TY - JOUR
T1 - Systemic resilience of megacities against respiratory epidemics
T2 - A multi-scale coupled framework
AU - Li, Wenjie
AU - Cai, Meng
AU - Wang, Wei
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/12
Y1 - 2026/12
N2 - Megacities exhibit pronounced systemic vulnerability to respiratory epidemic shocks due to their complex and heterogeneous social contact structures. Characterizing how epidemic shocks spread through such systems and how interventions reshape systemic resilience remains a critical challenge in system safety and reliability engineering. We propose a multi-scale coupled dynamic framework to quantitatively assess the resilience performance of megacities under epidemic shocks. The results reveal that megacity resilience is not a homogeneous system property but an emergent outcome shaped by the underlying complex social network structure. Population scale drives a mass effect in middle-aged groups, whereas localized high-frequency contacts among younger cohorts lead to cohort saturation. High contact diversity breaks age-based protective barriers through a bridging effect, rendering households major spreading hubs, while age-homophilic contact patterns create age-island effects that confer local saturation-based resilience advantage to schools. Counterintuitively, individual-level protective behaviors may trigger discontinuous resilience phase transitions, exposing the system to abrupt collapse risks, whereas risk perception-driven interventions can generate non-monotonic resilience recovery. The systemic robustness of epidemic spreading networks constrains localized interventions targeting single venues, potentially causing risk migration and load redistribution. Cross-domain synergistic intervention strategies leverage nonlinear synergistic effects to dismantle this robustness, achieving fast and mild risk clearing as well as resilience optimization.
AB - Megacities exhibit pronounced systemic vulnerability to respiratory epidemic shocks due to their complex and heterogeneous social contact structures. Characterizing how epidemic shocks spread through such systems and how interventions reshape systemic resilience remains a critical challenge in system safety and reliability engineering. We propose a multi-scale coupled dynamic framework to quantitatively assess the resilience performance of megacities under epidemic shocks. The results reveal that megacity resilience is not a homogeneous system property but an emergent outcome shaped by the underlying complex social network structure. Population scale drives a mass effect in middle-aged groups, whereas localized high-frequency contacts among younger cohorts lead to cohort saturation. High contact diversity breaks age-based protective barriers through a bridging effect, rendering households major spreading hubs, while age-homophilic contact patterns create age-island effects that confer local saturation-based resilience advantage to schools. Counterintuitively, individual-level protective behaviors may trigger discontinuous resilience phase transitions, exposing the system to abrupt collapse risks, whereas risk perception-driven interventions can generate non-monotonic resilience recovery. The systemic robustness of epidemic spreading networks constrains localized interventions targeting single venues, potentially causing risk migration and load redistribution. Cross-domain synergistic intervention strategies leverage nonlinear synergistic effects to dismantle this robustness, achieving fast and mild risk clearing as well as resilience optimization.
KW - Contact heterogeneity
KW - Megacities
KW - Respiratory epidemics
KW - Synergistic interventions
KW - Systemic resilience
UR - https://www.scopus.com/pages/publications/105040573573
U2 - 10.1016/j.ress.2026.112941
DO - 10.1016/j.ress.2026.112941
M3 - 文章
AN - SCOPUS:105040573573
SN - 0951-8320
VL - 276
JO - Reliability Engineering and System Safety
JF - Reliability Engineering and System Safety
M1 - 112941
ER -