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抓握动作中运输和抓握组件之间的协调。

Coordination between the transport and the grasp components during prehension movements.

作者信息

Chieffi S, Gentilucci M

机构信息

Instituto di Fisiologia Umana, Università di Parma, Italy.

出版信息

Exp Brain Res. 1993;94(3):471-7. doi: 10.1007/BF00230205.

DOI:10.1007/BF00230205
PMID:8359261
Abstract

In this study, the possible influence of the transport on the grasp component of prehension movements was investigated. The first phase of the transport (acceleration phase) and of the grasp (finger aperture phase) kinematics were studied under conditions of visual and non-visual object presentation (prehension experiment). In the non-visual condition, object size was estimated by haptics and object position was estimated by proprioception. Eight subjects were required to reach and grasp three objects of different size located at two distances. An additional experiment (matching experiment) was carried out to control the scaling of object size in two conditions. The results showed that in the matching experiment size estimation for large objects was similar in the two conditions, whereas small stimuli were underestimated in the haptic condition. In the prehension experiment, maximal finger aperture and velocity of finger aperture were greater in the non-visual than in the visual condition, and the difference was greater for small than for large stimuli. Moreover, in both conditions, finger opening was larger for prehension movements directed to the far than to the near objects, but only for smaller stimuli. Hand trajectory variability increased in the non-visual condition and with the distance, whereas finger opening variability was only affected by the non-visual condition. For smaller stimuli, increased finger opening with distance was positively correlated with the increase in wrist variability in the visual condition, but not in the non-visual condition. Furthermore, increased finger opening between visual and non-visual conditions was correlated with the increase in wrist variability, for smaller objects at the near object location.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

在本研究中,调查了运输对抓握动作抓握部分的可能影响。在视觉和非视觉物体呈现条件下(抓握实验),研究了运输的第一阶段(加速阶段)和抓握(手指开口阶段)的运动学。在非视觉条件下,通过触觉估计物体大小,通过本体感觉估计物体位置。要求8名受试者伸手去抓握位于两个距离处的三个不同大小的物体。还进行了一项额外实验(匹配实验),以控制两种条件下物体大小的缩放。结果表明,在匹配实验中,大物体的大小估计在两种条件下相似,而小刺激在触觉条件下被低估。在抓握实验中,非视觉条件下的最大手指开口和手指开口速度大于视觉条件,小刺激的差异大于大刺激。此外,在两种条件下,伸向远处物体的抓握动作的手指张开比伸向近处物体的更大,但仅适用于较小的刺激。非视觉条件下和随着距离增加,手部轨迹变异性增加,而手指张开变异性仅受非视觉条件影响。对于较小的刺激,在视觉条件下,手指张开随距离增加与手腕变异性增加呈正相关,但在非视觉条件下并非如此。此外,对于近处物体位置的较小物体,视觉和非视觉条件之间手指张开的增加与手腕变异性的增加相关。(摘要截短至250字)

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