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A New Approach to the Economic Analysis of Nonstationary Time Series and the Business Cycle

Econometrica · 1989 · Vol. 57(2) · pp. 357–357

Abstract

This paper proposes a very tractable approach to modeling changes in regime. The parameters of an autoregression are viewed as the outcome of a discrete-state Markov process. For example, the mean growth rate of a nonstationary series may be subject to occasional, discrete shifts. The econometrician is presumed not to observe these shifts directly, but instead must draw probabilistic inference about whether and when they may have occurred based on the observed behavior of the series. The paper presents an algorithm for drawing such probabilistic inference in the form of a nonlinear iterative filter

Monetary Policy and Economic ImpactComplex Systems and Time Series AnalysisEconomic theories and modelsBusiness cycleSeries (stratigraphy)EconomicsTime seriesEconometricsMacroeconomicsMathematical economicsMathematicsStatisticsGeology
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