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Pancreatic Tumor Growth Prediction with Multiplicative Growth and Image-Derived Motion

机译:具有乘法生长和图像衍生运动的胰腺肿瘤生长预测

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Pancreatic neuroendocrine tumors are abnormal growths of hormone-producing cells in the pancreas. Different from the brain in the skull, the pancreas in the abdomen can be largely deformed by the body posture and the surrounding organs. In consequence, both tumor growth and pancreatic motion attribute to the tumor shape difference observable from images. As images at different time points are used to personalize the tumor growth model, the prediction accuracy may be reduced if such motion is ignored. Therefore, we incorporate the image-derived pancreatic motion to tumor growth personalization. For realistic mechanical interactions, the multiplicative growth decomposition is used with a hyperelastic constitutive law to model tumor mass effect, which allows growth modeling without compromising the mechanical accuracy. With also the FDG-PET and contrast-enhanced CT images, the functional, structural, and motion data are combined for a more patient-specific model. Experiments on synthetic and clinical data show the importance of image-derived motion on estimating physiologically plausible mechanical properties and the promising performance of our framework. From six patient data sets, the recall, precision, Dice coefficient, relative volume difference, and average surface distance were 89.8 ±3.5%, 85.6 ±7.5%, 87.4±3.6%, 9.7±7.2%, and 0.6±0.2mm, respectively.
机译:胰腺神经内分泌肿瘤是胰腺中激素产生细胞的异常生长。与颅骨的大脑不同,腹部的胰腺会因身体姿势和周围器官而大大变形。结果,肿瘤生长和胰腺运动均归因于可从图像观察到的肿瘤形状差异。由于使用不同时间点的图像来个性化肿瘤生长模型,因此,如果忽略了这种运动,则预测准确性可能会降低。因此,我们将图像衍生的胰腺运动纳入肿瘤生长的个性化。对于逼真的机械相互作用,将乘性生长分解与超弹性本构关系一起使用来对肿瘤质量效应进行建模,从而可以在不影响机械精度的情况下进行建模。借助FDG-PET和增强对比度的CT图像,功能,结构和运动数据也可以组合在一起,从而获得针对特定患者的模型。合成和临床数据的实验表明,源自图像的运动对于估计生理上合理的机械性能的重要性以及我们框架的良好性能。从六个患者数据集中,召回率,精度,Dice系数,相对体积差和平均表面距离分别为89.8±3.5%,85.6±7.5%,87.4±3.6%,9.7±7.2%和0.6±0.2mm。 。

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