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Statistical Inference in Multifractal Random Walk Models for Financial Time Series.

Statistical Inference in Multifractal Random Walk Models for Financial Time Series. 金融時系列のための多フラクタル・ランダムウォーク・ モデルにおける統計的推測

・ISBN 978-3-631-60673-5 paper

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著者・編者Sattarhoff, Cristina,
シリーズVolkswirtschaftliche Analysen
出版社(P. Lang, SZ)
出版年月2011
ページ数101 pp.
言語ENG
ニュース番号<585-267>

解説

The dynamics of financial returns varies with the return period, from high-frequency data to daily, quarterly or annual data. Multifractal Random Walk models can capture the statistical relation between returns and return periods, thus facilitating a more accurate representation of real price changes. This book provides a generalized method of moments estimation technique for the model parameters with enhanced performance in finite samples, and a novel testing procedure for multifractality. The resource-efficient computer-based manipulation of large datasets is a typical challenge in finance. In this connection, this book also proposes a new algorithm for the computation of heteroscedasticity and autocorrelation consistent (HAC) covariance matrix estimators that can cope with large datasets.