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GPU-Accelerated Interactive Visualization and Planning of Neurosurgical Interventions

机译:GPU加速的交互式可视化和神经外科手术计划

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Advances in computational methods and hardware platforms provide efficient processing of medical-imaging datasets for surgical planning. For neurosurgical interventions employing a straight access path, planning entails selecting a path from the scalp to the target area that's of minimal risk to the patient. A proposed GPU-accelerated method enables interactive quantitative estimation of the risk for a particular path. It exploits acceleration spatial data structures and efficient implementation of algorithms on GPUs. In evaluations of its computational efficiency and scalability, it achieved interactive rates even for high-resolution meshes. A user study and feedback from neurosurgeons identified this methods' potential benefits for preoperative planning and intraoperative replanning.
机译:计算方法和硬件平台的进步为外科手术计划提供了医学影像数据集的有效处理。对于采用直线通路的神经外科手术,计划需要选择从头皮到目标区域的路径,这对患者的风险最小。提出的GPU加速方法可以对特定路径的风险进行交互式定量估计。它利用加速空间数据结构以及在GPU上算法的高效实现。在评估其计算效率和可伸缩性时,即使对于高分辨率网格,它也达到了交互式速率。用户研究和神经外科医生的反馈确定了该方法对术前计划和术中重新计划的潜在好处。

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