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Driving the brain towards creativity and intelligence: A network control theory analysis

机译:驱动大脑实现创造力和智慧:网络控制理论分析

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摘要

High-level cognitive constructs, such as creativity and intelligence, entail complex and multiple processes, including cognitive control processes. Recent neurocognitive research on these constructs highlight the importance of dynamic interaction across neural network systems and the role of cognitive control processes in guiding such a dynamic interaction. How can we quantitatively examine the extent and ways in which cognitive control contributes to creativity anf intelligence? To address this question, we apply a computational network control theory (NCT) approach to structural brain imaging data acquired via diffusion tensor imaging in a large sample of participants, to examine how NCT relates to individual differences in distinct measures of creative ability and intelligence. Recent application of this theory at the neural level is built on a model of brain dynamics, which mathematically models patterns of inter-region activity propagated along the structure of an underlying network. The strength of this approach is its ability to characterize the potential role of each brain region in regulating whole-brain network function based on its anatomical fingerprint and a simplified model of node dynamics. We find that intelligence is related to the ability to “drive” the brain system into easy to reach neural states by the right inferior parietal lobe and lower integration abilities in the left retrosplenial cortex. We also find that creativity is related to the ability to “drive” the brain system into difficult to reach states by the right dorsolateral prefrontal cortex (inferior frontal junction) and higher integration abilities in sensorimotor areas. Furthermore, we found that different facets of creativity—fluency, flexibility, and originality—relate to generally similar but not identical network controllability processes. We relate our findings to general theories on intelligence and creativity.
机译:高层次的认知结构,例如创造力和智力,需要复杂和多重的过程,包括认知控制过程。对这些结构的最新神经认知研究突显了跨神经网络系统进行动态交互的重要性以及认知控制过程在指导这种动态交互中的作用。我们如何定量研究认知控制有助于创造力和智力的程度和方式?为了解决这个问题,我们将计算机网络控制理论(NCT)方法应用于在大量参与者中通过扩散张量成像获取的结构性大脑成像数据,以检查NCT如何与创造力和智力的不同度量中的个体差异相关。该理论在神经水平上的最新应用是建立在大脑动力学模型上的,该模型在数学上模拟了沿着底层网络结构传播的区域间活动的模式。这种方法的优势在于能够基于其解剖指纹和简化的节点动力学模型来表征每个大脑区域在调节全脑网络功能中的潜在作用。我们发现,智力与右下壁顶叶“驱动”大脑系统进入容易达到神经状态的能力以及左脾后皮质的整合能力低有关。我们还发现,创造力与通过正确的背外侧前额叶皮层(下额叶结)“驱动”大脑系统进入难以达到的状态的能力以及感觉运动区域中更高的整合能力有关。此外,我们发现创造性的不同方面(流畅性,灵活性和独创性)与通常相似但不完全相同的网络可控制性过程有关。我们将发现与智力和创造力的一般理论联系起来。

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