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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Approximating dipoles from human EEG activity: the effect of dipole source configuration on dipolarity using single dipole models
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Approximating dipoles from human EEG activity: the effect of dipole source configuration on dipolarity using single dipole models

机译:从人类脑电活动近似偶极子:使用单个偶极子模型的偶极子源配置对偶极子的影响

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Dipolarity is the goodness-of-fit of the observed potential distribution with one calculated using specific assumptions about the source of the electrical potential distribution. The authors used computer simulations to examine the effect of different distributions of sources on their resulting dipolarity values. Electric dipoles were placed in a head-shaped model with uniform conductivity using four different dipole configurations (randomly oriented dipoles, a uniform dipole disk layer, a dipole disk layer with uniformly distributed holes, or one with randomly oriented dipoles). The best-fitting single dipole for each configuration was calculated and the dipolarity was computed as the mean squared error of the electrical potential distributions generated by the actual dipole configuration and by the best-fitting single dipole. The simulations show that: 1) a smooth dipole layer with or without holes gives dipolarities above 99.5% even when extended over areas as large as 1256 mm/sup 2/; 2) randomly oriented dipoles under a smooth dipole layer also give dipolarities above 99.5%; and 3) randomly oriented and distributed dipoles, even if contained in a small portion of the total area, give dipolarities below 93.0%. These simulations show that inhomogeneity (holes) within a dipole disk layer per se do not lower dipolarity; rather, it is the random orientation and distribution of these dipoles which lowers dipolarity. Furthermore, dipolarity is not lowered by such randomly oriented and distributed dipoles when they are beneath a dipole disk layer.
机译:偶极性是所观察到的电位分布的拟合优度,其中一个使用关于电位分布源的特定假设计算得出。这组作者使用计算机模拟来检查不同源分布对其所产生的双极性值的影响。使用四种不同的偶极子配置(随机取向的偶极子,均匀偶极子盘层,具有均匀分布的孔的偶极子盘层或具有随机取向的偶极子的偶极子)将电偶极子放置在具有均匀导电性的头形模型中。计算出每种配置的最佳拟合单偶极子,并将偶极性计算为实际偶极子配置和最佳拟合单偶极子所产生的电势分布的均方误差。仿真表明:1)即使有超过1256 mm / sup 2 /的面积,带有或没有孔的光滑偶极子层也能提供99.5%以上的偶极性; 2)在光滑偶极子层下随机定向的偶极子也会产生99.5%以上的偶极子; 3)随机定向和分布的偶极子,即使包含在总面积的一小部分中,其偶极子也低于93.0%。这些模拟表明,偶极子圆盘层内的不均匀性(空穴)本身不会降低偶极性。相反,正是这些偶极子的随机取向和分布降低了偶极子性。此外,当偶极子在偶极子盘层下面时,偶极子不会因这种随机取向和分布的偶极子而降低。

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