Sakthivelpathi Vigneshwar, Qian Zhongjie, Li Tianyi, Ahn Sanggyeun, Dichiara Anthony B, Soetedjo Robijanto, Chung Jae-Hyun
Department of Mechanical Engineering, University of Washington, Box 352600, Seattle, WA 98195, USA.
Department of Industrial Design, University of Washington, Seattle, WA 98195, USA.
Sens Actuators A Phys. 2022 Sep 1;344. doi: 10.1016/j.sna.2022.113739. Epub 2022 Jul 8.
The uniqueness of eyes, facial geometry, and gaze direction makes eye tracking a very challenging technological pursuit. Although camera-based eye-tracking systems are popular, the obtrusiveness of their bulky equipment along with their high computational cost and power consumption is considered problematic for wearable applications. Noncontact gaze monitoring using capacitive sensing technique has been attempted but failed due to low sensitivity and parasitic capacitance. Here, we study the interaction between a novel capacitive sensor and eye movement for wearable eye-tracking. The capacitive sensors are made of a pair of asymmetric electrodes; one comprising carbon nanotube-paper composite fibers (CPC) and the other being a rectangular metal electrode. The interaction between the asymmetric sensor and a spherical object mimicking an eyeball is analyzed numerically. Using a face simulator, both single- and differential capacitive measurements are characterized with respect to proximity, geometry, and human body charge. Using a prototype eye tracker, multiple sensor locations are studied to determine the optimal configurations. The capacitive responses to vertical and horizontal gaze directions are analyzed in comparison to those of a commercial eye tracking system. The performance is demonstrated for sensitive eye-movement tracking, closed-eye monitoring, and human-machine interface. This research has important implications for the development of capacitive, wearable eye trackers, which can facilitate fields of human-machine interface, cognitive monitoring, neuroscience research, and rehabilitation.
眼睛的独特性、面部几何形状和注视方向使得眼动追踪成为一项极具挑战性的技术追求。尽管基于摄像头的眼动追踪系统很受欢迎,但它们笨重设备的突兀性以及高计算成本和功耗,对于可穿戴应用来说被认为是有问题的。使用电容感应技术进行非接触式注视监测已经尝试过,但由于灵敏度低和寄生电容而失败。在这里,我们研究一种新型电容传感器与眼动之间的相互作用,用于可穿戴眼动追踪。电容传感器由一对不对称电极制成;一个由碳纳米管纸复合纤维(CPC)组成,另一个是矩形金属电极。对不对称传感器与模拟眼球的球形物体之间的相互作用进行了数值分析。使用面部模拟器,对接近度、几何形状和人体电荷方面的单电容和差分电容测量进行了表征。使用原型眼动追踪器,研究了多个传感器位置以确定最佳配置。将对垂直和水平注视方向的电容响应与商业眼动追踪系统的响应进行了比较分析。展示了其在敏感眼动追踪、闭眼监测和人机界面方面的性能。这项研究对电容式可穿戴眼动追踪器的开发具有重要意义,它可以促进人机界面、认知监测、神经科学研究和康复等领域的发展。