Forecasting Non Stationary Economic Time Series
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Forecasting Non stationary Economic Time Series
Author | : Michael P. Clements,David F. Hendry |
Publsiher | : MIT Press |
Total Pages | : 398 |
Release | : 1999 |
Genre | : Business & Economics |
ISBN | : 0262531895 |
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This text on economic forecasting asks why some practices seem to work empirically despite a lack of formal support from theory. After reviewing the conventional approach to forecasting, it looks at the implications for causal modelling, presents forecast errors and delineates sources of failure.
Modelling Non Stationary Economic Time Series
Author | : S. Burke,J. Hunter |
Publsiher | : Springer |
Total Pages | : 253 |
Release | : 2005-06-14 |
Genre | : Business & Economics |
ISBN | : 9780230005785 |
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Co-integration, equilibrium and equilibrium correction are key concepts in modern applications of econometrics to real world problems. This book provides direction and guidance to the now vast literature facing students and graduate economists. Econometric theory is linked to practical issues such as how to identify equilibrium relationships, how to deal with structural breaks associated with regime changes and what to do when variables are of different orders of integration.
Multivariate Modelling of Non Stationary Economic Time Series
Author | : John Hunter,Simon P. Burke,Alessandra Canepa |
Publsiher | : Springer |
Total Pages | : 502 |
Release | : 2017-05-08 |
Genre | : Business & Economics |
ISBN | : 9781137313034 |
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This book examines conventional time series in the context of stationary data prior to a discussion of cointegration, with a focus on multivariate models. The authors provide a detailed and extensive study of impulse responses and forecasting in the stationary and non-stationary context, considering small sample correction, volatility and the impact of different orders of integration. Models with expectations are considered along with alternate methods such as Singular Spectrum Analysis (SSA), the Kalman Filter and Structural Time Series, all in relation to cointegration. Using single equations methods to develop topics, and as examples of the notion of cointegration, Burke, Hunter, and Canepa provide direction and guidance to the now vast literature facing students and graduate economists.
Forecasting Economic Time Series
Author | : Michael Clements,David F. Hendry |
Publsiher | : Cambridge University Press |
Total Pages | : 402 |
Release | : 1998-10-08 |
Genre | : Business & Economics |
ISBN | : 0521634806 |
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An extended formal analysis of economic forecasting co-authored by one of the world's leading econometricians.
Forecasting Economic Time Series
Author | : Clive William John Granger,Paul Newbold |
Publsiher | : Unknown |
Total Pages | : 528 |
Release | : 1977 |
Genre | : Business & Economics |
ISBN | : STANFORD:36105002640683 |
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This book has been updated to reflect developments in time series analysis and forecasting theory and practice, particularly as applied to economics. The second edition pays attention to such problems as how to evaluate and compare forecasts.
Time Series Models for Business and Economic Forecasting
Author | : Philip Hans Franses |
Publsiher | : Cambridge University Press |
Total Pages | : 300 |
Release | : 1998-10-15 |
Genre | : Business & Economics |
ISBN | : 0521586410 |
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An introduction to time series models for business and economic forecasting.
Forecasting principles and practice
Author | : Rob J Hyndman,George Athanasopoulos |
Publsiher | : OTexts |
Total Pages | : 380 |
Release | : 2018-05-08 |
Genre | : Business & Economics |
ISBN | : 9780987507112 |
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Forecasting is required in many situations. Stocking an inventory may require forecasts of demand months in advance. Telecommunication routing requires traffic forecasts a few minutes ahead. Whatever the circumstances or time horizons involved, forecasting is an important aid in effective and efficient planning. This textbook provides a comprehensive introduction to forecasting methods and presents enough information about each method for readers to use them sensibly.
Time Series Techniques for Economists
Author | : Terence C. Mills |
Publsiher | : Cambridge University Press |
Total Pages | : 392 |
Release | : 1990 |
Genre | : Business & Economics |
ISBN | : 0521405742 |
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The application of time series techniques in economics has become increasingly important, both for forecasting purposes and in the empirical analysis of time series in general. In this book, Terence Mills not only brings together recent research at the frontiers of the subject, but also analyses the areas of most importance to applied economics. It is an up-to-date text which extends the basic techniques of analysis to cover the development of methods that can be used to analyse a wide range of economic problems. The book analyses three basic areas of time series analysis: univariate models, multivariate models, and non-linear models. In each case the basic theory is outlined and then extended to cover recent developments. Particular emphasis is placed on applications of the theory to important areas of applied economics and on the computer software and programs needed to implement the techniques. This book clearly distinguishes itself from its competitors by emphasising the techniques of time series modelling rather than technical aspects such as estimation, and by the breadth of the models considered. It features many detailed real-world examples using a wide range of actual time series. It will be useful to econometricians and specialists in forecasting and finance and accessible to most practitioners in economics and the allied professions.