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Tests for Structural Changes in Time Series of Counts
Authors:Šárka Hudecová  Marie Hušková  Simos G. Meintanis
Affiliation:1. Department of Probability and Mathematical StatisticsCharles University;2. Department of Economics, National and Kapodistrian University of Athens (on sabbatical leave) Unit for Business Mathematics and InformaticsNorth‐West University
Abstract:We propose methods for detecting structural changes in time series with discrete‐valued observations. The detector statistics come in familiar L2‐type formulations incorporating the empirical probability generating function. Special emphasis is given to the popular models of integer autoregression and Poisson autoregression. For both models, we study mainly structural changes due to a change in distribution, but we also comment for the classical problem of parameter change. The asymptotic properties of the proposed test statistics are studied under the null hypothesis as well as under alternatives. A Monte Carlo power study on bootstrap versions of the new methods is also included along with a real data example.
Keywords:change‐point test  empirical probability generating function  integer autoregression model  Poisson autoregression
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