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基于数据驱动的光泵磁强计传感器阵列模型优化。

Data-driven model optimization for optically pumped magnetometer sensor arrays.

机构信息

SISTEMIC, Engineering Faculty, Universidad de Antioquia UDEA, Calle 70 No 52-51, Medellín, Colombia.

MIRP Research Group, Engineering Faculty, Instituto Tecnológico Metropolitano ITM, Medellín, Colombia.

出版信息

Hum Brain Mapp. 2019 Oct 15;40(15):4357-4369. doi: 10.1002/hbm.24707. Epub 2019 Jul 11.

Abstract

Optically pumped magnetometers (OPMs) have reached sensitivity levels that make them viable portable alternatives to traditional superconducting technology for magnetoencephalography (MEG). OPMs do not require cryogenic cooling and can therefore be placed directly on the scalp surface. Unlike cryogenic systems, based on a well-characterised fixed arrays essentially linear in applied flux, OPM devices, based on different physical principles, present new modelling challenges. Here, we outline an empirical Bayesian framework that can be used to compare between and optimise sensor arrays. We perturb the sensor geometry (via simulation) and with analytic model comparison methods estimate the true sensor geometry. The width of these perturbation curves allows us to compare different MEG systems. We test this technique using simulated and real data from SQUID and OPM recordings using head-casts and scanner-casts. Finally, we show that given knowledge of underlying brain anatomy, it is possible to estimate the true sensor geometry from the OPM data themselves using a model comparison framework. This implies that the requirement for accurate knowledge of the sensor positions and orientations a priori may be relaxed. As this procedure uses the cortical manifold as spatial support there is no co-registration procedure or reliance on scalp landmarks.

摘要

光泵磁强计(OPM)已经达到了一定的灵敏度水平,使其成为传统超导技术在脑磁图(MEG)领域的可行便携式替代品。OPM 不需要低温冷却,因此可以直接放置在头皮表面。与基于特征明确的固定阵列的低温系统不同,基于不同物理原理的 OPM 设备带来了新的建模挑战。在这里,我们概述了一个经验贝叶斯框架,可以用于比较和优化传感器阵列。我们通过模拟扰动传感器几何形状,并通过解析模型比较方法来估计真实的传感器几何形状。这些扰动曲线的宽度使我们能够比较不同的 MEG 系统。我们使用 SQUID 和 OPM 记录的模拟和真实数据,通过头模和扫描仪模型进行了测试。最后,我们表明,给定对大脑解剖结构的了解,可以使用模型比较框架从 OPM 数据本身估计真实的传感器几何形状。这意味着对传感器位置和方向的准确先验知识的要求可能会放宽。由于该过程使用皮质流形作为空间支撑,因此不需要配准过程或依赖头皮标记。

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