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首页> 外文期刊>The Review of Economic Studies >Escape Dynamics in Learning Models
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Escape Dynamics in Learning Models

机译:学习模型中的逃避动态

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摘要

This article illustrates and characterizes how adaptive learning can lead to recurrent large fluctuations. Learning models have typically focused on the convergence of beliefs towards an equilibrium. However in stochastic environments, there may be rare but recurrent episodes where shocks cause beliefs to escape from the equilibrium, generating large movements in observed outcomes. I characterize the escape dynamics by drawing on the theory of large deviations, developing new results which make this theory directly applicable in a class of learning models. The likelihood, frequency, and most likely direction of escapes are all characterized by a deterministic control problem. I illustrate my results with two simple examples.
机译:本文说明并表征了自适应学习如何导致经常性大波动。 学习模型通常专注于对平衡的信念的融合。 然而,在随机环境中,可能存在罕见但经常性的剧集,其中冲击导致信仰逃离均衡,在观察到的结果中产生大的运动。 我通过绘制大偏差理论来表征逃生动态,开发新的结果,使这个理论直接适用于一类学习模型。 逃逸的可能性,频率和最可能的方向都是通过确定性控制问题的特征。 我用两个简单的例子说明了我的结果。

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