High-order extensions of the double chain Markov model

نویسنده

  • Andrr Berchtold
چکیده

The Double Chain Markov Model is a fully Markovian model for the representation of time-series in random environment. In this article, we s h o w that it can handle transitions of high-order between both a set of obsevations and a set of hidden states. In order to reduce the number of parameters, each transition matrix can be replaced by a Mixture Transition Model. We provide a complete derivation of the algorithms needed to compute the model. Three applications, the analysis of a sequence of DNA, the song of the wood pewee and the behavior of young monkeys, show that this model is of great interest for the representation of data which can be decomposed into a nite set of patterns.

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تاریخ انتشار 2002