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Predicting human cooperation in the Prisoner's Dilemma using case-based decision theory

机译:基于案例的决策理论在囚徒困境中预测人类合作

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In this paper, we show that Case-based decision theory, proposed by Gilboa and Schmeidler (Q J Econ 110(3): 605-639, 1995), can explain the aggregate dynamics of cooperation in the repeated Prisoner's Dilemma, as observed in the experiments performed by Camera and Casari (Am Econ Rev 99: 979-1005, 2009). Moreover, we find CBDT provides a better fit to the dynamics of cooperation than does the existing Probit model, which is the first time such a result has been found. We also find that humans aspire to a payoff above the mutual defection outcome but below the mutual cooperation outcome, which suggests they hope, but are not confident, that cooperation can be achieved. Finally, our best-fitting parameters suggest that circumstances with more details are easier to recall. We make a prediction for future experiments: if the repeated PD were run for more periods, then we would be begin to see an increase in cooperation, most dramatically in the second treatment, where history is observed but identities are not. This is the first application of Case-based decision theory to a strategic context and the first empirical test of CBDT in such a context. It is also the first application of bootstrapped standard errors to an agent-based model.
机译:在本文中,我们证明了Gilboa和Schmeidler(QJ Econ 110(3):605-639,1995)提出的基于案例的决策理论可以解释在重复的囚徒困境中合作的总体动力,正如在Camera and Casari(Am Econ Rev 99:979-1005,2009)进行的实验。此外,我们发现CBDT比现有的Probit模型更适合于合作的动态,这是首次发现这种结果。我们还发现,人们渴望获得高于相互背叛结果但低于相互合作结果的回报,这表明他们希望但不自信能够实现合作。最后,我们最适合的参数表明具有更多细节的情况更容易回忆。我们对未来的实验做出了预测:如果重复的PD进行了更长的时间,那么我们将开始看到合作的增加,在第二次治疗中最显着,观察到历史但没有身份。这是基于案例的决策理论在战略环境中的首次应用,也是这种情况下CBDT的首次实证检验。这也是自举标准错误在基于代理的模型中的首次应用。

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