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The physics of optimal decision making: A formal analysis of models of performance in two-alternative forced-choice tasks

机译:最佳决策的物理学:对两种替代性强制选择任务的绩效模型的形式分析

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In this article, the authors consider optimal decision making in two-alternative forced-choice (TAFC) tasks. They begin by analyzing 6 models of TAFC decision making and show that all but one can be reduced to the drift diffusion model, implementing the statistically optimal algorithm (most accurate for a given speed or fastest for a given accuracy). They prove further that there is always an optimal trade-off between speed and accuracy that maximizes various reward functions, including reward rate (percentage of correct responses per unit time), as well as several other objective functions, including ones weighted for accuracy. They use these findings to address empirical data and make novel predictions about performance under optimality.
机译:在本文中,作者考虑了两种选择的强制选择(TAFC)任务中的最佳决策。他们首先分析了6种TAFC决策模型,并表明除了一个模型外,其他所有模型都可以简化为漂移扩散模型,从而实现了统计上最优的算法(对于给定速度最精确,对于给定精度最快)。他们进一步证明,速度和准确性之间始终存在最佳平衡,可以最大化各种奖励功能,包括奖励率(每单位时间正确响应的百分比)以及其他一些目标功能,包括为准确性加权的功能。他们使用这些发现来处理经验数据,并对最佳状态下的性能做出新颖的预测。

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