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Decompositions of the mean continuous ranked probability score

Arnold, Sebastian ; Walz, Eva-Maria 1; Ziegel, Johanna; Gneiting, Tilmann ORCID iD icon 2
1 Karlsruher Institut für Technologie (KIT)
2 Institut für Stochastik (STOCH), Karlsruher Institut für Technologie (KIT)

Abstract:

The continuous ranked probability score (crps) is the most commonly used scoring rule in the evaluation of probabilistic forecasts for real-valued outcomes. To assess and rank forecasting methods, researchers compute the mean crps over given sets of forecast situations, based on the respective predictive distributions and outcomes. We propose a new, isotonicity-based decomposition of the mean crps into interpretable components that quantify miscalibration (MCB), discrimination ability (DSC), and uncertainty (UNC), respectively. In a detailed theoretical analysis, we compare the new approach to empirical decompositions proposed earlier, generalize to population versions, analyse their properties and relationships, and relate to a hierarchy of notions of calibration. The isotonicity-based decomposition guarantees the nonnegativity of the components and quantifies calibration in a sense that is stronger than for other types of decompositions, subject to the nondegeneracy of empirical decompositions. We illustrate the usage of the isotonicity-based decomposition and miscalibration–discrimination (MCB–DSC) plots in case studies from weather prediction and machine learning.

Zugehörige Institution(en) am KIT Institut für Stochastik (STOCH)
Publikationstyp Zeitschriftenaufsatz
Publikationsjahr 2024
Sprache Englisch
Identifikator ISSN: 1935-7524
KITopen-ID: 1000177869
Erschienen in Electronic Journal of Statistics
Verlag Institute of Mathematical Statistics (IMS)
Band 18
Heft 2
Seiten 4992-5044
Vorab online veröffentlicht am 28.11.2024
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Verlagsausgabe §
DOI: 10.5445/IR/1000177869
Veröffentlicht am 09.01.2025
Seitenaufrufe: 33
seit 09.01.2025
Downloads: 13
seit 10.01.2025
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