首页> 外文会议>2011 4th International Conference on Biomedical Engineering and Informatics >Analysis of neural interaction during adaptation of reach-to-grasp task under perturbation with Bayesian networks
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Analysis of neural interaction during adaptation of reach-to-grasp task under perturbation with Bayesian networks

机译:贝叶斯网络扰动下的触手可及任务适应过程中的神经交互作用分析

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In this work, we took the analysis of neural interactions change in M1 of a monkey during the adaptation process for it to complete reach-to-grasp tasks with external perturbation across days. BN model was applied to model and evaluate neural interaction networks from recorded neural spike trains data of each set. Our results showed that for delay period across sets, interaction level of neural network tended to be higher during later stage of adaptation than during begin stage, which indicated the monkey performed more fully preparation through adaptation. In addition, for both delay period and peri-movement period, the neural interaction networks tended to change more stably from one set to the next as the monkey adapted to the perturbation experiment better.
机译:在这项工作中,我们分析了猴子在M1适应过程中神经相互作用的变化,以完成在几天之内都会受到外部干扰的抓握任务。应用BN模型从记录的每组神经峰值训练数据中建模和评估神经交互网络。我们的结果表明,对于各组之间的延迟期,在适应的后期阶段神经网络的交互水平倾向于比开始阶段更高,这表明猴子通过适应进行了更充分的准备。此外,对于延迟期和运动周期期,随着猴子更好地适应扰动实验,神经交互网络倾向于从一组稳定地变化到另一组。

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