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首页> 外文期刊>Journal of Neuroscience Methods >Information content with low- vs. high-Tc SQUID arrays in MEG recordings: The case for high-Tc SQUID-based MEG
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Information content with low- vs. high-Tc SQUID arrays in MEG recordings: The case for high-Tc SQUID-based MEG

机译:MEG记录中低Tc和高Tc SQUID阵列的信息内容:基于高Tc SQUID的MEG的情况

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摘要

Background: Magnetoencephalography (MEG) is a method of studying brain activity via recordings of the magnetic field generated by neural activity. Modern MEG systems employ an array of low critical-temperature superconducting quantum interference devices (low-Tc SQUIDs) that surround the head. The geometric distribution of these arrays is optimized by maximizing the information content available to the system in brain activity recordings according to Shannon's theory of noisy channel capacity. New method: Herein, we present a theoretical comparison of the performance of low- and high-Tc SQUID-based multichannel systems in recordings of brain activity. Results: We find a high-Tc SQUID magnetometer-based multichannel system is capable of extracting at least 40% more information than an equivalent low-Tc SQUID system. The results suggest more information can be extracted from high-Tc SQUID MEG recordings (despite higher sensor noise levels than their low-Tc counterparts) because of the closer proximity to neural sources in the brain. Comparison with existing methods: We have duplicated previous results in terms of total information of multichannel low-Tc SQUID arrays for MEG. High-Tc SQUID technology theoretically outperforms its conventional low-Tc counterpart in MEG recordings. Conclusions: A full-head high-Tc SQUID-based MEG system's potential for extraction of more information about neural activity can be used to, e.g., develop better diagnostic and monitoring techniques for brain disease and enhance our understanding of the working human brain.
机译:背景:脑磁图(MEG)是一种通过记录由神经活动产生的磁场来研究大脑活动的方法。现代MEG系统采用围绕头部的一系列低临界温度超导量子干扰设备(low-Tc SQUID)。根据Shannon的“噪声通道容量”理论,通过最大化系统在大脑活动记录中可用的信息内容,可以优化这些阵列的几何分布。新方法:在这里,我们提出了基于低Tc和高Tc SQUID的多通道系统在脑活动记录中的性能的理论比较。结果:我们发现,与同等的低Tc SQUID系统相比,基于高Tc SQUID磁力计的多通道系统能够提取至少40%的信息。结果表明,由于与大脑中神经源的距离更近,因此可以从高Tc SQUID MEG记录中提取更多信息(尽管传感器的噪声水平要比低Tc的同行更高)。与现有方法的比较:关于MEG的多通道低Tc SQUID阵列的总信息,我们重复了以前的结果。理论上,在MEG录制中,高Tc SQUID技术优于其传统的低Tc技术。结论:基于全头高Tc SQUID的MEG系统具有提取有关神经活动的更多信息的潜力,可以用于例如开发更好的脑部疾病诊断和监测技术,并增强我们对正常人脑的理解。

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