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首页> 外文期刊>IEEE Transactions on Medical Imaging >Longitudinal Image Registration With Temporally-Dependent Image Similarity Measure
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Longitudinal Image Registration With Temporally-Dependent Image Similarity Measure

机译:纵向图像配准与时间相关的图像相似性度量

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摘要

Longitudinal imaging studies are frequently used to investigate temporal changes in brain morphology and often require spatial correspondence between images achieved through image registration. Beside morphological changes, image intensity may also change over time, for example when studying brain maturation. However, such intensity changes are not accounted for in image similarity measures for standard image registration methods. Hence, 1) local similarity measures, 2) methods estimating intensity transformations between images, and 3) metamorphosis approaches have been developed to either achieve robustness with respect to intensity changes or to simultaneously capture spatial and intensity changes. For these methods, longitudinal intensity changes are not explicitly modeled and images are treated as independent static samples. Here, we propose a model-based image similarity measure for longitudinal image registration that estimates a temporal model of intensity change using all available images simultaneously.
机译:纵向成像研究通常用于研究大脑形态的时间变化,并且经常需要通过图像配准实现的图像之间的空间对应。除了形态变化外,图像强度还可能随时间变化,例如在研究大脑成熟时。但是,在标准图像配准方法的图像相似性度量中并未考虑这种强度变化。因此,已开发出1)局部相似性度量,2)估计图像之间强度转换的方法和3)变态方法以实现强度变化的鲁棒性或同时捕获空间和强度变化。对于这些方法,没有明确地模拟纵向强度变化,并且将图像视为独立的静态样本。在这里,我们为纵向图像配准提出了一种基于模型的图像相似性度量,该度量同时使用所有可用图像来估算强度变化的时间模型。

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