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PageRank דינמי×מרכזיות ביניים (Betweenness Centrality)×
תחוםניתוח רשתותניתוח רשתות
משפחהMachine learningMachine learning
שנת המקור2007–20161977
הוגה השיטהRozenshtein, P. & Gionis, A. (formalized); Page, L. & Brin, S. for base PageRankFreeman, L. C.
סוגCentrality / ranking algorithmCentrality measure
מקור מכונןRozenshtein, P., & Gionis, A. (2016). Temporal PageRank. In Proceedings of the European Conference on Machine Learning and Principles and Practice of Knowledge Discovery in Databases (ECML PKDD), Lecture Notes in Computer Science, 9853, 674–689. Springer. DOI ↗Freeman, L. C. (1977). A set of measures of centrality based on betweenness. Sociometry, 40(1), 35–41. DOI ↗
כינוייםTemporal PageRank, time-aware PageRank, evolving PageRank, DPRFreeman betweenness, BC, geodesic betweenness, shortest-path betweenness
קשורות66
תקצירDynamic PageRank extends the classic PageRank algorithm to networks whose edges carry timestamps, assigning importance scores that evolve over time. By discounting older links and emphasising recent connections, it identifies nodes that are influential at specific moments rather than across the entire network history, making it well-suited for web archives, citation streams, social media cascades, and any domain where link recency matters.Betweenness centrality, formalized by Linton C. Freeman in 1977, measures how often a node lies on the shortest path connecting every other pair of nodes in a network. High-betweenness nodes act as bridges or brokers: removing them fragments the network into disconnected components more severely than removing any other nodes.
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ScholarGateהשוואת שיטות: Dynamic PageRank · Betweenness Centrality. אוחזר בתאריך 2026-06-17 מתוך https://scholargate.app/he/compare