用于评估神经退行性疾病的眼动测量技术的进展

Tali G. Band, Rotem Z. Bar-Or, Edmund Ben-Ami
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引用次数: 0

摘要

长期以来,人们一直认为眼球运动是神经系统疾病的一个重要指标,因为在与视觉相关的过程中,包括运动和认知功能在内的多个神经通路错综复杂地参与其中,并表现为快速的反应时间。眼球运动异常可显示神经系统疾病的严重程度,在某些情况下还能区分不同的疾病表型。近年来,随着成像传感器和计算能力,特别是机器学习和人工智能方面的突飞猛进,有助于提取和分析眼球运动以评估神经退行性疾病的技术发展突飞猛进。这篇微型综述概述了这些进展,强调了它们在提供患者友好的眼动测量方法以帮助评估患者病情和进展方面的潜力。通过总结过去几十年中最新的技术创新及其在评估神经退行性疾病中的应用,本综述还深入探讨了这一不断扩大的领域的当前趋势和未来方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancements in eye movement measurement technologies for assessing neurodegenerative diseases
Eye movements have long been recognized as a valuable indicator of neurological conditions, given the intricate involvement of multiple neurological pathways in vision-related processes, including motor and cognitive functions, manifesting in rapid response times. Eye movement abnormalities can indicate neurological condition severity and, in some cases, distinguish between disease phenotypes. With recent strides in imaging sensors and computational power, particularly in machine learning and artificial intelligence, there has been a notable surge in the development of technologies facilitating the extraction and analysis of eye movements to assess neurodegenerative diseases. This mini-review provides an overview of these advancements, emphasizing their potential in offering patient-friendly oculometric measures to aid in assessing patient conditions and progress. By summarizing recent technological innovations and their application in assessing neurodegenerative diseases over the past decades, this review also delves into current trends and future directions in this expanding field.
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