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Towards Pupil-Assisted Target Selection in Natural Settings: Introducing an On-Screen Keyboard

机译:在自然环境中实现学生协助的目标选择:屏幕键盘介绍

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Preliminary reports have shown the possibility to assist input commands in HCI via pupil dilation. Applicability of these findings is however subject to further investigations, since the specificity of changes in diameter is low, e.g. through variations in brightness. Investigating employability and shape of pupil size dynamics outside a strictly controllccced laboratory, we implemented the emulation of selection via an integrated mechanism of pupil dilation and constriction that could speed up a dwell time of 1.5 s. During the operation of an on-screen keyboard, 21 subjects were able to type via this mechanism, needing 1 s on average per keystroke and producing only slightly more than 1% false positive selections. Hereby, pupil dynamics were assessed. More than 90% of keystrokes could be accelerated under assistance of pupil variations. As suggested from basic research, pupil dilated when fixating later selected keys and constricted shortly afterwards. This finding was consistent between all subjects, however, pupil dynamics were shifted in regard to temporal occurrence and amplitude of diameter changes. Pupil-Assisted Target Selection shows potential in non-strictly controlled environments for computer input and may be further improved on the basis of this data. This might culminate in an integrated gaze-based object selection mechanism that could go beyond the benchmarking dwell time performance.
机译:初步报告显示了通过瞳孔扩张在HCI中协助输入命令的可能性。然而,由于直径变化的特异性低,例如,直径变化小,因此这些发现的适用性还需要进一步研究。通过亮度变化。在严格控制的实验室之外调查了学生的就业能力和瞳孔大小动态的形状,我们通过瞳孔扩张和收缩的集成机制实施了选择模拟,这可以缩短1.5 s的停留时间。在屏幕键盘上进行操作时,通过这种机制可以打字的对象为21个,每个击键平均需要1 s,并且产生的假阳性选择率仅略高于1%。据此,评估了学生的动态。在瞳孔变化的帮助下,可以加快90%以上的击键速度。根据基础研究的建议,在固定以后选择的按键时,瞳孔会扩张,此后不久就会收缩。该发现在所有受试者之间都是一致的,但是,瞳孔动力学在时间发生和直径变化幅度方面发生了变化。学生辅助目标选择显示了在非严格控制的环境中进行计算机输入的潜力,并且可以基于此数据进一步加以改进。这可能最终导致基于注视的集成对象选择机制可能超越基准停留时间性能。

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