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2D-3D Rigid Registration of X-Ray Fluoroscopy and CT Images Using Mutual Information and Sparsely Sampled Histogram Estimators

机译:2D-3D使用相互信息和稀疏采样的直方图估算器的X射线荧光透视和CT图像的2D-3D刚性注册

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The registration of pre-operative volumetric datasets to intra-operative two-dimensional images provides an improved way of verifying patient position and medical instrument location. In applications from orthopedics to neuro-surgery, it has a great value in maintaining up-to-date information about changes due to intervention. We propose a mutual information-based registration algorithm which establishes the proper alignment via a stochastic gradient as-cent strategy. Our main contribution lies in estimating probability density measures of image intensities with a sparse histogramming method which could lead to potential speedup over existing registration procedures and deriving the gradient estimates required by the maximization procedure. Experimental results are presented on fluoroscopy and CT datasets of a real skull, and on a CT-derived dataset of a real skull, a plastic skull and a plastic lumbar spine segment.
机译:术前体积数据集的登记到术语帧内二维图像提供了验证患者位置和医疗器械位置的改进方式。在从骨科到神经外科的应用中,它在维护有关干预由于干预引起的更新信息方面具有很大的价值。我们提出了一种相互信息的登记算法,该算法通过随机梯度的策略建立适当的对齐。我们的主要贡献在于利用稀疏直方图方法估算图像强度的概率密度测量,这可能导致现有登记过程的潜在加速并导出最大化过程所需的梯度估计。实验结果呈现在真正的头骨上的透视和CT数据集上,以及在真正的头骨,塑料颅骨和塑料腰椎段的CT衍生的数据集上。

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