Publication | Open Access
Collective reserving using individual claims data
21
Citations
29
References
2021
Year
EngineeringMachine LearningData AggregationComputer AnalysisModeling ArchitectureData ScienceData MiningManagementData IntegrationData ManagementMechanism DesignStatisticsQuantitative ManagementComputational Learning TheoryMachine Learning ModelPredictive AnalyticsKnowledge DiscoveryFair Resource AllocationData PrivacyComputer ScienceFair DivisionComputational ScienceIndividual Claims DataClaims ReservesData AnalyticsCollective ReservingData Modeling
The aim of this paper is to operationalize claims reserving based on individual claims data. We design a modeling architecture that is based on six different neural networks. Each network is a separate module that serves a certain modeling purpose. We apply our architecture to individual claims data and predict their settlement processes on a monthly time grid. A proof of concept is provided by benchmarking the resulting claims reserves with the ones received from the classical chain-ladder method which uses much coarser (aggregated) data.
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