demonstrate that by eliminating the estimated bias from the measured fiducial locations, one can effectively increase the accuracy of the performed registration.
机译:图像配准是图像引导的计算机辅助手术中的单点故障。配准主要用于对齐和融合在手术之前和手术期间从患者的解剖结构中获取的数据集。基于点的刚体注册通常是通过识别数据集中的相应基准点(自然界标或植入的界标)来执行的。由于基准的定位是不精确的,并且通常会受到随机噪声的干扰,因此所执行的配准是不完美的,并且具有一些误差。当基准定位误差在整个基准集中均值为零时,以前的工作已经广泛分析了此错误的行为。但是,如果噪声具有非零均值或偏差,则尚无确定噪声对整体配准精度影响的公式。在这项工作中,我们得出新颖的公式,将局部基准中的偏差与执行的配准的准确性相关联。我们从分析和数值上证明,通过从测量的基准位置消除估计的偏差,可以有效地提高所执行配准的准确性。

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