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Does Stock Market Volatility Forecast Returns

Does Stock Market Volatility Forecast Returns
Author:
Publisher:
Total Pages:
Release: 2003
Genre: Capital assets pricing model
ISBN:

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"We use daily price indices obtained from the Morgan Stanley Capital International to construct realized volatility for 18 individual stock markets, including the US, and the world stock market. In contrast with the CAPM, we find that volatility by itself does not forecast excess returns in most countries; however, it becomes a significant predictor when combined with the US consumption-wealth ratio, which, as argued by recent authors, is a proxy for the liquidity premium. The latter result mainly reflects the fact that volatility in international stock markets co-moves closely with the US stock volatility: The former loses its predictive power if we also include the latter in the forecasting equation. Moreover, the out-of-sample forecast of the US or the world stock market returns appears to be a good proxy for conditional returns of international stock markets. Our results thus indicate that (1) volatility is one of important determinants of the equity premium and (2) international stock markets are integrated"--Federal Reserve Bank of St. Louis web site.


Forecasting Volatility in the Financial Markets

Forecasting Volatility in the Financial Markets
Author: Stephen Satchell
Publisher: Elsevier
Total Pages: 428
Release: 2011-02-24
Genre: Business & Economics
ISBN: 0080471420

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Forecasting Volatility in the Financial Markets, Third Edition assumes that the reader has a firm grounding in the key principles and methods of understanding volatility measurement and builds on that knowledge to detail cutting-edge modelling and forecasting techniques. It provides a survey of ways to measure risk and define the different models of volatility and return. Editors John Knight and Stephen Satchell have brought together an impressive array of contributors who present research from their area of specialization related to volatility forecasting. Readers with an understanding of volatility measures and risk management strategies will benefit from this collection of up-to-date chapters on the latest techniques in forecasting volatility. Chapters new to this third edition:* What good is a volatility model? Engle and Patton* Applications for portfolio variety Dan diBartolomeo* A comparison of the properties of realized variance for the FTSE 100 and FTSE 250 equity indices Rob Cornish* Volatility modeling and forecasting in finance Xiao and Aydemir* An investigation of the relative performance of GARCH models versus simple rules in forecasting volatility Thomas A. Silvey Leading thinkers present newest research on volatility forecasting International authors cover a broad array of subjects related to volatility forecasting Assumes basic knowledge of volatility, financial mathematics, and modelling


Stock Market Volatility

Stock Market Volatility
Author: Greg N. Gregoriou
Publisher: CRC Press
Total Pages: 654
Release: 2009-04-08
Genre: Business & Economics
ISBN: 1420099558

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Up-to-Date Research Sheds New Light on This Area Taking into account the ongoing worldwide financial crisis, Stock Market Volatility provides insight to better understand volatility in various stock markets. This timely volume is one of the first to draw on a range of international authorities who offer their expertise on market volatility in devel


Forecasting Expected Returns in the Financial Markets

Forecasting Expected Returns in the Financial Markets
Author: Stephen Satchell
Publisher: Elsevier
Total Pages: 299
Release: 2011-04-08
Genre: Business & Economics
ISBN: 0080550673

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Forecasting returns is as important as forecasting volatility in multiple areas of finance. This topic, essential to practitioners, is also studied by academics. In this new book, Dr Stephen Satchell brings together a collection of leading thinkers and practitioners from around the world who address this complex problem using the latest quantitative techniques. *Forecasting expected returns is an essential aspect of finance and highly technical *The first collection of papers to present new and developing techniques *International authors present both academic and practitioner perspectives


Forecasting Volatility in the Financial Markets

Forecasting Volatility in the Financial Markets
Author: John L. Knight
Publisher: Butterworth-Heinemann
Total Pages: 428
Release: 2002
Genre: Business & Economics
ISBN: 9780750655156

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This text assumes that the reader has a firm grounding in the key principles and methods of understanding volatility measurement and builds on that knowledge to detail cutting edge modeling and forecasting techniques. It then uses a technical survey to explain the different ways to measure risk and define the different models of volatility and return.


A Practical Guide to Forecasting Financial Market Volatility

A Practical Guide to Forecasting Financial Market Volatility
Author: Ser-Huang Poon
Publisher: John Wiley & Sons
Total Pages: 236
Release: 2005-08-19
Genre: Business & Economics
ISBN: 0470856157

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Financial market volatility forecasting is one of today's most important areas of expertise for professionals and academics in investment, option pricing, and financial market regulation. While many books address financial market modelling, no single book is devoted primarily to the exploration of volatility forecasting and the practical use of forecasting models. A Practical Guide to Forecasting Financial Market Volatility provides practical guidance on this vital topic through an in-depth examination of a range of popular forecasting models. Details are provided on proven techniques for building volatility models, with guide-lines for actually using them in forecasting applications.


Beast on Wall Street

Beast on Wall Street
Author: Robert A. Haugen
Publisher: Pearson
Total Pages: 170
Release: 1999
Genre: Business & Economics
ISBN:

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It is now abundantly clear that stock volatility is a contagious disease that spreads virulently from market to market around the world. Price changes in one market drive subsequent price changes in that market as well as in others. In Beast, Haugen makes a compelling case for the fact that even under normal conditions, fully 80 percent of stock volatility is price driven. Moreover, this volatility is far from benign. It acts to reduce the level of investment spending and constitutes a significant and permanent drag on economic growth. Price-driven volatility is unstable. Dramatic and unpredictable explosions in price-driven volatility can send stock markets in a downward spiral and cause significant disruptions in economic activity. Haugen argues that this indeed happened in 1929 and 1930. If volatility in Asian markets persists, it can easily become the source of the problem rather than merely a symptom.


Forecasting the Volatility of Stock Market and Oil Futures Market

Forecasting the Volatility of Stock Market and Oil Futures Market
Author: Dexiang Mei
Publisher: Scientific Research Publishing, Inc. USA
Total Pages: 139
Release: 2020-12-17
Genre: Business & Economics
ISBN: 164997048X

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The volatility has been one of the cores of the financial theory research, in addition to the stock markets and the futures market are an important part of modern financial markets. Forecast volatility of the stock market and oil futures market is an important part of the theory of financial markets research.


Essays on the Predictability and Volatility of Returns in the Stock Market

Essays on the Predictability and Volatility of Returns in the Stock Market
Author: Ruojun Wu
Publisher:
Total Pages: 137
Release: 2008
Genre: Bayesian statistical decision theory
ISBN:

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This dissertation studies the effect of parameter uncertainty on the return predictability and volatility of the stock market. The first two chapters focus on the decomposition of market volatility, and the third chapter studies the return predictability. When facing imperfect information, the investors tend to form a learning scheme that encompasses both historical data and prior beliefs. In the variance decomposition framework, the introducing of learning directly impacts the way that return forecasts are revised and consequently the relative component of market volatility based on these forecasts, namely the price movements from revision on future discount rates and those from future cash flows. According to the empirical study in Chapter 1, the former is not necessarily the major driving force of market volatility, which provides an alternative view on what moves stock prices. Learning is modeled and estimated by Bayesian method. Chapter 2 follows the topic in Chapter 1 and studies the role of persistent state variables in return decomposition in order to provide more robust inference on variance decomposition. In Chapter 3 we propose to utilize theoretical constraints to help predict market returns when in sample data is very noisy and creates model uncertainty for the investors. The constraints are also incorporated by Bayesian method. We show in the out-of-sample forecast experiment that models with theoretical constraints produce better forecasts.