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k-Core Decomposition×Tsentraalsuse analüüs×
ValdkondVõrgustikuanalüüsVõrgustikuanalüüs
PerekondProcess / pipelineProcess / pipeline
Tekkeaasta19831979
LoojaStephen B. SeidmanLinton C. Freeman
TüüpGraph pruning and hierarchical decompositionDescriptive / exploratory network measure family
AlgallikasSeidman, S. B. (1983). Network structure and minimum degree. Social Networks, 5(3), 269–287. DOI ↗Freeman, L.C. (1979). Centrality in Social Networks: Conceptual Clarification. Social Networks, 1(3), 215-239. DOI ↗
RööpnimetusedCore Decomposition, Coreness Decomposition, Shell Decomposition, Çekirdek AyrıştırmaMerkeziyet Analizi (Degree, Betweenness, Eigenvector), node centrality, centrality measures, graph centrality
Seotud35
Kokkuvõtek-Core Decomposition is a graph-theoretic method that partitions the vertices of a network into a nested sequence of subgraphs called k-cores. A k-core is the maximal subgraph in which every vertex has at least k neighbors within that subgraph. Introduced by Stephen B. Seidman in 1983, the method assigns each vertex a coreness number that captures its structural centrality relative to the local connectivity of the graph.Centrality analysis is a family of network-analytic measures, formalized by Freeman (1979), that quantifies the structural importance of individual nodes within a graph. Each centrality index captures a distinct mechanism of influence: degree centrality reflects direct connectivity, betweenness centrality identifies nodes that broker information flow, closeness centrality captures proximity to all others, and eigenvector centrality (along with PageRank) rewards connection to highly connected neighbors.
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ScholarGateVõrdle meetodeid: k-Core Decomposition · Centrality Analysis. Loetud 2026-06-17 aadressilt https://scholargate.app/et/compare