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Zero Variance and Hamiltonian Monte Carlo Methods in GARCH Models
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Abstract
In this paper, we develop Bayesian Hamiltonian Monte Carlo methods for inference in asymmetric GARCH models under different distributions for the error term. We implemented Zero-variance and Hamiltonian Monte Carlo schemes for parameter estimation to try and reduce the standard errors of the estimates thus obtaing more efficient results at the price of a small extra computational cost.
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- DOI
- 10.48550/arxiv.1710.07693
- OpenAlex
- W2765814531
- Document type
- preprint
- Language
- EN
- Source
- arXiv (Cornell University)
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