Aggregating Point Estimates: A Flexible Modeling Approach
Robert T. Clemen, Robert L. Winkler
Management Science
- 주제전문가 확률 판단 · 의사결정분석
In many decision situations information is available from a number of different sources. Aggregating the diverse bits of information is an important aspect of the decision-making process but entails special statistical modeling problems in characterizing the information. Prior research in this area has relied primarily on the use of historical data as a basis for modeling the information sources. We develop a Bayesian framework that a decision maker can use to encode subjective knowledge about the information sources in order to aggregate point estimates of an unknown quantity of interest. This framework features a highly flexible environment for modeling the probabilistic nature and interrelationships of the information sources and requires straightforward and intuitive subjective judgments using proven decision-analysis assessment techniques. Analysis of the constructed model produces a posterior distribution for the quantity of interest. An example based on health risks due to ozone exposure demonstrates the technique.
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- 저널Management Science · 39(4) · 501–515
- 토픽Forecasting Techniques and Applications · Management Science and Operations Research
- DOI10.1287/mnsc.39.4.501
- 저자Robert T. Clemen, Robert L. Winkler