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Improving the reliability of model-based decision-making estimates in the two-stage decision task with reaction-times and drift-diffusion modeling

机译:通过反应时间和漂移扩散建模提高两阶段决策任务中基于模型的决策估计的可靠性

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摘要

A well-established notion in cognitive neuroscience proposes that multiple brain systems contribute to choice behaviour. These include: (1) a model-free system that uses values cached from the outcome history of alternative actions, and (2) a model-based system that considers action outcomes and the transition structure of the environment. The widespread use of this distinction, across a range of applications, renders it important to index their distinct influences with high reliability. Here we consider the two-stage task, widely considered as a gold standard measure for the contribution of model-based and model-free systems to human choice. We tested the internal/temporal stability of measures from this task, including those estimated via an established computational model, as well as an extended model using drift-diffusion. Drift-diffusion modeling suggested that both choice in the first stage, and RTs in the second stage, are directly affected by a model-based/free trade-off parameter. Both parameter recovery and the stability of model-based estimates were poor but improved substantially when both choice and RT were used (compared to choice only), and when more trials (than conventionally used in research practice) were included in our analysis. The findings have implications for interpretation of past and future studies based on the use of the two-stage task, as well as for characterising the contribution of model-based processes to choice behaviour.
机译:公认的认知神经科学概念提出,多个大脑系统有助于选择行为。其中包括:(1)使用从替代行动的结果历史记录中缓存的值的无模型系统,以及(2)考虑行动结果和环境过渡结构的基于模型的系统。这种区别在各种应用程序中的广泛使用使得以高可靠性索引它们的不同影响非常重要。在这里,我们考虑两阶段任务,这被广泛认为是基于模型和无模型的系统对人类选择的贡献的金标准。我们测试了此任务的度量的内部/时间稳定性,包括通过已建立的计算模型估算的度量以及使用漂移扩散的扩展模型。漂移扩散模型表明,第一阶段的选择和第二阶段的RT都直接受到基于模型/自由权衡参数的影响。参数恢复和基于模型的估计的稳定性均较差,但当同时使用选择和RT时(仅与选择相比),并且在我们的分析中包括了更多的试验(比常规用于研究实践)时,参数恢复和稳定性都得到了显着改善。这些发现对于基于两阶段任务的使用对过去和未来研究的解释,以及对基于模型的过程对选择行为的贡献进行表征的启示。

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