Non-Linear Time Series Models in Empirical Finance

Non-Linear Time Series Models in Empirical Finance
Title Non-Linear Time Series Models in Empirical Finance PDF eBook
Author Philip Hans Franses
Publisher Cambridge University Press
Pages 299
Release 2000-07-27
Genre Business & Economics
ISBN 0521770416

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This 2000 volume reviews non-linear time series models, and their applications to financial markets.

Non-linear Time Series Models in Empirical Finance Forecasting

Non-linear Time Series Models in Empirical Finance Forecasting
Title Non-linear Time Series Models in Empirical Finance Forecasting PDF eBook
Author Philip Hans Franses
Publisher
Pages 280
Release 2000
Genre
ISBN

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Non-linear Time Series Models in Empirical Finance

Non-linear Time Series Models in Empirical Finance
Title Non-linear Time Series Models in Empirical Finance PDF eBook
Author Philip Hans Franses
Publisher
Pages 0
Release 2000
Genre
ISBN

Download Non-linear Time Series Models in Empirical Finance Book in PDF, Epub and Kindle

Non-linear Time Series Models in Empirical Finance

Non-linear Time Series Models in Empirical Finance
Title Non-linear Time Series Models in Empirical Finance PDF eBook
Author Philip Hans Franses
Publisher
Pages 280
Release 2000
Genre
ISBN

Download Non-linear Time Series Models in Empirical Finance Book in PDF, Epub and Kindle

Elements of Nonlinear Time Series Analysis and Forecasting

Elements of Nonlinear Time Series Analysis and Forecasting
Title Elements of Nonlinear Time Series Analysis and Forecasting PDF eBook
Author Jan G. De Gooijer
Publisher Springer
Pages 626
Release 2017-03-30
Genre Mathematics
ISBN 3319432524

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This book provides an overview of the current state-of-the-art of nonlinear time series analysis, richly illustrated with examples, pseudocode algorithms and real-world applications. Avoiding a “theorem-proof” format, it shows concrete applications on a variety of empirical time series. The book can be used in graduate courses in nonlinear time series and at the same time also includes interesting material for more advanced readers. Though it is largely self-contained, readers require an understanding of basic linear time series concepts, Markov chains and Monte Carlo simulation methods. The book covers time-domain and frequency-domain methods for the analysis of both univariate and multivariate (vector) time series. It makes a clear distinction between parametric models on the one hand, and semi- and nonparametric models/methods on the other. This offers the reader the option of concentrating exclusively on one of these nonlinear time series analysis methods. To make the book as user friendly as possible, major supporting concepts and specialized tables are appended at the end of every chapter. In addition, each chapter concludes with a set of key terms and concepts, as well as a summary of the main findings. Lastly, the book offers numerous theoretical and empirical exercises, with answers provided by the author in an extensive solutions manual.

Time Series Models for Business and Economic Forecasting

Time Series Models for Business and Economic Forecasting
Title Time Series Models for Business and Economic Forecasting PDF eBook
Author Philip Hans Franses
Publisher Cambridge University Press
Pages 421
Release 2014-04-24
Genre Business & Economics
ISBN 1139952129

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With a new author team contributing decades of practical experience, this fully updated and thoroughly classroom-tested second edition textbook prepares students and practitioners to create effective forecasting models and master the techniques of time series analysis. Taking a practical and example-driven approach, this textbook summarises the most critical decisions, techniques and steps involved in creating forecasting models for business and economics. Students are led through the process with an entirely new set of carefully developed theoretical and practical exercises. Chapters examine the key features of economic time series, univariate time series analysis, trends, seasonality, aberrant observations, conditional heteroskedasticity and ARCH models, non-linearity and multivariate time series, making this a complete practical guide. Downloadable datasets are available online.

Nonlinear Financial Econometrics: Forecasting Models, Computational and Bayesian Models

Nonlinear Financial Econometrics: Forecasting Models, Computational and Bayesian Models
Title Nonlinear Financial Econometrics: Forecasting Models, Computational and Bayesian Models PDF eBook
Author G. Gregoriou
Publisher Springer
Pages 216
Release 2010-12-21
Genre Business & Economics
ISBN 0230295223

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This book investigates several competing forecasting models for interest rates, financial returns, and realized volatility, addresses the usefulness of nonlinear models for hedging purposes, and proposes new computational techniques to estimate financial processes.