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A novel mutual information-based similarity measure for 2D/3D registration in image guided intervention

机译:一种新的基于互信息的相似性测量,用于图像引导干预中的2D / 3D注册

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In image-guided intervention, 2D/3D medical image registration is crucial to supply the clinician space and anatomy information. Digitally reconstructed radiographs (DRR) obtained from 3D volume data are usually compared iteratively with an x-ray image by selecting similarity measure until a match is achieved. In this paper, a new similarity measure based on mutual information (MI) was proposed for 2D/3D rigid registration by combining intensities with space coordinates. By applying the measure to porcine skull phantom datasets from the Medical University Vienna, it is shown that the mean iteration of the measure and mean target registration error (mTRE) is respectively lower by 49.51% and 27.29% than that of mutual information. The proposed similarity measure is more robust and convergent faster than MI in 2D/3D registration.
机译:在图像引导的干预中,2D / 3D医学图像登记对于提供临床医生空间和解剖信息至关重要。通过选择相似度测量直到实现匹配,通常通过3D体数据获得的数字重建从3D体积数据获得的射线照片(DRR)与X射线图像进行比较。在本文中,通过将具有空间坐标的强度组合,提出了一种基于互信息(MI)的新相似度量,用于2D / 3D刚性注册。通过将措施应用于来自医科大学维也纳的猪头骨幻像数据集,表明测量和平均目标登记误差(MTRE)的平均迭代分别低49.51%和27.29%而不是相互信息的速度。所提出的相似度测量比2D / 3D注册中的MI更加坚固和收敛。

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