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A theoretical analysis of the reward rate optimality of collapsing decision criteria

机译:折叠决策标准奖励率最优性的理论分析

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A standard assumption of most sequential sampling models is that decision-makers rely on a decision criterion that remains constant throughout the decision process. However, several authors have recently suggested that, in order to maximize reward rates in dynamic environments, decision-makers need to rely on a decision criterion that changes over the course of the decision process. We used dynamic programming and simulation methods to quantify the reward rates obtained by constant and dynamic decision criteria in different environments. We further investigated what influence a decision-maker's uncertainty about the stochastic structure of the environment has on reward rates. Our results show that in most dynamic environments, both types of decision criteria yield similar reward rates, across different levels of uncertainty. This suggests that a static decision criterion might provide a robust default setting.
机译:最多顺序采样模型的标准假设是决策者依赖于在整个决策过程中保持不变的判定标准。 然而,若干作者最近建议,为了最大化动态环境中的奖励率,决策者需要依赖于决策过程过程中改变的决策标准。 我们使用了动态编程和仿真方法来量化不同环境中常量和动态决策标准所获得的奖励率。 我们进一步调查了决策者对环境随机结构的不确定性对奖励率的影响。 我们的结果表明,在大多数动态环境中,两种类型的决策标准都会产生类似的奖励率,跨越不同程度的不确定性。 这表明静态判定标准可能提供强大的默认设置。

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