首页> 外文会议>Annual Symposium of the Deutsche Arbeitsgemeinschaft fur Mustererkennung(DAGM) >Unifying Energy Minimization and Mutual Information Maximization for Robust 2D/3D Registration of X-Ray and CT Images
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Unifying Energy Minimization and Mutual Information Maximization for Robust 2D/3D Registration of X-Ray and CT Images

机译:X射线和CT图像稳健2D / 3D注册的统一能量最小化和相互信息最大化

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Similarity measure is one of the main factors that affect the accuracy of intensity-based 2D/3D registration of X-ray fluoroscopy to CT images. Information theory has been used to derive similarity measure for image registration leading to the introduction of mutual information, an accurate similarity measure for multi-modal and mono-modal image registration tasks. However, it is known that the standard mutual information measure only takes intensity values into account without considering spatial information and its robustness is questionable. Previous attempt to incorporate spatial information into mutual information either requires computing the entropy of higher dimensional probability distributions, or is not robust to outliers. In this paper, we show how to incorporate spatial information into mutual information without suffering from these problems. Using a variational approximation derived from the Kullback-Leibler bound, spatial information can be effectively incorporated into mutual information via energy minimization. The resulting similarity measure has a least-squares form and can be effectively minimized by a multi-resolution Levenberg-Marquardt optimizer. Experimental results are presented on datasets of two applications: (a) intra-operative patient pose estimation from a few (e.g. 2) calibrated fluoroscopic images, and (b) post-operative cup alignment estimation from single X-ray radiograph with gonadal shielding.
机译:相似度测量是影响X射线荧光透视的基于强度的2D / 3D配准到CT图像的主要因素之一。信息理论已被用于导出图像登记的相似度量,从而引入互信息,是多模态和单模图像配准任务的准确相似性度量。然而,众所周知,在不考虑空间信息的情况下,标准互信息测量仅考虑到强度值,并且其鲁棒性是值得怀疑的。以前的尝试将空间信息结合到互信息中,需要计算更高尺寸概率分布的熵,或者对异常值并不稳健。在本文中,我们展示了如何将空间信息纳入互信息而不遭受这些问题。使用从kullback-leibler绑定的变分近似,可以通过能量最小化有效地结合到相互信息中的空间信息。得到的相似度测量具有最小二乘形式,可以通过多分辨率Levenberg-Marquardt优化器有效地最小化。实验结果显示在两个应用的数据集上:(a)从少数(例如2)校准的荧光透视图像的术语患者姿势估计,并从单X射线射线照片与Gonadal屏蔽的操作后杯对准估计。

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