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Retrospective model-based inference guides model-free credit assignment

机译:追溯基于模型的推理指导无模型信用分配

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摘要

An extensive reinforcement learning literature shows that organisms assign credit efficiently, even under conditions of state uncertainty. However, little is known about credit-assignment when state uncertainty is subsequently resolved. Here, we address this problem within the framework of an interaction between model-free (MF) and model-based (MB) control systems. We present and support experimentally a theory of MB retrospective-inference. Within this framework, a MB system resolves uncertainty that prevailed when actions were taken thus guiding an MF credit-assignment. Using a task in which there was initial uncertainty about the lotteries that were chosen, we found that when participants’ momentary uncertainty about which lottery had generated an outcome was resolved by provision of subsequent information, participants preferentially assigned credit within a MF system to the lottery they retrospectively inferred was responsible for this outcome. These findings extend our knowledge about the range of MB functions and the scope of system interactions.
机译:大量的强化学习文献表明,即使在国家不确定的情况下,生物也能有效地分配信用。但是,当状态不确定性随后得到解决时,关于信用分配的了解却很少。在这里,我们在无模型(MF)与基于模型(MB)的控制系统之间的交互框架内解决该问题。我们提出并实验性地支持MB追溯推理的理论。在此框架内,MB系统解决了采取行动时普遍存在的不确定性,从而指导了MF信贷分配。使用一项任务,其中所选择的彩票具有初始不确定性,我们发现,当参与者通过提供后续信息解决了有关哪个彩票产生了结果的暂时不确定性时,参与者便会在MF系统中优先分配彩票信用他们回顾性地认为是造成这一结果的原因。这些发现扩展了我们对MB功能范围和系统交互范围的了解。

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