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Modeling And Evaluation of Risk Measures For the Residuals of Financial Time Series With Unobserved Values Using R

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dc.contributor.author Udokang, Anietie Edem
dc.date.accessioned 2017-04-20T12:01:12Z
dc.date.available 2017-04-20T12:01:12Z
dc.date.issued 2017-04-20
dc.identifier.uri http://hdl.handle.net/123456789/4453
dc.description.abstract In this work ARMA+GARCH model is adopted for the daily stock price of First Bank Nigeria,Plc. The methods of weekly average, regression imputation and repetition were used in computing the unobserved values. An alternative method was also used which involves deleting the days with unobserved values. The method of transformation was determined in each of the series and log transformation was adopted for the four series. In the model selection, the model of the repetition had the minimum AIC. The distribution of the residuals was found to be Frechet case of Generalized Extreme Value Distribution (GEVD). This was approximated to the Generalized Parato Distribution (GPD). The parameters computation of risk measures. The computed Value at Risk (VaR) has a value of N49438.79 and that of the Expected Short Fall (ES) is N49291.24 with position of N1,000,000of this distribution were used in en_US
dc.language.iso en en_US
dc.subject Stock Exchange en_US
dc.subject Market Risk en_US
dc.subject Generalised Pareto Distribution en_US
dc.subject Capital en_US
dc.subject Risk Management en_US
dc.subject First Bank Nigeria en_US
dc.title Modeling And Evaluation of Risk Measures For the Residuals of Financial Time Series With Unobserved Values Using R en_US
dc.type Thesis en_US


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