Extreme vulnerability to intruder attacks destabilizes network dynamics
Abstract
Consensus, synchronization, formation control, and power grid balance are examples of desirable dynamical states that arise in networks.
Here we investigate how such states can be destabilized by an intruder agent within an otherwise functioning network.
We show that a single adversarial node, coupled through adversarial connections to one or more other nodes, is sufficient to destabilize the entire network and is more effective than targeting multiple nodes.
We further show that concentrating the attack on a single low-indegree node induces the greatest instability, challenging the common assumption that hubs are the most critical nodes.
This leads to a new characterization of network vulnerability, identifying low-indegree nodes as the most vulnerable components.
Although derived for linear systems, our results extend to nonlinear networks, including the Kuramoto model.
These findings reveal an intrinsic vulnerability of technological, social, and biological networks.
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