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Tamping Ramping: Algorithmic Implementational and Computational Explanations of Phasic Dopamine Signals in the Accumbens

机译:夯实夯实:累积中的多巴胺信号的算法实现和计算解释

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摘要

Substantial evidence suggests that the phasic activity of dopamine neurons represents reinforcement learning’s temporal difference prediction error. However, recent reports of ramp-like increases in dopamine concentration in the striatum when animals are about to act, or are about to reach rewards, appear to pose a challenge to established thinking. This is because the implied activity is persistently predictable by preceding stimuli, and so cannot arise as this sort of prediction error. Here, we explore three possible accounts of such ramping signals: (a) the resolution of uncertainty about the timing of action; (b) the direct influence of dopamine over mechanisms associated with making choices; and (c) a new model of discounted vigour. Collectively, these suggest that dopamine ramps may be explained, with only minor disturbance, by standard theoretical ideas, though urgent questions remain regarding their proximal cause. We suggest experimental approaches to disentangling which of the proposed mechanisms are responsible for dopamine ramps.
机译:大量证据表明,多巴胺神经元的相活动表示强化学习的时间差异预测误差。但是,最近有报道说,当动物将要行动或将要获得报酬时,纹状体中多巴胺浓度会逐渐增加,这似乎对既定的思维构成了挑战。这是因为隐含的活动是由先前的刺激持久地可预测的,因此不会出现这种预测错误。在这里,我们探讨了这种斜坡信号的三种可能的解释:(a)解决动作时间不确定性的方法; (b)多巴胺对与作出选择有关的机制的直接影响; (c)折扣优惠的新模式。总体而言,这些结果表明,尽管存在关于其近端原因的紧迫问题,但可以通过标准的理论思路来解释多巴胺斜率,而仅需很小的干扰。我们建议用实验方法来解开所提出的机制中哪些与多巴胺梯度有关。

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