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体计量学:心脏、认知和移动参数联合评估的主成分分析研究。

Embodimetrics: A Principal Component Analysis Study of the Combined Assessment of Cardiac, Cognitive and Mobility Parameters.

机构信息

Behaviour & Movement, 50142 Firenze, Italy.

Embodimetria, 65121 Pescara, Italy.

出版信息

Sensors (Basel). 2024 Mar 15;24(6):1898. doi: 10.3390/s24061898.

Abstract

There is a growing body of literature investigating the relationship between the frequency domain analysis of heart rate variability (HRV) and cognitive Stroop task performance. We proposed a combined assessment integrating trunk mobility in 72 healthy women to investigate the relationship between cognitive, cardiac, and motor variables using principal component analysis (PCA). Additionally, we assessed changes in the relationships among these variables after a two-month intervention aimed at improving the perception-action link. At baseline, PCA correctly identified three components: one related to cardiac variables, one to trunk motion, and one to Stroop task performance. After the intervention, only two components were found, with trunk symmetry and range of motion, accuracy, time to complete the Stroop task, and low-frequency heart rate variability aggregated into a single component using PCA. Artificial neural network analysis confirmed the effects of both HRV and motor behavior on cognitive Stroop task performance. This analysis suggested that this protocol was effective in investigating embodied cognition, and we defined this approach as "embodimetrics".

摘要

越来越多的文献研究心率变异性(HRV)的频域分析与认知 Stroop 任务表现之间的关系。我们提出了一种综合评估方法,纳入 72 名健康女性的躯干活动度,使用主成分分析(PCA)来研究认知、心脏和运动变量之间的关系。此外,我们评估了旨在改善感知-动作联系的两个月干预后这些变量之间关系的变化。在基线时,PCA 正确识别出三个成分:一个与心脏变量有关,一个与躯干运动有关,一个与 Stroop 任务表现有关。干预后,仅发现两个成分,使用 PCA 将躯干对称性和运动范围、准确性、完成 Stroop 任务的时间以及低频心率变异性聚集到一个成分中。人工神经网络分析证实了 HRV 和运动行为对认知 Stroop 任务表现的影响。这项分析表明,该方案在研究具身认知方面是有效的,我们将这种方法定义为“具身计量学”。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf00/10976222/ba5bd11a9a5a/sensors-24-01898-g001.jpg

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