Optimal sample sizes and statistical decision rules
成果类型:
Article
署名作者:
Patil, Sanket; Salant, Yuval
署名单位:
Indian Institute of Management (IIM System); Indian Institute of Management Bangalore; Northwestern University
刊物名称:
THEORETICAL ECONOMICS
ISSN/ISSBN:
1933-6837
DOI:
10.3982/TE4840
发表日期:
2024-05-01
页码:
583-604
关键词:
Statistical inference
statistical decision rule
sample size
persuasion
C90
D81
D83
摘要:
A statistical decision rule is a mapping from data to actions induced by statistical inference on the data. We characterize these rules for data that are chosen strategically in persuasion environments. A designer wishes to persuade a decision maker (DM) to take a particular action and decides how many Bernoulli experiments about a parameter of interest the DM can obtain. After obtaining these data and estimating the parameter value, the DM chooses to take the action if the estimated value exceeds some threshold. We establish that as the threshold changes, the resulting statistical decision rules in many environments are either simple majority or reverse unanimity.
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