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Combining multiple probability predictions using a simple logit model

delete2014-04-01
delete83
PRE
AI
V
Ville Satopää *
J
Jonathan Baron
D
Dean P. Foster
B
Barbara A. Mellers
P
Philip E. Tetlock
L
Lyle Ungar
DOI:10.1016/j.ijforecast.2013.09.009delete
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摘要

摘要

En 中文
This paper begins by presenting a simple model of the way in which experts estimate probabilities. The model is then used to construct a likelihood-based aggregation formula for combining multiple probability forecasts. The resulting aggregator has a simple analytical form that depends on a single, easily-interpretable parameter. This makes it computationally simple, attractive for further development, and robust against overrating. Based on a large-scale dataset in which over 1300 experts tried to predict 69 geopolitical events, our aggregator is found to be superior to several widely-used aggregation algorithms. (C) 2013 International Institute of Forecasters. Published by Elsevier B.V. All rights reserved.
Keyword:
Combining forecasts
Error correction models
Expert forecasts
Logit-normal models
Multinomial events
Probability forecasting
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期刊

International Journal of Forecasting 封面图
International Journal of Forecasting
IF:
7.1
论文数:
3.1K
被引数:
9.9K

机构

U
university of pennsylvania
学者数:
9.2W
论文数: 7.8W
被引数: 153
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