Exponential Families of Stochastic Processes

Exponential Families of Stochastic Processes

Uwe Küchler, Michael Sørensen (auth.)
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Exponential families of stochastic processes are parametric stochastic p- cess models for which the likelihood function exists at all ?nite times and has an exponential representation where the dimension of the canonical statistic is ?nite and independent of time. This de?nition not only covers manypracticallyimportantstochasticprocessmodels,italsogivesrisetoa rather rich theory. This book aims at showing both aspects of exponential families of stochastic processes. Exponential families of stochastic processes are tractable from an a- lytical as well as a probabilistic point of view. Therefore, and because the theory covers many important models, they form a good starting point for an investigation of the statistics of stochastic processes and cast interesting light on basic inference problems for stochastic processes. Exponential models play a central role in classical statistical theory for independent observations, where it has often turned out to be informative and advantageous to view statistical problems from the general perspective of exponential families rather than studying individually speci?c expon- tial families of probability distributions. The same is true of stochastic process models. Thus several published results on the statistics of parti- lar process models can be presented in a uni?ed way within the framework of exponential families of stochastic processes.

Kategorije:
Godina:
1997
Izdanje:
1
Izdavač:
Springer-Verlag New York
Jezik:
english
Strane:
322
ISBN 10:
038794981X
ISBN 13:
9780387949819
Serije:
Springer Series in Statistics
Fajl:
PDF, 1.96 MB
IPFS:
CID , CID Blake2b
english, 1997
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