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Striatal Volume Predicts Level of Video Game Skill Acquisition

机译:纹状体体积预测视频游戏技能习得水平

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摘要

Video game skills transfer to other tasks, but individual differences in performance and in learning and transfer rates make it difficult to identify the source of transfer benefits. We asked whether variability in initial acquisition and of improvement in performance on a demanding video game, the Space Fortress game, could be predicted by variations in the pretraining volume of either of 2 key brain regions implicated in learning and memory: the striatum, implicated in procedural learning and cognitive flexibility, and the hippocampus, implicated in declarative memory. We found that hippocampal volumes did not predict learning improvement but that striatal volumes did. Moreover, for the striatum, the volumes of the dorsal striatum predicted improvement in performance but the volumes of the ventral striatum did not. Both ventral and dorsal striatal volumes predicted early acquisition rates. Furthermore, this early-stage correlation between striatal volumes and learning held regardless of the cognitive flexibility demands of the game versions, whereas the predictive power of the dorsal striatal volumes held selectively for performance improvements in a game version emphasizing cognitive flexibility. These findings suggest a neuroanatomical basis for the superiority of training strategies that promote cognitive flexibility and transfer to untrained tasks.
机译:视频游戏技能转移到其他任务,但是性能,学习和转移率方面的个体差异使得很难确定转移收益的来源。我们问是否可以通过牵涉学习和记忆的两个关键大脑区域之一的纹状体的预训练量的变化来预测初始获取的可变性以及要求苛刻的视频游戏太空堡垒游戏的性能改善是否可以预测:程序学习和认知的灵活性,以及​​海马,与声明性记忆有关。我们发现海马体积不能预测学习的改善,但纹状体体积可以。而且,对于纹状体,背侧纹状体的体积预示着性能的改善,但腹侧纹状体的体积却没有。腹侧和背侧纹状体体积均预测早期获取率。此外,无论游戏版本对认知灵活性的要求如何,纹状体数量和学习之间的这种早期关联都会保持不变,而背侧纹状体体积的预测能力则有选择地保持着游戏版本中性能的增强,强调了认知灵活性。这些发现提示了神经解剖学基础上的训练策略的优越性,该策略可促进认知灵活性并转移至未经训练的任务。

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