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Uncertainty and Learning

机译:不确定性和学习

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摘要

It is a commonplace in statistics that uncertainty about parameters drives learning. Indeed one of the most influential models of behavioural learning has uncertainty at its heart. However, many popular theoretical models of learning focus exclusively on error, and ignore uncertainty. Here we review the links between learning and uncertainty from three perspectives: statistical theories such as the Kalman filter, psychological models in which differential attention is paid to stimuli with an effect on the speed of learning associated with those stimuli, and neurobiological data on the influence of the neuromodulators acetylcholine and norepinephrine on learning and inference.
机译:统计数据中的普遍现象是参数的不确定性会驱动学习。确实,最有影响力的行为学习模型之一具有不确定性。但是,许多流行的理论学习模型仅专注于错误,而忽略不确定性。在这里,我们从三个角度回顾了学习与不确定性之间的联系:统计理论(例如卡尔曼滤波器),心理学模型(其中对刺激有不同的关注,从而影响与这些刺激相关的学习速度)以及神经生物学数据对影响的影响调节剂乙酰胆碱和去甲肾上腺素对学习和推理的影响。

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