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Sit-to-stand-and-walk from 120% Knee Height: A Novel Approach to Assess Dynamic Postural Control Independent of Lead-limb
Published on: August 30, 2016
Dynamic stability during level walking and obstacle crossing in children aged 2-5 years estimated by marker-less
Kohei Yoshimoto1, Hiroki Mani2, Natsuki Hirose3
1Graduate School of Humanities and Social Sciences, Hiroshima University, Higashi-Hiroshima, Japan.
Insights
Children aged 2-5 years demonstrate adaptable gait for obstacle negotiation, maintaining forward dynamic stability but showing reduced lateral stability compared to adults. Locomotor adjustments are evident in early childhood.
Area of Science:
- Biomechanics
- Developmental Motor Control
- Human Gait Analysis
Background:
- Dynamic stability is crucial for safe locomotion, especially during challenging tasks like obstacle crossing.
- Understanding developmental changes in dynamic stability is essential for identifying potential motor control issues in children.
Purpose of the Study:
- To investigate and compare dynamic stability during level walking and obstacle crossing in young children (2-5 years) and healthy adults.
- To analyze differences in gait parameters and margin of stability (MoS) between age groups during these tasks.
Main Methods:
- Utilized marker-less motion capture (OpenPose) and 3D kinematic analysis to record gait.
- Calculated margin of stability (MoS) in forward and lateral directions during unobstructed and obstructed walking.
- Included 13 typically developing children (2-5 years) and 19 healthy young adults.
Main Results:
- All participants successfully navigated obstacles, with children exhibiting cautious strategies like reduced gait speed and increased toe clearance.
- No significant difference in forward MoS was found between children and adults during level walking and obstacle crossing.
- Children demonstrated greater lateral MoS during level walking, but some showed reduced lateral MoS during obstacle crossing compared to adults.
Conclusions:
- Young children display observable locomotor adjustments for obstacle avoidance, indicating developing motor control.
- While forward dynamic stability is maintained, lateral dynamic stability appears more vulnerable in young children, particularly during obstacle negotiation.
Abstract:
In the present study, dynamic stability during level walking and obstacle crossing in typically developing children aged 2-5 years (n = 13) and healthy young adults (n = 19) was investigated. The participants were asked to walk along unobstructed and obstructed walkways. The height of the obstacle was set at 10% of the leg length. Gait motion was captured by three RGB cameras. 2D body landmarks were estimated using OpenPose, a marker-less motion capture algorithm, and converted to 3D using direct linear transformation (DLT). Dynamic stability was evaluated using the margin of stability (MoS) in the forward and lateral directions. All the participants successfully crossed the obstacles. Younger children crossed the obstacle more carefully to avoid falls, as evidenced by obviously decreased gait speed just before the obstacle in 2-year-olds and the increased in maximum toe height with younger age. There was no significant difference in the MoS at the instant of heel contact between children and adults during level walking and obstacle crossing in the forward direction, although children increased the step length of the lead leg to a greater extent than the adults to ensure base of support (BoS)-center of mass (CoM) distance. In the lateral direction, children exhibited a greater MoS than adults during level walking [children: 9.5%, adults: 6.5%, median, W = 39.000, p < .001, rank-biserial correlation = -0.684]; however, some children exhibited a smaller MoS during obstacle crossing [lead leg: -5.9% to 3.6% (min-max) for 4 children, 4.7%-6.4% [95% confidence interval (CI)] for adults, p < 0.05; trail leg: 0.1%-4.4% (min-max) for 4 children, 4.7%-6.4% (95% CI) for adults, p < 0.05]]. These results indicate that in early childhood, locomotor adjustment needed to avoid contact with obstacles can be observed, whereas lateral dynamic stability is frangible.
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