首页> 外文会议>International Conference on Medical Image Computing and Computer-Assisted Intervention >Improved Map-Slice-to-Volume Motion Correction with B0 Inhomogeneity Correction: Validation of Activation Detection Algorithms Using ROC Curve Analyses
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Improved Map-Slice-to-Volume Motion Correction with B0 Inhomogeneity Correction: Validation of Activation Detection Algorithms Using ROC Curve Analyses

机译:利用B0不均匀性校正改进了地图切片卷运动校正:使用ROC曲线分析验证激活检测算法

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Head motion is a significant source of error in fMRI activation detection and a common approach is to apply 3D volumetric rigid body motion correction techniques. However, in 2D multislice fMRI, each slice may have a distinct set of motion parameters due to inter-slice motion. Here, we apply an automated mutual information based slice-to-volume rigid body registration technique on time series data synthesized from a T_2 MRI brain dataset with simulated motion, functional activation, noise and geometric distortion. The map-slice-to-volume (MSV) technique was previously applied to patient data without ground truths for motion and activation regions. In this study, the activation images and area under the receiver operating characteristic curves for various time series datasets indicate that the MSV registration improves the activation detection capability when compared to results obtained from Statistical Parametric Mapping (SPM). The effect of temporal median filtering of motion parameters on activation detection performance was also investigated.
机译:头部运动是FMRI激活检测中的重要误差来源,并且普通方法是应用3D体积刚体运动校正技术。然而,在2D多层FMRI中,由于切片间运动,每个切片可以具有不同的运动参数集。在这里,我们在从T_2 MRI脑数据集合中合成的时间序列数据应用基于自动的相互信息的切片级刚性身体登记技术,其具有模拟运动,功能激活,噪声和几何失真。地图切片 - 卷(MSV)技术先前应用于患者数据而没有用于运动和激活区域的地面真理。在该研究中,各种时间序列数据集的接收器操作特性曲线下的激活图像和面积表明,与从统计参数映射(SPM)获得的结果相比,MSV注册改善了激活检测能力。还研究了运动参数对动作参数对激活检测性能的影响。

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