Multi-Site Identification and Generalization of Clusters of Walking Behaviors in Individuals With Chronic Stroke and Neurotypical Controls.

Neurorehabilitation and neural repair Pub Date : 2023-12-01 Epub Date: 2023-11-17 DOI:10.1177/15459683231212864
Natalia Sánchez, Nicolas Schweighofer, Sara J Mulroy, Ryan T Roemmich, Trisha M Kesar, Gelsy Torres-Oviedo, Beth E Fisher, James M Finley, Carolee J Winstein
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Abstract

Background: Walking patterns in stroke survivors are highly heterogeneous, which poses a challenge in systematizing treatment prescriptions for walking rehabilitation interventions.

Objectives: We used bilateral spatiotemporal and force data during walking to create a multi-site research sample to: (1) identify clusters of walking behaviors in people post-stroke and neurotypical controls and (2) determine the generalizability of these walking clusters across different research sites. We hypothesized that participants post-stroke will have different walking impairments resulting in different clusters of walking behaviors, which are also different from control participants.

Methods: We gathered data from 81 post-stroke participants across 4 research sites and collected data from 31 control participants. Using sparse K-means clustering, we identified walking clusters based on 17 spatiotemporal and force variables. We analyzed the biomechanical features within each cluster to characterize cluster-specific walking behaviors. We also assessed the generalizability of the clusters using a leave-one-out approach.

Results: We identified 4 stroke clusters: a fast and asymmetric cluster, a moderate speed and asymmetric cluster, a slow cluster with frontal plane force asymmetries, and a slow and symmetric cluster. We also identified a moderate speed and symmetric gait cluster composed of controls and participants post-stroke. The moderate speed and asymmetric stroke cluster did not generalize across sites.

Conclusions: Although post-stroke walking patterns are heterogenous, these patterns can be systematically classified into distinct clusters based on spatiotemporal and force data. Future interventions could target the key features that characterize each cluster to increase the efficacy of interventions to improve mobility in people post-stroke.

慢性脑卒中和神经正常对照患者步行行为群的多位点识别和归纳。
背景:脑卒中幸存者的行走模式是高度异质性的,这对行走康复干预的系统化治疗处方提出了挑战。目的:我们使用行走时的双侧时空和力量数据创建了一个多站点的研究样本:(1)识别卒中后和神经正常对照人群的行走行为集群;(2)确定这些行走集群在不同研究站点的普遍性。我们假设卒中后的参与者会有不同的行走障碍,导致不同的行走行为群,这也与对照组的参与者不同。方法:我们收集了来自4个研究站点的81名卒中后参与者的数据,并收集了31名对照参与者的数据。采用稀疏k均值聚类方法,基于17个时空和力变量对行走类进行识别。我们分析了每个集群内的生物力学特征,以表征集群特定的行走行为。我们还使用留一方法评估了集群的可泛化性。结果:我们确定了4个卒中集群:快速且不对称的卒中集群、中速且不对称的卒中集群、具有正面力不对称的慢速卒中集群和缓慢且对称的卒中集群。我们还确定了一个由对照组和参与者组成的中等速度和对称步态集群。中等速度和不对称卒中集群没有在各个部位普遍存在。结论:脑卒中后行走模式虽然具有异质性,但基于时空和力数据,这些模式可以系统地划分为不同的集群。未来的干预措施可以针对每个集群的关键特征,以提高干预措施的有效性,改善中风后患者的行动能力。
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