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A multivariate Kernel approach to forecasting the variance covariance of stock market returns
by
O'Neill, Robert
, Becker, Ralf
, Clements, Adam
in
Econometrics
/ Forecasting
/ Forecasting techniques
/ kernel density estimation
/ Macroeconomics
/ Multivariate analysis
/ Rates of return
/ similarity forecasting
/ volatility forecasting
2018
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A multivariate Kernel approach to forecasting the variance covariance of stock market returns
by
O'Neill, Robert
, Becker, Ralf
, Clements, Adam
in
Econometrics
/ Forecasting
/ Forecasting techniques
/ kernel density estimation
/ Macroeconomics
/ Multivariate analysis
/ Rates of return
/ similarity forecasting
/ volatility forecasting
2018
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Do you wish to request the book?
A multivariate Kernel approach to forecasting the variance covariance of stock market returns
by
O'Neill, Robert
, Becker, Ralf
, Clements, Adam
in
Econometrics
/ Forecasting
/ Forecasting techniques
/ kernel density estimation
/ Macroeconomics
/ Multivariate analysis
/ Rates of return
/ similarity forecasting
/ volatility forecasting
2018
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A multivariate Kernel approach to forecasting the variance covariance of stock market returns
Journal Article
A multivariate Kernel approach to forecasting the variance covariance of stock market returns
2018
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Overview
This paper introduces a multivariate kernel based forecasting tool for the prediction of variance-covariance matrices of stock returns. The method introduced allows for the incorporation of macroeconomic variables into the forecasting process of the matrix without resorting to a decomposition of the matrix. The model makes use of similarity forecasting techniques and it is demonstrated that several popular techniques can be thought as a subset of this approach. A forecasting experiment demonstrates the potential for the technique to improve the statistical accuracy of forecasts of variance-covariance matrices.
Publisher
MDPI,MDPI AG
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