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Modeling Electromagnetic Navigation Systems

机译:建模电磁导航系统

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Remote magnetic navigation is used for the manipulation of untethered micro and nanorobots, as well as tethered magnetic surgical tools for minimally invasive medicine. Mathematical modeling of the magnetic fields generated by magnetic navigation systems is a fundamental task in the control of such tools for biomedical applications. In this article, we describe and compare several existing and newly developed methods for representations of continuous magnetic fields using interpolation in the context of remote magnetic navigation. Clinical-scale electromagnetic navigation systems feature nonlinear magnetization and magnetization interactions between electromagnets, which renders accurate magnetic field modeling challenging. We first introduce a method that can adapt existing linear models to correct for nonlinear magnetization, with similar performance to the current state-of-the-art nonlinear model. Furthermore, we present a method based on convolutional neural networks.
机译:远程磁导航用于操纵未阻塞的微型和纳米波特,以及用于微创药物的束缚磁手术工具。 磁导航系统产生的磁场的数学建模是控制生物医学应用的工具中的基本任务。 在本文中,我们使用在远程磁导航的上下文中使用插值来描述和比较若干现有和新开发的方法,用于使用插值在远程磁场的情况下使用插值。 临床级电磁导航系统具有电磁铁之间的非线性磁化和磁化相互作用,这使得精确的磁场建模具有挑战性。 我们首先介绍一种可以调整现有线性模型来校正非线性磁化的方法,具有与当前最先进的非线性模型类似的性能。 此外,我们提出了一种基于卷积神经网络的方法。

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