— This paper proposes and analyzes a distributed filter where the consensus term is a virtual output
rather than the local state estimate. This feature allows
for reducing the data transmitted among nodes at each
intermediate step, namely instead of exchanging a vector of
the dimension of the state, nodes exchange a vector of the
dimension of the rank of the total output matrix. The main
finding is that the convergence to the performance of the
centralized Kalman filter and mean square boundedness
of the estimation error are not lost despite an increase in
the number of consensus steps. Simulations show that the
total communication overhead is reduced without performance degradation with respect to the original distributed
filter, where nodes exchange local state estimates.
Dettaglio pubblicazione
2024, IEEE TRANSACTIONS ON AUTOMATIC CONTROL, Pages -
Optimal discrete-time distributed Kalman filter with reduced communication (01a Articolo in rivista)
Battilotti Stefano, Borri Alessandro, Cacace Filippo, D’Angelo Massimiliano
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