Título: | SCOREDRIVENMODELS.JL: A JULIA PACKAGE FOR GENERALIZED AUTOREGRESSIVE SCORE MODELS | ||||||||||||
Autor: |
GUILHERME MEIRELLES BODIN DE MORAES |
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Colaborador(es): |
ALEXANDRE STREET DE AGUIAR - Orientador CRISTIANO AUGUSTO COELHO FERNANDES - Coorientador |
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Catalogação: | 03/FEV/2022 | Língua(s): | ENGLISH - UNITED STATES |
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Tipo: | TEXT | Subtipo: | THESIS | ||||||||||
Notas: |
[pt] Todos os dados constantes dos documentos são de inteira responsabilidade de seus autores. Os dados utilizados nas descrições dos documentos estão em conformidade com os sistemas da administração da PUC-Rio. [en] All data contained in the documents are the sole responsibility of the authors. The data used in the descriptions of the documents are in conformity with the systems of the administration of PUC-Rio. |
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Referência(s): |
[pt] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=57291&idi=1 [en] https://www.maxwell.vrac.puc-rio.br/projetosEspeciais/ETDs/consultas/conteudo.php?strSecao=resultado&nrSeq=57291&idi=2 |
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DOI: | https://doi.org/10.17771/PUCRio.acad.57291 | ||||||||||||
Resumo: | |||||||||||||
Score-driven models, also known as generalized autoregressive score (GAS)
models, represent a class of observation-driven time series models. They
possess desirable properties for time series modeling, such as the ability
to model different conditional distributions and to consider time-varying
parameters within a flexible framework. In this dissertation, we present
ScoreDrivenModels.jl, an open-source Julia package for modeling, forecasting, and simulating time series using the framework of score-driven models.
The package is flexible with respect to model definition, allowing the user to
specify the lag structure and which parameters are time-varying or constant.
It is also possible to consider several distributions, including Beta, Exponential, Gamma, Lognormal, Normal, Poisson, Student s t, and Weibull.
The provided interface is flexible, allowing interested users to implement
any desired distribution and parametrization.
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