Riedel Norman, Herzog Michael, Stein Thorsten, Deml Barbara
Institute of Human and Industrial Engineering, Karlsruhe Institute of Technology, Karlsruhe, Germany.
BioMotion Center, Institute of Sports and Sports Science, Karlsruhe Institute of Technology, Karlsruhe, Germany.
Front Psychol. 2024 Apr 18;15:1375029. doi: 10.3389/fpsyg.2024.1375029. eCollection 2024.
The use of mobile exoskeletons as assistive walking devices has the potential to affect the biomechanics of the musculoskeletal system due to their weight and restricted range of motion. This may result in physical and cognitive load for the user. Understanding how lower extremity loading affects cognitive-motor interference is crucial for the design of wearable devices, including powered exoskeletons, and the development of effective training interventions.
This study aims to examine the effects of modified leg mechanics on cognitive-motor interference in dual-task walking. Gait variability, as an indicator of motor control, was analyzed to investigate its relation to cognitive task difficulty and to determine whether lower extremity loading modifies this relationship. Additionally, the impact on the gait pattern, as represented by the mean values of spatio-temporal gait parameters were investigated.
Fifteen healthy young adults walked on a treadmill with and without weight cuffs bilaterally attached to their thighs and shanks while performing a visual-verbal Stroop test (simple task) and a serial subtraction task (difficult task). Dependent variables include mean values and variability (coefficients of variation) of step length, step width, stride time and double support time. Additionally, secondary task performance as correct response rates and perceived workload were assessed.
Double support time variability decreased during dual-task walking, but not during walking with modified leg mechanics while performing the difficult secondary task. Walking with modified leg mechanics resulted in increased gait variability compared to normal walking, regardless of cognitive load. During walking with modified leg mechanics, step length, step width, and stride time increased, while double support time decreased. The secondary tasks did not affect the gait pattern.
The interplay between an external focus of attention and competition for attentional resources may influence the variability of double support time. The findings suggest that walking with modified leg mechanics could increase cognitive-motor interference for healthy young adults in demanding dual-task situations. Therefore, it is important to analyze the underlying mechanisms of cognitive-motor interference in the context of human-exoskeleton interaction.
由于其重量和受限的运动范围,使用可穿戴外骨骼作为辅助行走设备可能会影响肌肉骨骼系统的生物力学。这可能会给使用者带来身体和认知负担。了解下肢负荷如何影响认知-运动干扰对于可穿戴设备(包括动力外骨骼)的设计以及有效训练干预措施的开发至关重要。
本研究旨在探讨改变腿部力学对双任务行走中认知-运动干扰的影响。步态变异性作为运动控制的指标,被分析以研究其与认知任务难度的关系,并确定下肢负荷是否会改变这种关系。此外,还研究了对以时空步态参数平均值表示的步态模式的影响。
15名健康的年轻成年人在跑步机上行走,双侧大腿和小腿佩戴或不佩戴重量袖带,同时执行视觉-言语Stroop测试(简单任务)和连续减法任务(困难任务)。因变量包括步长、步宽、步幅时间和双支撑时间的平均值和变异性(变异系数)。此外,评估作为正确反应率和感知工作量的次要任务表现。
在双任务行走期间,双支撑时间变异性降低,但在执行困难的次要任务时,改变腿部力学行走时并未降低。与正常行走相比,无论认知负荷如何,改变腿部力学行走都会导致步态变异性增加。在改变腿部力学行走时,步长、步宽和步幅时间增加,而双支撑时间减少。次要任务并未影响步态模式。
注意力的外部焦点与注意力资源竞争之间的相互作用可能会影响双支撑时间的变异性。研究结果表明,在要求较高的双任务情况下,改变腿部力学行走可能会增加健康年轻成年人的认知-运动干扰。因此,在人机外骨骼交互的背景下分析认知-运动干扰的潜在机制非常重要。