Artigo em revista científica Q1
Wavelet-based detection of outliers in financial time series
Aurea Grané (Grané, A.); Aurea Grané (Grané, A.); Helena Veiga (Veiga, H.);
Título Revista
Computational Statistics and Data Analysis
Ano (publicação definitiva)
2010
Língua
Inglês
País
Países Baixos (Holanda)
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Abstract/Resumo
Outliers in financial data can lead to model parameter estimation biases, invalid inferences and poor volatility forecasts. Therefore, their detection and correction should be taken seriously when modeling financial data. The present paper focuses on these issues and proposes a general detection and correction method based on wavelets that can be applied to a large class of volatility models. The effectiveness of the new proposal is tested by an intensive Monte Carlo study for six well-known volatility models and compared to alternative proposals in the literature, before it is applied to three daily stock market indices. The Monte Carlo experiments show that the new method is both very effective in detecting isolated outliers and outlier patches and much more reliable than other alternatives, since it detects a significantly smaller number of false outliers. Correcting the data of outliers reduces the skewness and the excess kurtosis of the return series distributions and allows for more accurate return prediction intervals compared to those obtained when the existence of outliers is ignored.
Agradecimentos/Acknowledgements
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Palavras-chave
Outliers,Outlier patches,Prediction intervals,Volatility models,Wavelets
  • Matemáticas - Ciências Naturais
  • Ciências da Computação e da Informação - Ciências Naturais
Registos de financiamentos
Referência de financiamento Entidade Financiadora
MTM2009-13985-C02-01 Ministerio de Economía, Industria y Competitividad
SEJ2007-64500 Ministerio de Economía, Industria y Competitividad
ECO2009- 08100 Ministerio de Economía, Industria y Competitividad