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Design optimization of the sensor spatial arrangement in a direct magnetic field-based localization system for medical applications

机译:基于直接磁场的医疗系统中传感器空间布置的设计优化

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Motivated by the need for developing a neuronavigation system to improve efficacy of intracranial surgical procedures, a localization system using passive magnetic fields for real-time monitoring of the insertion process of an external ventricular drain (EVD) catheter is conceived and developed. This system operates on the principle of measuring the static magnetic field of a magnetic marker using an array of magnetic sensors. An artificial neural network (ANN) is directly used for solving the inverse problem of magnetic dipole localization for improved efficiency and precision. As the accuracy of localization system is highly dependent on the sensor spatial location, an optimization framework, based on understanding and classification of experimental sensor characteristics as well as prior knowledge of the general trajectory of the localization pathway, for design of such sensing assemblies is described and investigated in this paper. Both optimized and non-optimized sensor configurations were experimentally evaluated and results show superior performance from the optimized configuration. While the approach presented here utilizes ventriculostomy as an illustrative platform, it can be extended to other medical applications that require localization inside the body.
机译:出于开发神经导航系统以提高颅内外科手术效率的需要的动机,构思并开发了使用无源磁场来实时监测外部心室引流(EVD)导管插入过程的定位系统。该系统的工作原理是使用一系列磁传感器来测量磁标记的静磁场。人工神经网络(ANN)直接用于解决磁偶极子定位的反问题,从而提高了效率和精度。由于定位系统的精度高度依赖于传感器的空间位置,因此将基于对实验传感器特性的理解和分类以及定位路径的一般轨迹的先验知识,对用于此类传感组件设计的优化框架进行说明。并在本文中进行了研究。对优化和未优化的传感器配置均进行了实验评估,结果表明,优化的配置具有卓越的性能。尽管此处介绍的方法利用脑室造口术作为说明性平台,但它可以扩展到需要在体内定位的其他医疗应用。

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