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Polynomial Filtering for Systems with Non-independent Uncertain Observations

Conference Paper
Publication Date:
2004
abstract:
The filtering problem for non-Gaussian, discrete-time, linear systems with correlated uncertainty in the observation equation is investigated in the present paper. A stochastic Markov sequence of correlated Bernoulli random variables is considered as a model for the uncertainty in the measurements. For this class of systems Hadidi-Schwartz defined a linear filter (giving the linear-optimal state estimate) assuming some structural properties of the system are satisfied. In the present paper similar conditions are shown to imply the existence of a polynomial filter (of any degree). Finally, the general polynomial filter equations are derived for the considered class of systems.
Iris type:
04.01 Contributo in Atti di convegno
Keywords:
DISCRETE-TIME-SYSTEMS; NON-GAUSSIAN SYSTEMS; COVARIANCE INFORMATION; ESTIMATORS
List of contributors:
Carravetta, Francesco; Mavelli, Gabriella
Authors of the University:
CARRAVETTA FRANCESCO
MAVELLI GABRIELLA
Handle:
https://iris.cnr.it/handle/20.500.14243/70339
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