Literature DB >> 25927013

Obtaining Well Calibrated Probabilities Using Bayesian Binning.

Mahdi Pakdaman Naeini1, Gregory F Cooper2, Milos Hauskrecht3.   

Abstract

Learning probabilistic predictive models that are well calibrated is critical for many prediction and decision-making tasks in artificial intelligence. In this paper we present a new non-parametric calibration method called Bayesian Binning into Quantiles (BBQ) which addresses key limitations of existing calibration methods. The method post processes the output of a binary classification algorithm; thus, it can be readily combined with many existing classification algorithms. The method is computationally tractable, and empirically accurate, as evidenced by the set of experiments reported here on both real and simulated datasets.

Entities:  

Year:  2015        PMID: 25927013      PMCID: PMC4410090     

Source DB:  PubMed          Journal:  Proc Conf AAAI Artif Intell        ISSN: 2159-5399


  1 in total

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  30 in total

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