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Visual Stimuli for P300-Based Brain-Computer Interfaces: Color, Shape, and Mobility

机译:P300的大脑电脑接口的视觉刺激:颜色,形状和移动性

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摘要

The purpose of this study was to identify the impact of different discriminative features of stimuli in a P300 brain-computer interface paradigm on overall performance and evoked potentials. It has been shown that stimuli sets with a greater number of discriminative features yield better target selection accuracy. Target selection accuracy was significantly higher for the stimuli that differ from each other by color, shape, and semantics. Highest performance was achieved with the stimuli set containing the largest number of discriminative features, namely a set of nine different-colored letters. This result is mainly due to higher mean P300 peak amplitude for stimuli sets that contain more discriminative features. The results of the study can be used for designing a better user experience in brain-computer interfacing (BCI). Motion of the stimuli presentation point and characteristics of this motion (linear or pseudorandom) did not have any impact on BCI performance. This result is promising for future BCI designs with rapid serial visual presentation using mobile robots or augmented reality as stimuli presentation environment.
机译:本研究的目的是识别P300脑电脑接口范例在整体性能和诱发潜力中不同鉴别特征的影响。已经表明,具有更大数量的鉴别特征的刺激组产生更好的目标选择精度。对于彼此的刺激,目标选择精度明显高于颜色,形状和语义。使用包含最大数量的歧视特征的刺激仪实现了最高的性能,即一组九个不同彩色的字母。该结果主要是由于包含更多辨别特征的刺激套的平均P300峰值幅度。该研究的结果可用于设计大脑 - 计算机接口(BCI)中更好的用户体验。这种运动的刺激呈现点和特征的运动(线性或伪随机)对BCI性能没有任何影响。这一结果对未来的BCI设计具有快速串行视觉演示的未来设计,或者使用移动机器人或增强现实作为刺激演示环境。

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