首页> 外文会议>Conference on Medical Imaging 2008: Imaging Processing; 20080217-19; San Diego,CA(US) >Cortical Thickness Measurement from Magnetic Resonance Images Using Partial Volume Estimation
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Cortical Thickness Measurement from Magnetic Resonance Images Using Partial Volume Estimation

机译:使用部分体积估计从磁共振图像测量皮层厚度

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Measurement of the cortical thickness from 3D Magnetic Resonance Imaging (MRI) can aid diagnosis and longitudinal studies of a wide range of neurodegenerative diseases. We estimate the cortical thickness using a Laplacian approach whereby equipotentials analogous to layers of tissue are computed. The thickness is then obtained using an Eulerian approach where partial differential equations (PDE) are solved, avoiding the explicit tracing of trajectories along the streamlines gradient. This method has the advantage of being relatively fast and insure unique correspondence points between the inner and outer boundaries of the cortex. The original method is challenged when the thickness of the cortex is of the same order of magnitude as the image resolution since partial volume (PV) effect is not taken into account at the gray matter (GM) boundaries. We propose a novel way to take into account PV which improves substantially accuracy and robustness. We model PV by computing a mixture of pure Gaussian probability distributions and use this estimate to initialize the cortical thickness estimation. On synthetic phantoms experiments, the errors were divided by three while reproducibility was improved when the same patients was scanned three consecutive times.
机译:通过3D磁共振成像(MRI)测量皮质厚度可以帮助诊断和纵向研究各种神经退行性疾病。我们使用拉普拉斯方法估算皮质厚度,从而计算出类似于组织层的等电位。然后使用欧拉方法获得厚度,在其中求解偏微分方程(PDE),避免沿流线梯度显式跟踪轨迹。该方法的优点是相对较快,并且可以确保皮质的内部和外部边界之间的唯一对应点。当皮质的厚度与图像分辨率处于相同数量级时,原始方法面临挑战,因为在灰质(GM)边界不考虑部分体积(PV)效应。我们提出了一种考虑PV的新颖方法,该方法大大提高了准确性和鲁棒性。我们通过计算纯高斯概率分布的混合来对PV建模,并使用此估计值初始化皮质厚度估计值。在合成体模实验中,将相同的患者连续扫描3次,将误差除以3,同时提高了重现性。

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