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首页> 外文期刊>Journal of Neurophysiology >Greater benefits of multisensory integration during complex sensorimotor transformations
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Greater benefits of multisensory integration during complex sensorimotor transformations

机译:在复杂的感觉运动转换过程中,多传感器集成的更大好处

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摘要

Multisensory integration enables rapid and accurate behavior. To orient in space, sensory information registered initially in different reference frames has to be integrated with the current postural information to produce an appropriate motor response. In some postures, multisensory integration requires convergence of sensory evidence across hemispheres, which would presumably lessen or hinder integration. Here, we examined orienting gaze shifts in humans to visual, tactile, or visuotactile stimuli when the hands were either in a default uncrossed posture or a crossed posture requiring convergence across hemispheres. Surprisingly, we observed the greatest benefits of multisensory integration in the crossed posture, as indexed by reaction time (RT) decreases. Moreover, such shortening of RTs to multisensory stimuli did not come at the cost of increased error propensity. To explain these results, we propose that two accepted principles of multisensory integration, the spatial principle and inverse effectiveness, dynamically interact to aid the rapid and accurate resolution of complex sensorimotor transformations. First, early mutual inhibition of initial visual and tactile responses registered in different hemispheres reduces error propensity. Second, inverse effectiveness in the integration of the weakened visual response with the remapped tactile representation expedites the generation of the correct motor response. Our results imply that the concept of inverse effectiveness, which is usually associated with external stimulus properties, might extend to internal spatial representations that are more complex given certain body postures.
机译:多传感器集成可实现快速准确的行为。为了在空间上定向,必须将最初记录在不同参考系中的感官信息与当前姿势信息集成在一起,以产生适当的运动响应。在某些姿势下,多感官整合需要跨半球融合感官证据,这可能会减少或阻碍整合。在这里,我们研究了当手处于默认的非交叉姿势或需要跨半球会聚的交叉姿势时,人类将目光转向视觉,触觉或触觉刺激。出乎意料的是,我们观察到交叉姿势中的多感官整合的最大好处是反应时间(RT)减少。此外,RTs缩短到多感觉刺激并不是以增加错误倾向为代价的。为了解释这些结果,我们提出了多感官整合的两个公认原理,即空间原理和逆有效性,可以动态地相互作用,以帮助快速而准确地解决复杂的感觉运动转换。首先,早期相互抑制在不同半球中记录的初始视觉和触觉反应会降低错误倾向。第二,将弱化的视觉反应与重新映射的触觉表示相结合的逆向效率加快了正确运动反应的产生。我们的结果表明,通常与外部刺激特性相关的逆向有效性概念可能会扩展到内部空间表示,在某些身体姿势下,内部空间表示更为复杂。

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