نتایج جستجو برای: رگرسیون چندگانه garch

تعداد نتایج: 44745  

2005
Luc Bauwens Arie Preminger Jeroen V.K. Rombouts Richard Baillie Eric Renault Sharon Rubin

We develop univariate regime-switching GARCH (RS-GARCH) models wherein the conditional variance switches in time from one GARCH process to another. The switching is governed by a time-varying probability, specified as a function of past information. We provide sufficient conditions for geometric ergodicity and existence of moments. Because of path dependence, maximum likelihood estimation is no...

ژورنال: :پژوهش های رشد و توسعه پایدار 0
رضا راعی دانشگاه تهران سعید باجلان تهران

این مقاله به بررسی اثرات تقویمی بازده بورس اوراق بهادار تهران پرداخته است. در ابتدا با استفاده از یک مدل کلی که طیف وسیعی از اثرات تقویمی شناخته شده درسایر بورس های اوراق بهادار جهان را شامل می گردد به شناسایی اثرات تقویمی موجود در مقادیر بازده بورس اوراق بهادار تهران پرداخته شده است. شواهد بیانگر اثر ماه مهر و اسفند قوی مقادیر بازده می باشد. بعلاوه نتایج نشان می دهند که بازده روزانه بورس با گذ...

2000
H. Peter Boswijk

This paper considers tests for a unit root when the innovations follow a near-integrated GARCH process. We compare the asymptotic properties of the likelihood ratio statistic with that of the leastsquares based Dickey-Fuller statistic. We first use asymptotics where the GARCH variance process is stationary with fixed parameters, and then consider parameter sequences such that the GARCH process ...

2000
Amit Goyal

This paper focuses on the performance of various GARCH models in terms of their ability of delivering volatility forecasts for stock return data. Volatility forecasts obtained from a variety of mean and variance specifications in GARCH models are compared to a proxy of actual volatility calculated using daily data. In-sample tests suggest that a regression of volatility estimates on actual vola...

2011
Farid Boussama Florian Fuchs Robert Stelzer

Conditions for the existence of strictly stationary multivariate GARCH processes in the so-called BEKK parametrisation, which is the most general form of multivariate GARCH processes typically used in applications, and for their geometric ergodicity are obtained. The conditions are that the driving noise is absolutely continuous with respect to the Lebesgue measure and zero is in the interior o...

2006
Hui Guo Christopher J. Neely Carl H. Lindner

We revisit the risk-return relation using the component GARCH model and international daily MSCI stock market data. In contrast with the previous evidence obtained from weekly and monthly data, daily data show that the relation is positive in almost all markets and often statistically significant. Likelihood ratio tests reject the standard GARCH model in favor of the component GARCH model, whic...

2010
László Gerencsér Zsanett Orlovits Balázs Torma

ARCH processes and their extensions known as GARCH processes are widely accepted for modelling financial time series, in particular stochastic volatility processes. The offline estimation of ARCH and GARCH processes have been analyzed under a variety of conditions in the literature. The main contribution of this paper is a rigorous convergence analysis of a recursive estimation method for GARCH...

2009
Songsak Sriboonchitta Vladik Kreinovich

Most existing econometric models such as ARCH(q) and GARCH(p,q) take into account heteroskedasticity (non-stationarity) of time series. However, the original ARCH(q) and GARCH(p,q) models do not take into account the asymmetry of the market’s response to positive and to negative changes. Several heuristic modifications of ARCH(q) and GARCH(p,q) models have been proposed that take this asymmetry...

Journal: :SIAM Review 2003
Aslihan Altay-Salih Mustafa Ç. Pinar Sven Leyffer

This paper proposes a constrained nonlinear programming view of generalized autoregressive conditional heteroskedasticity (GARCH) volatility estimation models in financial econometrics. These models are usually presented to the reader as unconstrained optimization models with recursive terms in the literature, whereas they actually fall into the domain of nonconvex nonlinear programming. Our re...

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