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一种新的无监督机器学习方法评估双相情感障碍患者的姿势动力学。

A Novel Unsupervised Machine Learning Approach to Assess Postural Dynamics in Euthymic Bipolar Disorder.

出版信息

IEEE J Biomed Health Inform. 2024 Aug;28(8):4903-4911. doi: 10.1109/JBHI.2024.3394754. Epub 2024 Aug 6.

Abstract

Bipolar disorder (BD) is a mood disorder with different phases alternating between euthymia, manic or hypomanic episodes, and depressive episodes. While motor abnormalities are commonly seen during depressive or manic episodes, not much attention has been paid to postural abnormalities during periods of euthymia and their association with illness burden. We collected 24-hour posture data in 32 euthymic participants diagnosed with BD using a shirt-based wearable. We extracted a set of nine time-domain features, and performed unsupervised participant clustering. We investigated the association between posture variables and 12 clinical characteristics of illness burden. Based on their postural dynamics during the daytime, evening, or nighttime, participants clustered in three clusters. Higher illness burden was associated with lower postural variability, in particular during daytime. Participants who exhibited a mostly upright sitting/standing posture during the night with frequent nighttime postural transitions had the highest number of lifetime depressive episodes. Euthymic participants with BD exhibit postural abnormalities that are associated with illness burden, especially with the number of depressive episodes. Our results contribute to understanding the role of illness burden on posture changes and sleep consolidation in periods of euthymia.

摘要

双相情感障碍(BD)是一种心境障碍,其不同阶段在轻躁狂、躁狂或轻躁狂发作和抑郁发作之间交替。虽然在抑郁或躁狂发作期间经常出现运动异常,但在轻躁狂期间很少关注姿势异常及其与疾病负担的关系。我们使用基于衬衫的可穿戴设备收集了 32 名被诊断患有 BD 的轻躁狂参与者的 24 小时姿势数据。我们提取了一组九个时域特征,并进行了无监督的参与者聚类。我们研究了姿势变量与疾病负担的 12 个临床特征之间的关联。根据他们白天、傍晚或夜间的姿势动态,参与者聚类为三个簇。较高的疾病负担与较低的姿势变异性相关,尤其是在白天。在夜间表现出经常夜间姿势转换的直立坐姿/站姿的参与者,一生中经历的抑郁发作次数最多。患有 BD 的轻躁狂参与者表现出与疾病负担相关的姿势异常,尤其是与抑郁发作次数相关的异常。我们的研究结果有助于了解疾病负担对轻躁狂期间的姿势变化和睡眠巩固的影响。

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