Ab'/> Joint groupwise registration and ADC estimation in the liver using a B-value weighted metric
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Joint groupwise registration and ADC estimation in the liver using a B-value weighted metric

机译:使用B值加权度量的联合集团登记和ADC估计

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AbstractPurposeThe purpose of this work is to develop a groupwise elastic multimodal registration algorithm for robust ADC estimation in the liver on multiple breath hold diffusion weighted images.MethodsWe introduce a joint formulation to simultaneously solve both the registration and the estimation problems. In order to avoid non-reliable transformations and undesirable noise amplification, we have included appropriate smoothness constraints for both problems. Our metric incorporates the ADC estimation residuals, which are inversely weighted according to the signal content in each diffusion weighted image.ResultsResults show that the joint formulation provides a statistically significant improvement in the accuracy of the ADC estimates. Reproducibility has also been measured on real data in terms of the distribution of ADC differences obtained from differentb-valuessubsets.ConclusionsThe proposed algorithm is able to effectively deal with both the presence of motion and the geometric distortions, increasing accuracy and reproducibility in diffusion parameters estimation.
机译:<![cdata [ 抽象 目的 目的在这项工作中,在多次呼吸保持扩散加权图像上开发一种用于肝脏鲁棒ADC估计的GroupWise弹性多峰值登记算法。 方法 我们介绍联合配方,以便同时解决注册和估计问题。为了避免不可靠的变换和不期望的噪声放大,我们已经包括两个问题的适当平滑度约束。我们的指标包含ADC估计残差,其根据每个扩散加权图像中的信号内容反向加权。 结果 结果表明联合配方在ADC估计的准确性提供统计上显着的改进。在从不同 b值子集中获得的ADC差异的分布方面也在实际数据上测量了再现性。 结论 所提出的算法能够有效地处理运动的存在和几何失真,增加扩散参数估计中的准确性和再现性。

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