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The index of prediction accuracy: an intuitive measure useful for evaluating risk prediction models
Michael W Kattan1, Thomas A Gerds2
11Department of Quantitative Health Sciences, Lerner Research Institute, Cleveland Clinic, 9500 Euclid Avenue/JJN3-01, Cleveland, OH 44195 USA.
Background:
Many measures of prediction accuracy have been developed. However, the most popular ones in typical medical outcome prediction settings require additional investigation of calibration.
Methods:
We show how rescaling the Brier score produces a measure that combines discrimination and calibration in one value and improves interpretability by adjusting for a benchmark model. We have called this measure the index of prediction accuracy (IPA). The IPA permits a common interpretation across binary, time to event, and competing risk outcomes. We illustrate this measure using example datasets.
Results:
The IPA is simple to compute, and example code is provided. The values of the IPA appear very interpretable.
Conclusions:
IPA should be a prominent measure reported in studies of medical prediction model performance. However, IPA is only a measure of average performance and, by default, does not measure the utility of a medical decision.
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