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Linganisha mbinu

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Dynamic Exponential Random Graph Model×Uchanganuzi wa Uenezaji wa Mtandao×
NyanjaUchanganuzi wa MitandaoUchanganuzi wa Mitandao
FamiliaMachine learningMachine learning
Mwaka wa asili2010–20141927 (epidemic roots); network formalization 1990s–2000s
MwanzilishiHanneke, Fu & Xing; Krivitsky & HandcockKermack, W. O. & McKendrick, A. G.
AinaProbabilistic graphical model (temporal)Simulation / analytical model
Chanzo asiliaHanneke, S., Fu, W., & Xing, E. P. (2010). Discrete temporal models of social networks. Electronic Journal of Statistics, 4, 585–605. DOI ↗Kermack, W. O. & McKendrick, A. G. (1927). A contribution to the mathematical theory of epidemics. Proceedings of the Royal Society of London A, 115(772), 700–721. DOI ↗
Majina mbadalaTERGM, Temporal ERGM, Dynamic ERGM, STERGMdiffusion on networks, information diffusion, contagion spreading model, network propagation model
Zinazohusiana45
MuhtasariThe Dynamic Exponential Random Graph Model (TERGM / STERGM) extends the classic ERGM framework to panel network data, modeling how a network's ties form and dissolve over time as a function of structural tendencies, nodal attributes, and the network's own past state. It provides statistically principled inference about longitudinal network change.Network diffusion analysis models how information, diseases, behaviors, or innovations spread across a graph of nodes and edges. Drawing on classical epidemic theory (SI, SIR, SIS) and modern network science, it tracks which nodes become infected, how quickly, and whether the spread reaches a global cascade or dies out locally.
ScholarGateSeti ya data
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  1. v1
  2. 2 Vyanzo
  3. PUBLISHED

Nenda kwenye utafutaji Pakua slaidi

ScholarGateLinganisha mbinu: Dynamic Exponential Random Graph Model · Network Diffusion Analysis. Imepatikana 2026-06-15 kutoka https://scholargate.app/sw/compare