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October 9, 2025Journal of the Royal Statistical Society Series A (Statistics in Society)0 citationsOpen Access

Forecasting high-dimensional functional time series with dual-factor structures

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CTChen TangHSHan Lin ShangYYYanrong Yang

Key Points

  • The proposed dual-factor model enhances forecasting accuracy for high-dimensional functional time series by addressing multiple populations.
  • Results indicate more accurate predictions of mortality rates in Japan, with significant implications for life annuity pricing.
  • This method decomposes complex data into manageable components, revealing cross-sectional heterogeneity and temporal dynamics effectively.
  • The empirical analysis shows that tailored forecasting can lead to substantial financial advantages, enhancing life annuity strategies for varied populations.

Abstract

Abstract We propose a dual-factor model for high-dimensional functional time series (HDFTS) that considers multiple populations. The HDFTS is first decomposed into a collection of functional time series (FTS) in a lower dimension and a group of population-specific basis functions. The system of basis functions describes cross-sectional heterogeneity, while the reduced-dimension FTS retains most of the information common to multiple populations. The low-dimensional FTS is further decomposed into a product of common functional loadings and a matrix-valued time series that contains the most temporal dynamics embedded in the original HDFTS. The proposed general-form dual-factor structure is connected to several commonly used functional factor models. We demonstrate the finite-sample performances of the proposed method in recovering cross-sectional basis functions and extracting common features using simulated HDFTS. An empirical study shows that the proposed model produces more accurate point and interval forecasts for subnational age-specific mortality rates in Japan. The financial benefits associated with the improved mortality forecasts are translated into a life annuity pricing scheme.

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Cite This Study

Tang et al. (2025) studied this question.

synapsesocial.com/papers/68e70da790569dd607ee5d23https://doi.org/10.1093/jrsssa/qnaf144
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