Abstract
The chain ladder method is a simple and suggestive tool in claims reserving, and various attempts have been made aiming at its justification in a stochastic model. Remarkable progress has been achieved by Schnieper and Mack who considered models involving assumptions on conditional distributions. The present paper extends the model of Mack and proposes a basic model in a decision theoretic setting. The model allows to characterize optimality of the chain ladder factors as predictors of non-observable development factors and hence optimality of the chain ladder predictors of aggregate claims at the end of the first non-observable calendar year. We also present a model in which the chain ladder predictor of ultimate aggregate claims turns out to be unbiased.
Cite
CITATION STYLE
Schmidt, K. D., & Schnaus, A. (1996). An Extension of Mack’s Model for the Chain Ladder Method. ASTIN Bulletin, 26(2), 247–262. https://doi.org/10.2143/ast.26.2.563223
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