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Brain Systems for Probabilistic and Dynamic Prediction: Computational Specificity and Integration

机译:用于概率和动态预测的脑系统:计算特异性和集成度

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摘要

A computational approach to functional specialization suggests that brain systems can be characterized in terms of the types of computations they perform, rather than their sensory or behavioral domains. We contrasted the neural systems associated with two computationally distinct forms of predictive model: a reinforcement-learning model of the environment obtained through experience with discrete events, and continuous dynamic forward modeling. By manipulating the precision with which each type of prediction could be used, we caused participants to shift computational strategies within a single spatial prediction task. Hence (using fMRI) we showed that activity in two brain systems (typically associated with reward learning and motor control) could be dissociated in terms of the forms of computations that were performed there, even when both systems were used to make parallel predictions of the same event. A region in parietal cortex, which was sensitive to the divergence between the predictions of the models and anatomically connected to both computational networks, is proposed to mediate integration of the two predictive modes to produce a single behavioral output.
机译:一种针对功能专业化的计算方法表明,可以根据大脑系统执行的计算类型(而不是其感觉或行为域)来表征大脑系统。我们对比了与两种计算形式不同的预测模型相关的神经系统:通过离散事件的经验获得的环境的强化学习模型,以及连续的动态正向建模。通过操纵每种类型的预测可以使用的精度,我们使参与者在单个空间预测任务内转移了计算策略。因此,(使用fMRI)我们表明,即使在使用两个系统进行并行预测的同时,两个大脑系统(通常与奖励学习和运动控制相关)的活动也可以按照在那里执行的计算形式进行分解。同一事件。顶叶皮层中的一个区域,该区域对模型的预测之间的差异敏感并且在解剖上连接到两个计算网络,因此提出了一个区域来调节两个预测模式的集成,以产生单个行为输出。

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