基于注视跟踪的神经系统疾病诊断决策支持系统

David Kupas, B. Harangi, Gyorgy Czifra, G. Andrassy
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引用次数: 3

摘要

目前对神经系统疾病的诊断是一项昂贵且耗时的任务。我们的目标是使用数字眼扫描仪使这个过程更容易,更准确。我们的系统可以帮助诊断,协助实践,缩短所需的时间找到适当的治疗。首先,我们收集了神经学检查领域所有重要的视觉效果,并制作了一个视频,以便在视频中测试患者的眼球运动。通过适当的眼动仪收集他们的凝视数据,然后使用基于机器学习的算法分析凝视信息以评估患者的精神状态。实验结果表明,我们提出的方法可以利用患者的注视数据对健康患者和患病患者进行区分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Decision support system for the diagnosis of neurological disorders based on gaze tracking
Current diagnosis of neurological disorders is an expensive and time-consuming task. Our goal is to make this procedure easier and more accurate using a digital eye scanner. Our system can help in making diagnoses, assists in the practice and shortens the time needed to find the appropriate treatment. First and foremost we collect all important visual effects in the field of neurological examination and create a video to make possible the testing of the eye movement of the patient during the video. Their gaze data is collected by an appropriate eye tracker, then we analyze the gaze information in order to evaluate the mental state of the patient using machine learning based algorithms. According to the experimental results, our proposed technique can separate the healthy and ill patients from each other using their gaze data.
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