TY - JOUR
T1 - Characterization and control of conservative and non-conservative network dynamics
AU - Wildemeersch, Matthias
AU - Chan, Wai Hong Ronald
AU - Rovenskaya, Elena
AU - Quek, Tony Q.S.
N1 - Publisher Copyright:
© 2018 Elsevier Ltd
PY - 2018/9/30
Y1 - 2018/9/30
N2 - Diffusion processes are instrumental to describe the movement of a continuous quantity in a network of interacting agents. Here, we present a framework for diffusion in networks and study in particular two classes of agent interactions depending on whether the total network quantity follows a conservation law. Focusing on probabilistic, asymmetric interactions between agents, we define how the dynamics of conservative and non-conservative networks relate to the weighted in-degree and out-degree Laplacians. For uncontrolled networks, we compare the convergence behavior of both types of networks as a function of the eigenvectors of the weighted graph Laplacians. For networks with exogenous controls, we also analyze convergence and provide a method to measure the difference between conservative and non-conservative network dynamics based on the comparison of their respective reachable sets. The presented network control framework enables the comparative study of the dynamic and asymptotic network behavior for conservative and non-conservative networks.
AB - Diffusion processes are instrumental to describe the movement of a continuous quantity in a network of interacting agents. Here, we present a framework for diffusion in networks and study in particular two classes of agent interactions depending on whether the total network quantity follows a conservation law. Focusing on probabilistic, asymmetric interactions between agents, we define how the dynamics of conservative and non-conservative networks relate to the weighted in-degree and out-degree Laplacians. For uncontrolled networks, we compare the convergence behavior of both types of networks as a function of the eigenvectors of the weighted graph Laplacians. For networks with exogenous controls, we also analyze convergence and provide a method to measure the difference between conservative and non-conservative network dynamics based on the comparison of their respective reachable sets. The presented network control framework enables the comparative study of the dynamic and asymptotic network behavior for conservative and non-conservative networks.
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U2 - 10.1016/j.ifacsc.2018.07.002
DO - 10.1016/j.ifacsc.2018.07.002
M3 - Article
AN - SCOPUS:85118351584
SN - 2468-6018
VL - 5
SP - 22
EP - 29
JO - IFAC Journal of Systems and Control
JF - IFAC Journal of Systems and Control
ER -