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Exploiting individual primary visual cortex geometry to boost steady state visual evoked potentials

机译:利用单个初级视觉皮层的几何形状来提高稳态视觉诱发电位

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Objective. The steady-state visual evoked potential (SSVEP) is an electroencephalographic response to flickering stimuli generated partly in primary visual area V1. The typical 'cruciform' geometry and retinotopic organization of V1 is such that certain neighboring visual regions project to neighboring cortical regions of opposite orientation. Here, we explored ways to exploit this organization in order to boost scalp SSVEP amplitude via oscillatory summation. Approach. We manipulated flicker-phase offsets among angular segments of a large annular stimulus in three ways, and compared the resultant SSVEP power to a conventional condition with no temporal phase offsets. (1) We divided the annulus into standard octants for all subjects, and flickered upper horizontal octants with opposite temporal phase to the lower horizontal ones, and left vertical octants opposite to the right vertical ones; (2) we individually adjusted the boundaries between the eight contiguous segments of the standard octants condition to coincide with cruciform-consistent, early-latency topographical shifts in pattern-pulse multifocal visual-evoked potentials (PPMVEP) derived for each of 32 equal-sized segments; (3) we assigned phase offsets to stimulus segments following an automatic algorithm based on the relative amplitudes of vertically- and horizontally-oriented PPMVEP components. Main results. The three flicker-phase manipulations resulted in a significant enhancement of normalized SSVEP power of (1) 202%, (2) 383%, and (3) 300%, respectively. Significance. We have thus demonstrated a means to obtain more reliable measures of visual evoked activity purely through consideration of cortical geometry. This principle stands to impact both basic and clinical research using SSVEPs.
机译:目的。稳态视觉诱发电位(SSVEP)是对部分在主要视觉区域V1中产生的闪烁刺激的脑电图反应。 V1的典型“十字形”几何形状和视网膜组织使得某些邻近的视觉区域投射到方向相反的邻近皮质区域。在这里,我们探索了利用这种组织的方法,以通过振荡求和来提高头皮SSVEP幅度。方法。我们以三种方式处理了大环形刺激的角段之间的闪烁相位偏移,并将所得的SSVEP功率与没有时间相位偏移的常规条件进行了比较。 (1)我们将所有对象的圆环划分为标准八分圆,将时间相位与下水平相位相反的闪烁的上水平八比特闪烁,将与垂直垂直的八角相对的左垂直八分闪烁。 (2)我们分别调整了标准八分圆条件的八个连续段之间的边界,以与为32个均等大小的图形脉冲多焦点视觉诱发电位(PPMVEP)中的十字形一致的,早期延迟的地形变化相一致段; (3)我们根据基于垂直和水平方向PPMVEP分量的相对幅度的自动算法,将相位偏移分配给了激励段。主要结果。三种闪烁相位操作分别导致标准化SSVEP功效显着提高,分别为(1)202%,(2)383%和(3)300%。意义。因此,我们已经证明了一种纯粹通过考虑皮层几何形状来获得更可靠的视觉诱发活动测量的方法。该原则影响使用SSVEP的基础研究和临床研究。

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  • 来源
    《Journal of neural engineering》 |2013年第3期|036003.1-036003.9|共9页
  • 作者单位

    Department of Biomedical Engineering, The City College of New York, City University of New York, New York, NY 10031, USA;

    Department of Biomedical Engineering, The City College of New York, City University of New York, New York, NY 10031, USA;

    Department of Biomedical Engineering, The City College of New York, City University of New York, New York, NY 10031, USA;

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