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The relative contributions of private information sharing and public information releases to information aggregation

机译:私人信息共享和公共信息发布对信息聚合的相对贡献

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摘要

We calculate learning rates when agents are informed through public and private observation of other agents' actions. We characterize the evolution of the distribution of posterior beliefs. If the private learning channel is present, convergence of the distribution of beliefs to the perfect-information limit is exponential at a rate equal to the sum of the mean arrival rate of public information and the mean rate at which individual agents are randomly matched with other agents. If, however, there is no private information sharing, then convergence is exponential at a rate strictly lower than the mean arrival rate of public information.
机译:当通过公共和私人观察其他代理的行为来通知代理时,我们计算学习率。我们刻画后验信念分布的演变。如果存在私有学习渠道,则信念分布到完美信息极限的收敛速度将成指数增长,其速率等于公共信息的平均到达率与各个代理与其他个体随机匹配的平均率之和代理商。但是,如果没有私人信息共享,那么收敛将以严格低于公共信息的平均到达率的速度呈指数级。

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