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However adaptation to pain in GB claudicants involved a hip strategy, not seen in PB claudicants.
This is known as hip strategy, and requires a longer time for the muscles to actuate.
This mechanism was assumed to also apply to the cases of ankle and hip strategy, and the resultant horizontal plane acceleration was modified accordingly.
With regard to postural adjustments, it is hypothesized that humans use ankle strategy, hip strategy and combinations of the two in order to maintain balance [16].
There is a distinct change in the response at a rise time of around 1 s, and it is proposed that this is due to the unconscious change from ankle strategy to hip strategy.
This conforms to the human ankle and hip strategy [26, 27] in disturbance standing in sagittal plane in which a double-segment inverted pendulum control strategy is used for the balance.
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Designed SimMechanics controllers for hexapod walking gaits wave, alternating tripod, strafe, etc)., and biped balancing using ankle and hip strategies as well as capture point methods.
These figures may be considered to approximate the cases of the ankle and hip strategies respectively.
Since postural adjustments are limited in the knee joint, ankle and hip strategies may compensate for modified conditions to control the center of mass in AP and ML direction in relationship to the base of support [46, 50, 54].
The postural sway also reflects the ankle and hip strategies to maintain the standing position [ 2].
Our results suggest that the ankle and hip strategies have opposite behaviors in relation to vision and the inverted pendulum.
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