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Assistance to Planning in Deep Brain Stimulation: Data Fusion Method for Locating Anatomical Targets in MRI

机译:对深脑刺激计划的帮助:用于在MRI中定位解剖学目标的数据融合方法

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Symptoms of Parkinson's disease can be relieved through Deep Brain Stimulation. This neurosurgical technique relies on high precision positioning of electrodes in specific areas of the basal ganglia and the thalamus. In order to identify these anatomical targets, which are located deep within the brain, we developed a semi-automated method of image analysis, based on data fusion. Information provided by both anatomical magnetic resonance images and expert knowledge is managed in a common possibilistic frame, using a fuzzy logic approach. More specifically, a graph-based virtual atlas modeling theoretical anatomical knowledge is matched to the image data from each patient, through a research algorithm (or strategy) which simultaneously computes an estimation of the location of every structures, thus assisting the neurosurgeon in denning the optimal target. The method was tested on 10 images, with promising results. Location and segmentation results were statistically assessed, opening perspectives for enhancements.
机译:通过深脑刺激可以缓解帕金森病的症状。这种神经外科技术依赖于基底神经节和丘脑特定区域的电极高精度定位。为了识别这些位于大脑深处的解剖靶,我们开发了一种基于数据融合的半自动图像分析方法。通过模糊逻辑方法在普通可能的框架中管理由解剖磁共振图像和专家知识提供的信息。更具体地,基于图的虚拟图谱造型理论解剖知识被匹配到从每个患者的图像数据,通过一个研究算法(或策略),其同时计算每个结构的位置的估计,从而辅助神经外科医生在丹宁的最佳的目标。该方法在10张图像上进行了测试,结果有前景。位置和分割结果在统计评估,开放的视角下进行增强。

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