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Transcranial Electrical Neuromodulation Based on the Reciprocity Principle

机译:基于互惠原理的经颅电神经调节

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摘要

A key challenge in multi-electrode transcranial electrical stimulation (TES) or transcranial direct current stimulation (tDCS) is to find a current injection pattern that delivers the necessary current density at a target and minimizes it in the rest of the head, which is mathematically modeled as an optimization problem. Such an optimization with the Least Squares (LS) or Linearly Constrained Minimum Variance (LCMV) algorithms is generally computationally expensive and requires multiple independent current sources. Based on the reciprocity principle in electroencephalography (EEG) and TES, it could be possible to find the optimal TES patterns quickly whenever the solution of the forward EEG problem is available for a brain region of interest. Here, we investigate the reciprocity principle as a guideline for finding optimal current injection patterns in TES that comply with safety constraints. We define four different trial cortical targets in a detailed seven-tissue finite element head model, and analyze the performance of the reciprocity family of TES methods in terms of electrode density, targeting error, focality, intensity, and directionality using the LS and LCMV solutions as the reference standards. It is found that the reciprocity algorithms show good performance comparable to the LCMV and LS solutions. Comparing the 128 and 256 electrode cases, we found that use of greater electrode density improves focality, directionality, and intensity parameters. The results show that reciprocity principle can be used to quickly determine optimal current injection patterns in TES and help to simplify TES protocols that are consistent with hardware and software availability and with safety constraints.
机译:在多电极经颅电刺激(TES)或经颅直流电刺激(tDCS)中的关键挑战是找到一种电流注入模式,该模式可在目标处提供必要的电流密度,并在头部的其他部位将其最小化,这在数学上是可行的建模为优化问题。用最小二乘(LS)或线性约束最小方差(LCMV)算法进行的这种优化通常计算量大,并且需要多个独立的电流源。基于脑电图(EEG)和TES中的互惠原理,只要正向EEG问题的解决方案可用于感兴趣的大脑区域,就可以快速找到最佳TES模式。在这里,我们研究互惠原则,作为在TES中找到符合安全约束条件的最佳电流注入方式的指南。我们在详细的七组织有限元头部模型中定义了四个不同的皮质皮质目标,并使用LS和LCMV解决方案在电极密度,靶向误差,聚焦性,强度和方向性方面分析了TES方法的互惠族的性能作为参考标准。发现互易算法显示出与LCMV和LS解决方案可比的良好性能。比较128和256个电极的情况,我们发现使用更大的电极密度可以改善聚焦性,方向性和强度参数。结果表明,互惠原理可用于快速确定TES中的最佳电流注入模式,并有助于简化与硬件和软件可用性以及安全性约束一致的TES协议。

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