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This work deals with multivariate stochastic volatility models, which account for a time-varying variance-covariance structure of the observable variables. We focus on a special class of models recently proposed in the literature and assume that the covariance matrix is a latent variable which...
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This paper provides the theoretical and operational framework for estimating past values of relevant time series starting from a limited information set. We consider a general approach exploring the relevant problems and the possible solutions evidencing that linear models could be the preferred...
Persistent link: https://www.econbiz.de/10015316563
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This paper provides the theoretical and operational framework for estimating past values of relevant time series starting from a (limited) information set. We consider a general approach that includes as special cases time series aggregation and temporal and/or spatial disaggregation problems....
Persistent link: https://www.econbiz.de/10014053993
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Using a Bayesian framework this paper provides a multivariate combination approach to prediction based on a distributional state space representation of predictive densities from alternative models. In the proposed approach the model set can be incomplete. Several multivariate time-varying...
Persistent link: https://www.econbiz.de/10010325748