AGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R

In investment, investors want to minimize the risks that can be done with aggregation. Value at Risk (V@R) is one of the most widely used risk measure. V@R aggregation is one of application that defined as the worst lost to be expected of aggregation at given confidence level. This final project, pr...

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Main Author: (NIM : 10113009), ANISA
Format: Final Project
Language:Indonesia
Online Access:https://digilib.itb.ac.id/gdl/view/21115
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Institution: Institut Teknologi Bandung
Language: Indonesia
id id-itb.:21115
spelling id-itb.:211152017-11-06T09:12:35ZAGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R (NIM : 10113009), ANISA Indonesia Final Project INSTITUT TEKNOLOGI BANDUNG https://digilib.itb.ac.id/gdl/view/21115 In investment, investors want to minimize the risks that can be done with aggregation. Value at Risk (V@R) is one of the most widely used risk measure. V@R aggregation is one of application that defined as the worst lost to be expected of aggregation at given confidence level. This final project, presents V@R measures based on appropriately specified GARCH(p,q) process that has important properties of model, such as fat-tailed distribution. This fat-tailed distribution will answer to minimized risks for aggregation. To forecast the V@R of aggregation, parameter estimation GARCH(p,q) is required. Then, use Monte Carlo Sampling Errors (MCSE) approach to find errors of parameter estimation. To check the accuracy of the prediction, use Correct V@R. From the results, it can be concluded that, general GARCH(1,1) approach performs better than the other. However the accuracy of risk is key to successful risk measure. So, Improved V@R is needed. This final project <br /> <br /> <br /> <br /> <br /> <br /> <br /> <br /> <br /> <br /> presents Improved V@R to forecasting risk for GARCH(p,q) process. Improved V@R is done by using coverage probability. Improved V@R can be expressed as the sum of V@R and moments. It is proved that improved V@R is more accurate than V@R because improved V@R gives a smaller value than V@R. text
institution Institut Teknologi Bandung
building Institut Teknologi Bandung Library
continent Asia
country Indonesia
Indonesia
content_provider Institut Teknologi Bandung
collection Digital ITB
language Indonesia
description In investment, investors want to minimize the risks that can be done with aggregation. Value at Risk (V@R) is one of the most widely used risk measure. V@R aggregation is one of application that defined as the worst lost to be expected of aggregation at given confidence level. This final project, presents V@R measures based on appropriately specified GARCH(p,q) process that has important properties of model, such as fat-tailed distribution. This fat-tailed distribution will answer to minimized risks for aggregation. To forecast the V@R of aggregation, parameter estimation GARCH(p,q) is required. Then, use Monte Carlo Sampling Errors (MCSE) approach to find errors of parameter estimation. To check the accuracy of the prediction, use Correct V@R. From the results, it can be concluded that, general GARCH(1,1) approach performs better than the other. However the accuracy of risk is key to successful risk measure. So, Improved V@R is needed. This final project <br /> <br /> <br /> <br /> <br /> <br /> <br /> <br /> <br /> <br /> presents Improved V@R to forecasting risk for GARCH(p,q) process. Improved V@R is done by using coverage probability. Improved V@R can be expressed as the sum of V@R and moments. It is proved that improved V@R is more accurate than V@R because improved V@R gives a smaller value than V@R.
format Final Project
author (NIM : 10113009), ANISA
spellingShingle (NIM : 10113009), ANISA
AGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R
author_facet (NIM : 10113009), ANISA
author_sort (NIM : 10113009), ANISA
title AGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R
title_short AGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R
title_full AGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R
title_fullStr AGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R
title_full_unstemmed AGREGASI PROSES STOKASTIK GARCH: PREDIKSI V@R DAN MODIFIKASI V@R
title_sort agregasi proses stokastik garch: prediksi v@r dan modifikasi v@r
url https://digilib.itb.ac.id/gdl/view/21115
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