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Parameter Estimation for Personalization of Liver Tumor Radiofrequency Ablation

机译:肝肿瘤射频消融个性化的参数估计

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Mathematical modeling has the potential to assist radiofrequency ablation (RFA) of tumors as it enables prediction of the extent of ablation. However, the accuracy of the simulation is challenged by the material properties since they are patient-specific, temperature and space dependent. In this paper, we present a framework for patient-specific radiofrequency ablation modeling of multiple lesions in the case of metastatic diseases. The proposed forward model is based upon a computational model of heat diffusion, cellular necrosis and blood flow through vessels and liver which relies on patient images. We estimate the most sensitive material parameters, those need to be personalized from the available clinical imaging and data. The selected parameters are then estimated using inverse modeling such that the point-to-mesh distance between the computed necrotic area and observed lesions is minimized. Based on the personalized parameters, the ablation of the remaining lesions axe predicted. The framework is applied to a dataset of seven lesions from three patients including pre- and post-operative CT images. In each case, the parameters were estimated on one tumor and RFA is simulated on the other tumor(s) using these personalized parameters, assuming the parameters to be spatially invariant within the same patient. Results showed significantly good correlation between predicted and actual ablation extent (average point-to-mesh errors of 4.03 mm).
机译:数学建模具有辅助肿瘤射频消融(RFA)的潜力,因为它能够预测消融程度。但是,由于材料属性取决于患者,温度和空间,因此模拟的准确性受到材料属性的挑战。在本文中,我们为转移性疾病情况下的多个病变的患者特定射频消融建模提供了一个框架。所提出的正向模型基于热扩散,细胞坏死和通过血管和肝脏的血流的计算模型,该模型依赖于患者图像。我们估计最敏感的材料参数,需要根据可用的临床影像和数据进行个性化设置。然后使用逆模型估计所选参数,以使计算出的坏死面积与观察到的病变之间的点对网距离最小。基于个性化参数,可以预测剩余病变的消融。该框架适用于来自三名患者的七个病变的数据集,包括术前和术后CT图像。在每种情况下,假设这些参数在同一位患者内在空间上不变,则使用这些个性化参数对一个肿瘤上的参数进行估算,并在其他肿瘤上对RFA进行仿真。结果显示,预计的烧蚀程度与实际的烧蚀程度之间具有很好的相关性(平均点对网格误差为4.03 mm)。

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