对与心理健康有关的认知-情感偏见进行数字化评估。

PLOS digital health Pub Date : 2024-08-29 eCollection Date: 2024-08-01 DOI:10.1371/journal.pdig.0000595
Sang-Eon Park, Jisu Chung, Jeonghyun Lee, Minwoo Jb Kim, Jinhee Kim, Hong Jin Jeon, Hyungsook Kim, Choongwan Woo, Hackjin Kim, Sang Ah Lee
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引用次数: 0

摘要

随着社会对数字疗法解决心理健康问题的需求日益增长,我们对经过科学验证的数字内容的需求也相应增加。在这项研究中,我们旨在为开发基于大脑的数字疗法奠定坚实的科学基础,以评估和监测不同人群和年龄段的社会和情感偏差对认知的影响。首先,我们利用动画图形开发了三种计算机化认知任务:1)旨在测试注意力偏差的情绪侧翼任务;2)旨在测量记忆和执行功能偏差的情绪去-不去任务;3)旨在测量对社会判断敏感性的情绪社会评价任务。然后,我们利用触摸屏和在线计算机任务,在广泛的样本(儿童(50 人)、年轻成人(172 人)、老年人(39 人)、在线年轻成人(93 人)和抑郁症患者(41 人))中证实了我们的结果的普遍性,并设计了一项自发思维生成任务,该任务与自我报告量表密切相关,因此有可能成为自我报告量表的替代品。利用 PCA,我们提取了代表认知-情感功能不同方面(情感偏差、情感敏感性、一般准确性和一般/社会注意力)的五个成分。接下来,我们开发了上述任务的游戏化版本,以测试为期两周的数字认知训练的可行性。利用该应用程序进行的试点培训研究显示,培训组的情绪偏差有所减少(对照组未观察到),这与焦虑症状的减少有关。通过使用双通道可穿戴脑电图系统,我们发现额叶α和γ功率与情绪偏差及其在两周训练期间的减少有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Digital assessment of cognitive-affective biases related to mental health.

With an increasing societal need for digital therapy solutions for poor mental health, we face a corresponding rise in demand for scientifically validated digital contents. In this study we aimed to lay a sound scientific foundation for the development of brain-based digital therapeutics to assess and monitor cognitive effects of social and emotional bias across diverse populations and age-ranges. First, we developed three computerized cognitive tasks using animated graphics: 1) an emotional flanker task designed to test attentional bias, 2) an emotional go-no-go task to measure bias in memory and executive function, and 3) an emotional social evaluation task to measure sensitivity to social judgments. Then, we confirmed the generalizability of our results in a wide range of samples (children (N = 50), young adults (N = 172), older adults (N = 39), online young adults (N=93), and depression patients (N = 41)) using touchscreen and online computer-based tasks, and devised a spontaneous thought generation task that was strongly associated with, and therefore could potentially serve as an alternative to, self-report scales. Using PCA, we extracted five components that represented different aspects of cognitive-affective function (emotional bias, emotional sensitivity, general accuracy, and general/social attention). Next, a gamified version of the above tasks was developed to test the feasibility of digital cognitive training over a 2-week period. A pilot training study utilizing this application showed decreases in emotional bias in the training group (that were not observed in the control group), which was correlated with a reduction in anxiety symptoms. Using a 2-channel wearable EEG system, we found that frontal alpha and gamma power were associated with both emotional bias and its reduction across the 2-week training period.

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