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Bayesian model for intensity mapping in magnetic resonance image registration

机译:磁共振图像配准中强度映射的贝叶斯模型

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摘要

We present a likelihood model for Bayesian nonrigid image registration that relates the distinct acquisition models of different MRI (magnetic resonance imaging) scanners. The model is derived from a Bayesian network that represents the imaging situation under consideration to construct the appropriate similarity measure for the given situation. The method is compared to the cross-correlation and mutual information measures in a set of registration experiments on different images and over different synthetically generated geometric and intensity distortions. The probability-based similarity measure yields, on average, more accurate and robust registrations than either the cross-correlation or mutual information measures.
机译:我们提出了贝叶斯非刚性图像配准的可能性模型,该模型涉及不同MRI(磁共振成像)扫描仪的不同采集模型。该模型来自贝叶斯网络,该网络代表所考虑的成像情况,以针对给定情况构造适当的相似性度量。在一组配准实验中,将该方法与互相关和互信息度量进行了比较,这些配准实验针对不同的图像以及不同的合成生成的几何和强度失真。平均而言,基于概率的相似性度量比互相关或互信息度量产生的准确性和鲁棒性更高。

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