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  Evaluating Predictive Uncertainty Challenge

Quinonero Candela, J., Rasmussen, C., Sinz, F., Bousquet, O., & Schölkopf, B. (2006). Evaluating Predictive Uncertainty Challenge. Machine Learning Challenges: First PASCAL Machine Learning Challenges Workshop (MLCW 2005), 1-27.

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 Creators:
Quinonero Candela, J1, Author           
Rasmussen, CE1, Author           
Sinz, F2, Author           
Bousquet, O1, Author           
Schölkopf, B1, Author           
Candela, Quiñonero, Editor
J., Editor
Dagan, I., Editor
Magnini, B., Editor
d'Alché-Buc, F., Editor
Affiliations:
1Department Empirical Inference, Max Planck Institute for Biological Cybernetics, Max Planck Society, ou_1497795              
2Research Group Computational Vision and Neuroscience, Max Planck Institute for Biological Cybernetics, Max Planck Society, ou_1497805              

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 Abstract: This Chapter presents the PASCAL Evaluating Predictive Uncertainty Challenge, introduces the contributed Chapters by the participants who obtained outstanding results, and provides a discussion with some lessons to be learnt. The Challenge was set up to evaluate the ability of Machine Learning algorithms to provide good “probabilistic predictions”, rather than just the usual “point predictions” with no measure of uncertainty, in regression and classification problems. Parti-cipants had to compete on a number of regression and classification tasks, and were evaluated by both traditional losses that only take into account point predictions and losses we proposed that evaluate the quality of the probabilistic predictions.

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 Dates: 2006-04
 Publication Status: Issued
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Title: First PASCAL Machine Learning Challenges Workshop (MLCW 2005)
Place of Event: Southampton, United Kingdom
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Title: Machine Learning Challenges: First PASCAL Machine Learning Challenges Workshop (MLCW 2005)
Source Genre: Journal
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Publ. Info: Berlin, Germany : Springer
Pages: - Volume / Issue: - Sequence Number: - Start / End Page: 1 - 27 Identifier: -