A generic nomogram for multinomial prediction models: theory and guidance for construction

Publication date

2017

Authors

van Smeden, MaartenORCID 0000-0002-5529-1541
de Groot, JAHISNI 0000000394592678
Nikolakopoulos, S
Bertens, Loes C MISNI 0000000419558936
Moons, Karel G MISNI 0000000390720943
Reitsma, Johannes J BISNI 0000000389855461

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Abstract

Background The use of multinomial logistic regression models is advocated for modeling the associations of covariates with three or more mutually exclusive outcome categories. As compared to a binary logistic regression analysis, the simultaneous modeling of multiple outcome categories using a multinomial model often better resembles the clinical setting, where a physician typically must distinguish between more than two possible diagnoses or outcome events for an individual patient (e.g., the differential diagnosis). A disadvantage of the multinomial logistic model is that the interpretation of its results is often complex. In particular, the calculation of predicted probabilities for the various outcomes requires a series of careful calculations. Nomograms are widely used in studies reporting binary logistic regression models to facilitate the interpretation of the results and allow the calculation of the predicted probability for individuals. Methods and results In this paper we outline an approach for deriving a generic nomogram for multinomial logistic regression models and an accompanying scoring chart that can further simplify the calculation of predicted multinomial probabilities. We illustrate the use of the nomogram and scoring chart and their interpretation using a clinical example. Conclusions The generic multinomial nomogram and scoring chart can be used irrespective of the number of outcome categories that are present.

Keywords

Prediction, Nomogram, Graphical presentation, Multinomial outcomes, Logistic model, Scoring chart

Citation

van Smeden, M, de Groot, JAH, Nikolakopoulos, S, Bertens, LCM, Moons, KGM & Reitsma, JB 2017, 'A generic nomogram for multinomial prediction models : theory and guidance for construction', Diagnostic and Prognostic Research, vol. 1, no. 8, 214. https://doi.org/10.1186/s41512-017-0010-5