arXiv · 2609.06897
Gramian-Informed Framework for Edge Flow Network Analysis Against Nodal Attacks
Abstract
We study the first-order effects of nodal inputs on edge flows of network systems through controllability Gramians. We consider both discrete- and continuous-time dynamics subject to impulse and step input disturbances. To characterize their impact on network behavior, we introduce the notion of a vulnerability matrix (VM) and provide explicit Gramian-based expressions that reveal the critical role played by the interplay between network topology and dynamics. For the class of directed line networks, we particularize these closed-form expressions in terms of edge weights, input duration, and graph distance to the nodal input. Numerical simulations on directed line and random Erd\H{o}s-R\'{e}nyi networks show a tight correspondence between influential nodes identified with the VM and conventional time-domain performance metrics, such as $\mathscr{H}_2$ and $\mathscr{H}_{\infty}$.
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Prasad Vilas Chanekar, Bala Kameshwar Poolla, Jorge Cortés. 2026-09-07. Gramian-Informed Framework for Edge Flow Network Analysis Against Nodal Attacks. https://arxiv.org/abs/2609.06897
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