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Optimal policy for attention-modulated decisions explains human fixation behavior

机译:关注调制决策的最佳政策解释了人类的固定行为

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摘要

Traditional accumulation-to-bound decision-making models assume that all choice options are processed with equal attention. In real life decisions, however, humans alternate their visual fixation between individual items to efficiently gather relevant information (Yang et al., 2016). These fixations also causally affect one’s choices, biasing them toward the longer-fixated item (Krajbich et al., 2010). We derive a normative decision-making model in which attention enhances the reliability of information, consistent with neurophysiological findings (Cohen and Maunsell, 2009). Furthermore, our model actively controls fixation changes to optimize information gathering. We show that the optimal model reproduces fixation-related choice biases seen in humans and provides a Bayesian computational rationale for this phenomenon. This insight led to additional predictions that we could confirm in human data. Finally, by varying the relative cognitive advantage conferred by attention, we show that decision performance is benefited by a balanced spread of resources between the attended and unattended items.
机译:传统的累积与束缚决策模型假设所有选择选项都是相同的关注处理。然而,在现实生活中,人类在各个项目之间交替他们的视觉固定,以有效地收集相关信息(Yang等,2016)。这些固定还会因导致影响一个人的选择,将它们偏向于更长固定的物品(Krajbich等,2010)。我们得出了一种规范决策模型,其中注意力提高了信息的可靠性,与神经生理学发现一致(Cohen和Maunsell,2009)。此外,我们的模型积极控制修复变化以优化信息收集。我们表明,最佳模型再现了人类中看到的固定相关选择偏差,为这种现象提供了贝叶斯计算理由。这种洞察力导致了我们可以在人类数据中确认的额外预测。最后,通过改变所关注赋予的相对认知优势,我们表明,决策绩效受到在出席和无人看管的物品之间的资源均衡传播。

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