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Effects of biomechanical and task constraints on the organization of movement in precision aiming

机译:生物力学和任务约束对精确瞄准运动组织的影响

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Nine participants performed a reciprocal precision aiming task under different experimental conditions. Due to the anisotropy of the work space, varying the direction of motion (from 0° to 315° in steps of 45°) allowed exploration of the effects of biomechanical constraints that were found to affect the duration of movement but not the shape of the kinematic pattern. Varying the size of the targets to be attained (W: 2.5, 1.25, and 0.625 cm, for a constant intertarget distance of 10 cm) and the nature (linear or non-linear) of the mapping between effector space (motion of a handheld stylus on a graphics tablet) and task space (motion of a pointer between targets on a computer screen) also led to changes in movement duration. However, the latter type of constraint gave rise to systematic changes in the pattern of movement, with progressively more difficult tasks being characterized by progressively less harmonic motion patterns. We conclude that in contrast to (biomechanical) constraints at the level of the effector, (informational) constraints at the level of the task affect the processes underlying movement organization. For the range of values studied, the effects of these two types of constraint can be considered to be independent.
机译:九名参与者在不同的实验条件下执行了相互精确的瞄准任务。由于工作空间的各向异性,改变运动方向(从0°到315°,以45°为步长)可以探索生物力学约束的影响,发现该约束会影响运动的持续时间,但不会影响运动的形状。运动模式。改变要达到的目标尺寸(W:2.5、1.25和0.625 cm,目标间恒定距离为10 cm)以及效应器空间之间的映射关系(手持设备的运动)的性质(线性或非线性)图形输入板上的手写笔)和任务空间(计算机屏幕上目标之间的指针移动)也导致移动持续时间的变化。然而,后一种类型的约束导致运动模式的系统变化,其中越来越困难的任务的特征是越来越少的谐波运动模式。我们得出的结论是,与效应器级别的(生物力学)约束相反,任务级别的(信息性)约束会影响运动组织的流程。对于所研究的值的范围,这两种约束的影响可以认为是独立的。

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