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实时眨眼检测作为现实生活环境中计算机视觉综合征的指标:一项探索性研究。

Real-Time Blink Detection as an Indicator of Computer Vision Syndrome in Real-Life Settings: An Exploratory Study.

机构信息

Center for Translational Health and Medical Biotechnology Research, School of Health of Polytechnic Institute of Porto, 4200-465 Porto, Portugal.

出版信息

Int J Environ Res Public Health. 2023 Mar 4;20(5):4569. doi: 10.3390/ijerph20054569.

Abstract

With the increase in the number of people using digital devices, complaints about eye and vision problems have been increasing, making the problem of computer vision syndrome (CVS) more serious. Accompanying the increase in CVS in occupational settings, new and unobstructive solutions to assess the risk of this syndrome are of paramount importance. This study aims, through an exploratory approach, to determine if blinking data, collected using a computer webcam, can be used as a reliable indicator for predicting CVS on a real-time basis, considering real-life settings. A total of 13 students participated in the data collection. A software that collected and recorded users' physiological data through the computer's camera was installed on the participants' computers. The CVS-Q was applied to determine the subjects with CVS and its severity. The results showed a decrease in the blinking rate to about 9 to 17 per minute, and for each additional blink the CVS score lowered by 1.26. These data suggest that the decrease in blinking rate was directly associated with CVS. These results are important for allowing the development of a CVS real-time detection algorithm and a related recommendation system that provides interventions to promote health, well-being, and improved performance.

摘要

随着数字设备使用人数的增加,有关眼睛和视力问题的投诉也越来越多,这使得计算机视觉综合征(CVS)的问题更加严重。伴随着职业环境中 CVS 的增加,评估这种综合征风险的新的无阻碍解决方案至关重要。本研究旨在通过探索性方法,确定使用计算机网络摄像头收集的眨眼数据是否可以作为实时预测 CVS 的可靠指标,同时考虑到实际生活环境。共有 13 名学生参与了数据收集。在参与者的计算机上安装了一款可以通过电脑摄像头收集和记录用户生理数据的软件。通过 CVS-Q 评估来确定患有 CVS 及其严重程度的受试者。结果表明,眨眼频率下降到每分钟约 9 到 17 次,每增加一次眨眼,CVS 评分就会降低 1.26。这些数据表明,眨眼频率的降低与 CVS 直接相关。这些结果对于开发 CVS 实时检测算法和相关的推荐系统以提供干预措施来促进健康、福祉和提高绩效非常重要。

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