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首页> 外文期刊>Journal of Medical Devices >Design Optimization of a Magnetic Field-Based Localization Device for Enhanced Ventriculostomy
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Design Optimization of a Magnetic Field-Based Localization Device for Enhanced Ventriculostomy

机译:基于磁场的增强型脑室造口术定位装置的设计优化

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The accuracy of many freehand medical procedures can be improved with assistance from real-time localization. Magnetic localization systems based on harnessing passive permanent magnets (PMs) are of great interest to track objects inside the body because they do not require a powered source and provide noncontact sensing without the need for line-of-sight. While the effect of the number of sensors on the localization accuracy in such systems has been reported, the spatial design of the sensing assembly is an open problem. This paper presents a systematic approach to determine an optimal spatial sensor configuration for localizing a PM during a medical procedure. Two alternative approaches were explored and compared through numerical simulations and experimental investigation: one based on traditional grid configuration and the other derived using genetic algorithms (GAs). Our results strongly suggest that optimizing the spatial arrangement has a larger influence on localization performance than increasing the number of sensors in the assembly. We found that among all the optimization schemes, the approach utilizing GA produced sensor designs with the smallest localization errors.
机译:借助实时本地化,可以提高许多徒手医疗程序的准确性。基于利用无源永磁体(PM)的磁定位系统非常需要跟踪体内的物体,因为它们不需要电源,并且无需视线即可提供非接触式感应。虽然已经报道了传感器数量对这种系统中定位精度的影响,但是传感组件的空间设计是一个悬而未决的问题。本文提出了一种系统的方法来确定用于在医疗过程中定位PM的最佳空间传感器配置。通过数值模拟和实验研究,探索并比较了两种替代方法:一种基于传统网格配置,另一种采用遗传算法(GA)推导。我们的结果有力地表明,与增加组件中的传感器数量相比,优化空间布置对定位性能的影响更大。我们发现,在所有优化方案中,利用GA的方法产生的传感器设计具有最小的定位误差。

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