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Hierarchical Prediction Errors in Midbrain and Basal Forebrain during Sensory Learning

机译:感官学习过程中脑和基底前脑的分层预测误差

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In Bayesian brain theories, hierarchically related prediction errors (PEs) play a central role for predicting sensory inputs and inferring their underlying causes, e.g., the probabilistic structure of the environment and its volatility. Notably, PEs at different hierarchical levels may be encoded by different neuromodulatory transmitters. Here, we tested this possibility in computational fMRI studies of audio-visual learning. Using a hierarchical Bayesian model, we found that low-level PEs about visual stimulus outcome were reflected by widespread activity in visual and supramodal areas but also in the midbrain. In contrast, high-level PEs about stimulus probabilities were encoded by the basal forebrain. These findings were replicated in two groups of healthy volunteers. While our fMRI measures do not reveal the exact neuron types activated in midbrain and basal forebrain, they suggest a dichotomy between neuromodulatory systems, linking dopamine to low-level PEs about stimulus outcome and acetylcholine to more abstract PEs about stimulus probabilities.
机译:在贝叶斯脑理论中,与等级相关的预测错误(PE)在预测感觉输入并推断其潜在原因(例如环境的概率结构及其波动性)方面发挥着核心作用。值得注意的是,不同等级的PE可以由不同的神经调节发射器编码。在这里,我们在视听学习的计算功能磁共振成像研究中测试了这种可能性。使用分层贝叶斯模型,我们发现有关视觉刺激结果的低水平体育活动被视觉和超模态区域以及中脑的广泛活动所反映。相反,有关刺激概率的高水平PE是由基底前脑编码的。这些发现在两组健康志愿者中重复。尽管我们的功能磁共振成像(MRI)措施无法揭示在中脑和基底前脑中激活的确切神经元类型,但它们暗示了神经调节系统之间的二分法,将多巴胺与关于刺激结果的低水平PE和乙酰胆碱与关于刺激可能性的更抽象的PE联系起来。

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