Electrocorticography (ECoG) or intracranial electroencephalography (iEEG) monitors electric potential directly on the surface of the brain and can be used to inform treatment planning for epilepsy surgery when paired with numerical modeling. For solving the inverse problem in epilepsy seizure onset localization, accurate solution of the iEEG forward problem is critical which requires accurate representation of the patient's brain geometry and tissue electrical conductivity. In this study, we present an automatic framework for constructing the brain volume conductor model for solving the iEEG forward problem and visualizing the brain bioelectric field on a deformed patient-specific brain model within the 3D Slicer environment. We solve the iEEG forward problem on the predicted postoperative geometry using the finite element method (FEM) which accounts for patient-specific inhomogeneity and anisotropy of tissue conductivity. We use an epilepsy case study to illustrate the workflow of our framework developed and integrated within 3D Slicer.
翻译:为了解决癫痫癫痫发作点定位的逆向问题,iEEG前方问题的准确解决十分关键,这要求准确描述病人的大脑几何和组织电导能力。在本研究中,我们提出了一个自动框架,用于构建大脑导体模型,以解决iEEG前方问题,并在3D Slicer环境中一个畸形的病人专用脑模型上直观脑生物电场。我们用限定元素方法(FEM)解决预测的后性行动几何测量问题,该方法考虑到特定病人的异性和组织传导性。我们用一个癫痫案例研究来说明我们在3D Slicer中开发和整合的框架的工作流程。