arXiv · 2504.16815
Distributed Unknown Input Observers for Discrete-Time Linear Time-Invariant Systems
Abstract
This paper introduces a Distributed Unknown Input Observer (D-UIO) design methodology that uses a technique called node-wise detectability decomposition to estimate the state of a discrete-time linear time-invariant (LTI) system in a distributed way, even when there are noisy measurements and unknown inputs. In the considered scenario, sensors are associated to nodes of an underlying communication graph. Each node has a limited scope as it can only access local measurements and share data with its neighbors. The problem of designing the observer gains is divided into two separate sub-problems: (i) design local output injection gains to mitigate the impact of measurement noise, and (ii) design diffusive gains to compensate for the lack of information through a consensus protocol. A direct and computationally efficient synthesis strategy is formulated by linear matrix inequalities (LMIs) and solved via semidefinite programming. Finally, two simulative scenarios are presented to illustrate the effectiveness of the distributed observer when two different node-wise decompositions are adopted.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Franco Angelo Torchiaro, Gianfranco Gagliardi, Francesco Tedesco, Alessandro Casavola. 2025-04-23. Distributed Unknown Input Observers for Discrete-Time Linear Time-Invariant Systems. https://arxiv.org/abs/2504.16815
Cite the original work for its findings. Save a collection to share your selection of sources.