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Controlling the error on target motion through real-time mesh adaptation: Applications to deep brain stimulation

机译:通过实时网格自适应控制目标运动的误差:在深部脑刺激中的应用

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An error-controlled mesh refinement procedure for needle insertion simulations is presented. As an example, the procedure is applied for simulations of electrode implantation for deep brain stimulation. We take into account the brain shift phenomena occurring when a craniotomy is performed. We observe that the error in the computation of the displacement and stress fields is localised around the needle tip and the needle shaft during needle insertion simulation. By suitably and adaptively refining the mesh in this region, our approach enables to control, and thus to reduce, the error whilst maintaining a coarser mesh in other parts of the domain. Through academic and practical examples we demonstrate that our adaptive approach, as compared with a uniform coarse mesh, increases the accuracy of the displacement and stress fields around the needle shaft and, while for a given accuracy, saves computational time with respect to a uniform finer mesh. This facilitates real-time simulations. The proposed methodology has direct implications in increasing the accuracy, and controlling the computational expense of the simulation of percutaneous procedures such as biopsy, brachytherapy, regional anaesthesia, or cryotherapy. Moreover, the proposed approach can be helpful in the development of robotic surgeries because the simulation taking place in the control loop of a robot needs to be accurate, and to occur in real time.
机译:提出了用于针头插入仿真的误差控制的网格细化程序。例如,该程序适用于模拟电极植入以深层刺激大脑。我们考虑了开颅手术时发生的脑移位现象。我们观察到,在针插入模拟过程中,位移和应力场计算中的误差位于针尖和针杆周围。通过适当和自适应地细化该区域中的网格,我们的方法能够控制并因此减少误差,同时在域的其他部分中保持较粗的网格。通过学术和实践示例,我们证明了与均匀的粗网格相比,我们的自适应方法提高了针杆周围位移和应力场的精度,并且在给定精度的情况下,相对于均匀的精细网格,节省了计算时间啮合。这有助于实时仿真。所提出的方法学对提高准确性和控制诸如穿刺活检,近距离放射治疗,局部麻醉或冷冻疗法等经皮手术模拟的计算费用具有直接影响。此外,由于在机器人的控制回路中进行的仿真需要准确且实时地进行,因此所提出的方法对机器人手术的发展可能会有所帮助。

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