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首页> 外文期刊>Journal of neural engineering >Impact of uncertain head tissue conductivity in the optimization of transcranial direct current stimulation for an auditory target
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Impact of uncertain head tissue conductivity in the optimization of transcranial direct current stimulation for an auditory target

机译:不确定的头部组织电导率对经听觉目标经颅直流电刺激的优化的影响

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摘要

Objective. Transcranial direct current stimulation (tDCS) is a non-invasive brain stimulation technique to modify neural excitability. Using multi-array tDCS, we investigate the influence of inter-individually varying head tissue conductivity profiles on optimal electrode configurations for an auditory cortex stimulation. Approach. In order to quantify the uncertainty of the optimal electrode configurations, multi-variate generalized polynomial chaos expansions of the model solutions are used based on uncertain conductivity profiles of the compartments skin, skull, gray matter, and white matter. Stochastic measures, probability density functions, and sensitivity of the quantities of interest are investigated for each electrode and the current density at the target with the resulting stimulation protocols visualized on the head surface. Main results. We demonstrate that the optimized stimulation protocols are only comprised of a few active electrodes, with tolerable deviations in the stimulation amplitude of the anode. However, large deviations in the order of the uncertainty in the conductivity profiles could be noted in the stimulation protocol of the compensating cathodes. Regarding these main stimulation electrodes, the stimulation protocol was most sensitive to uncertainty in skull conductivity. Finally, the probability that the current density amplitude in the auditory cortex target region is supra-threshold was below 50%. Significance. The results suggest that an uncertain conductivity profile in computational models of tDCS can have a substantial influence on the prediction of optimal stimulation protocols for stimulation of the auditory cortex. The investigations carried out in this study present a possibility to predict the probability of providing a therapeutic effect with an optimized electrode system for future auditory clinical and experimental procedures of tDCS applications.
机译:目的。经颅直流电刺激(tDCS)是一种非侵入性的脑刺激技术,可以改变神经兴奋性。使用多阵列tDCS,我们调查了个体间变化的头部组织电导率分布对听觉皮层刺激的最佳电极配置的影响。方法。为了量化最佳电极配置的不确定性,基于皮肤,颅骨,灰质和白质区室的不确定电导率分布,使用了模型解决方案的多元广义多项式混沌扩展。研究每个电极的随机测量,概率密度函数和感兴趣量的敏感性,并在靶表面上观察到的刺激方案在靶上的电流密度。主要结果。我们证明优化的刺激方案仅由几个有源电极组成,阳极的刺激幅度具有可容忍的偏差。然而,在补偿阴极的刺激方案中可以注意到电导率分布图的不确定性顺序的较大偏差。对于这些主要刺激电极,刺激方案对颅骨电导率的不确定性最为敏感。最后,听觉皮层目标区域中的电流密度幅度超过阈值的概率低于50%。意义。结果表明,tDCS计算模型中不确定的电导率分布图可能会对听觉皮层刺激的最佳刺激方案的预测产生重大影响。在这项研究中进行的研究提供了一种可能性,可以预测优化的电极系统为tDCS应用的未来听觉临床和实验程序提供治疗效果的可能性。

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