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Convolution Copula Econometrics

Convolution Copula Econometrics

Umberto Cherubini, Fabio Gobbi, Sabrina Mulinacci (auth.)
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This book presents a novel approach to time series econometrics, which studies the behavior of nonlinear stochastic processes. This approach allows for an arbitrary dependence structure in the increments and provides a generalization with respect to the standard linear independent increments assumption of classical time series models. The book offers a solution to the problem of a general semiparametric approach, which is given by a concept called C-convolution (convolution of dependent variables), and the corresponding theory of convolution-based copulas. Intended for econometrics and statistics scholars with a special interest in time series analysis and copula functions (or other nonparametric approaches), the book is also useful for doctoral students with a basic knowledge of copula functions wanting to learn about the latest research developments in the field.

年:
2016
出版:
1
出版社:
Springer International Publishing
语言:
english
页:
99
ISBN 10:
3319480154
ISBN 13:
9783319480152
系列:
SpringerBriefs in Statistics
文件:
PDF, 3.37 MB
IPFS:
CID , CID Blake2b
english, 2016
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