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Bimanual proprioception: are two hands better than one?

机译:双手本体感觉:两只手比一只手好吗?

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摘要

Information about the position of an object that is held in both hands, such as a golf club or a tennis racquet, is transmitted to the human central nervous system from peripheral sensors in both left and right arms. How does the brain combine these two sources of information? Using a robot to move participant's passive limbs, we performed psychophysical estimates of proprioceptive function for each limb independently and again when subjects grasped the robot handle with both arms. We compared empirical estimates of bimanual proprioception to several models from the sensory integration literature: some that propose a combination of signals from the left and right arms (such as a Bayesian maximum-likelihood estimate), and some that propose using unimanual signals alone. Our results are consistent with the hypothesis that the nervous system both has knowledge of and uses the limb with the best proprioceptive acuity for bimanual proprioception. Surprisingly, a Bayesian model that postulates optimal combination of sensory signals could not predict empirically observed bimanual acuity. These findings suggest that while the central nervous system seems to have information about the relative sensory acuity of each limb, it uses this information in a rather rudimentary fashion, essentially ignoring information from the less reliable limb.
机译:有关双手握住的物体(例如高尔夫球杆或网球拍)的位置的信息会从左右臂的外围传感器传输到人体中枢神经系统。大脑如何结合这两种信息来源?使用机器人移动参与者的被动四肢,我们分别对每个肢体进行了本体感觉功能的心理物理评估,并在受试者用双手抓住机器人手柄时再次进行了评估。我们将感官整合文献中的几种模型对双手本体感觉的经验估计值进行了比较:有些模型提出了左右臂信号的组合(例如贝叶斯最大似然估计),有些提出了仅使用单信号的模型。我们的结果与以下假设相符:神经系统既了解知识又使用具有最佳本体感受敏锐度的肢体进行双手本体感受。令人惊讶的是,假设感觉信号的最佳组合的贝叶斯模型无法预测凭经验观察到的双手敏锐度。这些发现表明,虽然中枢神经系统似乎掌握了有关每个肢体相对感觉敏锐度的信息,但它以一种相当简陋的方式使用了该信息,实质上忽略了来自不太可靠的肢体的信息。

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