2012/12/29 by Joong Bum Rhim, Rhim, Joong Bum, Vivek K Goyal +1
Computer Science · Decision Sciences · #Auction Theory and Applications #Distributed Sensor Networks and Detection Algorithms #FOS: Computer and information sciences #Game Theory and Applications #Information Theory (cs.IT)
paper · doi:10.48550/arxiv.1212.6592
openalex publication_date 2012/12/29 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28
We show that it can be suboptimal for Bayesian decision-making agents employing social learning to use correct prior probabilities as their initial beliefs. We consider sequential Bayesian binary hypothesis testing where each individual agent makes a binary decision based on an initial belief, a private signal, and the decisions of all earlier-acting agents---with the actions of precedent agents causing updates of the initial belief. Each agent acts to minimize Bayes risk, with all agents sharing the same Bayes costs for Type I (false alarm) and Type II (missed detection) errors. The effect of the set of initial beliefs on the decision-making performance of the last agent is studied. The last agent makes the best decision when the initial beliefs are inaccurate. When the private signals are described by Gaussian likelihoods, the optimal initial beliefs are not haphazard but rather follow a systematic pattern: the earlier-acting agents should act as if the prior probability is larger than it is in reality when the true prior probability is small, and vice versa. We interpret this as being open minded toward the unlikely hypothesis. The early-acting agents face a trade-off between making a correct decision and being maximally informative to the later-acting agents.