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'Neuronic Localizador de Fuentes': Sistema para el Cálculo de la Tomografía Eléctrica/Magnética Cerebral

机译:“神经源定位器”:脑电/磁层析成像计算系统

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Brain Electríc/Magnetic Tomography (BET /BMT) consists of a 3D-image reconstruction of the Primary Current Density inside the brain from the signals measured outside the head, which can be considered as a functional neuroimaging modality. Mathematically, this is known as the EEG/MEG inverse problem (IP), which is ill posed (non-unique solution). To find a unique BET/BMT, additional in-formation and proper models are needed, which has led to the development of several different methods for solving the IP. In this work we introduce Neuronic Source Localizer, which include some of the methods reported in the literature for computing BET/BMT, such as: Mínimum Norm, Weighted Mínimum Norm, Low Resolution Tomography (LORETA) and Bayesian Model Averaging. The system works with EEG and MEG data, in time and frequency domain. This system is a useful tool for cognitive and clinical re-searchers who study normal and abnormal brain processes such as cognition and epilepsy because it makes easier to compute BET/BMT in a few steps.
机译:脑电/磁共振断层扫描(BET / BMT)包括从头部外部测得的信号对大脑内部初级电流密度的3D图像重建,这可以视为一种功能性神经成像方式。从数学上讲,这被称为EEG / MEG反问题(IP),它是不适定的(非唯一解)。为了找到独特的BET / BMT,需要更多的信息和适当的模型,这导致开发了多种解决IP的方法。在这项工作中,我们介绍了Neuronic Source Localizer,其中包括文献中报道的一些用于计算BET / BMT的方法,例如:最小范数,加权最小范数,低分辨率断层扫描(LORETA)和贝叶斯模型平均。该系统可在时域和频域中处理EEG和MEG数据。对于研究正常和异常大脑过程(例如认知和癫痫)的认知和临床研究人员而言,该系统是有用的工具,因为它使分几个步骤计算BET / BMT变得更加容易。

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