نتایج جستجو برای: مدل arfima garch
تعداد نتایج: 123660 فیلتر نتایج به سال:
The skewness in physical distributions of equity index returns and the implied volatility skew in the risk neutral measure are subjects of extensive academic research. Much attention is now being focused on models that are able to capture time-varying conditional skewness and kurtosis. For this reason normal mixture GARCH(1,1) models have become very popular in financial econometrics. We introd...
This paper develops a closed-form option pricing formula for a spot asset whose variance follows a GARCH process. The model allows for correlation between returns of the spot asset and variance and also admits multiple lags in the dynamics of the GARCH process. The single-factor (one-lag) version of this model contains Heston’s (1993) stochastic volatility model as a diffusion limit and therefo...
توسعه روز افزون بازارهای مالی و افزایش مقدار معاملات و در نتیجه افزایش مقدار بالقوه ریسک، اهمیت اندازه گیری و کنترل موثر ریسک بازار و برآورد معیار شناخته شده اندازه گیری آن، ارزش در معرض خطر را بیش از گذشته آشکار ساخته است. در تحقیق حاضر با استفاده از 4 مدل مختلف و به کار گیری 3500 داده روزانه از تاریخ 12/06/1373 تا 28/12/1387، ارزش در معرض خطر برای شاخص کل بورس اوراق بهادار تهران (tepix)، برآو...
تلاش در جهت شناسایی مدل مناسب و بالا بردن دقت اندازهگیری با استفاده از سنجه ارزش در معرض ریسک از اهمیت ویژه ای برخوردار است. ارزش در معرض ریسک شرطی (CVaR) با نداشتن برخی نواقص ارزش در معرض ریسک، سنجه قابل اعتمادتری میباشد. در این پژوهش با مطالعه در خصوص ویژگیهای دادههای شاخص کل بورس اوراق بهادار تهران وکاربرد مدل FIGARCH-EVT در محاسبه ارزش در معرض ریسک شرطی، تصریح دقیقتری حاصل شده است. اب...
The present study aims at applying different methods i.e GARCH, EGARCH, GJRGARCH, IGARCH & ANN models for calculating the volatilities of Indian stock markets. Fourteen years of data of BSE Sensex & NSE Nifty are used to calculate the volatilities. The performance of data exhibits that, there is no difference in the volatilities of Sensex, & Nifty estimated under the GARCH, EGARCH, GJR GARCH, I...
It is well-known that causal forecasting methods that include appropriately chosen Exogenous Variables (EVs) very often present improved forecasting performances over univariate methods. However, in practice, EVs are usually difficult to obtain and in many cases are not available at all. In this paper, a new causal forecasting approach, called Wavelet Auto-Regressive Integrated Moving Average w...
This paper establishes the strong consistency and asymptotic normality of the quasi-maximum likelihood estimator (QMLE) for a GARCH process with periodically time-varying parameters. We first give a necessary and sufficient condition for the existence of a strictly periodically stationary solution for the periodic GARCH (P -GARCH) equation. As a result, it is shown that the moment of some posit...
We show that, for three common SARV models, fitting a minimum mean square linear filter is equivalent to fitting a GARCH model. This suggests that GARCH models may be useful for filtering, forecasting, and parameter estimation in stochastic volatility settings. To investigate, we use simulations to evaluate how the three SARV models and their associated GARCH filters perform under controlled co...
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