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Time Series Analysis for the Social Sciences

Time Series Analysis for the Social Sciences

Janet M. Box-Steffensmeier, John R. Freeman, Jon C. Pevehouse, Matthew Perry Hitt
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Time-series, or longitudinal, data are ubiquitous in the social sciences. Unfortunately, analysts often treat the time-series properties of their data as a nuisance rather than a substantively meaningful dynamic process to be modeled and interpreted. Time-Series Analysis for Social Sciences provides accessible, up-to-date instruction and examples of the core methods in time-series econometrics. Janet M. Box-Steffensmeier, John R. Freeman, Jon C. Pevehouse, and Matthew P. Hitt cover a wide range of topics including ARIMA models, time-series regression, unit-root diagnosis, vector autoregressive models, error-correction models, intervention models, fractional integration, ARCH models, structural breaks, and forecasting. This book is aimed at researchers and graduate students who have taken at least one course in multivariate regression. Examples are drawn from several areas of social science, including political behavior, elections, international conflict, criminology, and comparative political economy.
Catégories:
Année:
2014
Editeur::
Cambridge University Press
Langue:
english
ISBN 10:
0521871166
ISBN 13:
9780521871167
Collection:
Analytical Methods for Social Research
Fichier:
PDF, 4.75 MB
IPFS:
CID , CID Blake2b
english, 2014
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