Title :
Weiss–Weinstein Lower Bounds for Markovian Systems. Part 2: Applications to Fault-Tolerant Filtering
Author :
Rapoport, Ilia ; Oshman, Yaakov
Author_Institution :
Dept. of Aerosp. Eng., Technion-Israel Inst. of Technol., Haifa
fDate :
5/1/2007 12:00:00 AM
Abstract :
Characterized by sudden structural changes, fault-prone systems are modeled using the framework of systems with switching parameters or hybrid systems. Since a closed-form mean-square optimal filtering algorithm for this class of systems does not exist, it is of particular interest to derive a lower bound on the state estimation error covariance. The well known Crameacuter-Rao bound is not applicable to fault-prone systems because of the discrete distribution of the fault indicators, which violates the regularity conditions associated with this bound. On the other hand, the Weiss-Weinstein lower bound is essentially free from regularity conditions. Moreover, a sequential version of the Weiss-Weinstein bound, suitable for Markovian dynamic systems, is presented by the authors in a companion paper. In the present paper, this sequential version is applied to several classes of fault-prone dynamic systems. The resulting bounds can be used to examine fault detectability and identifiability in these systems. Moreover, it is shown that several recently reported lower bounds for fault-prone systems are special cases of, or closely related to, the sequential version of the Weiss-Weinstein lower bound
Keywords :
Markov processes; fault tolerance; filtering theory; mean square error methods; state estimation; Cramer-Rao bound; Markovian dynamic systems; Weiss-Weinstein lower bounds; closed-form mean-square optimal filtering algorithm; fault detectability; fault identifiability; fault-prone systems; fault-tolerant filtering; state estimation error covariance; Acceleration; Colored noise; Fault detection; Fault tolerance; Fault tolerant systems; Filtering algorithms; Magnetic field measurement; Magnetic sensors; Navigation; State estimation; Estimation error lower bound; fault detection and isolation; hybrid systems;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2007.893209