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| Kinh tế lượng mạng (Hiệu ứng ngang hàng)× | Phân tích Trung tâm× | |
|---|---|---|
| Lĩnh vực≠ | Kinh tế lượng | Phân tích mạng lưới |
| Họ≠ | Regression model | Process / pipeline |
| Năm ra đời≠ | 2009 | 1979 |
| Người khởi xướng≠ | Yann Bramoullé, Habiba Djebbari & Bernard Fortin | Linton C. Freeman |
| Loại≠ | Linear-in-means peer effects regression | Descriptive / exploratory network measure family |
| Công trình gốc≠ | Bramoullé, Y., Djebbari, H., & Fortin, B. (2009). Identification of peer effects through social networks. Journal of Econometrics, 150(1), 41–55. DOI ↗ | Freeman, L.C. (1979). Centrality in Social Networks: Conceptual Clarification. Social Networks, 1(3), 215-239. DOI ↗ |
| Tên gọi khác | Social Interactions Model, Peer Effects Model, Social Network Regression, Ağ Ekonometrisi | Merkeziyet Analizi (Degree, Betweenness, Eigenvector), node centrality, centrality measures, graph centrality |
| Liên quan≠ | 3 | 5 |
| Tóm tắt≠ | Network econometrics estimates how individuals' outcomes are causally shaped by the behaviour and characteristics of their social-network neighbours. Formalised by Bramoullé, Djebbari, and Fortin (2009), the framework embeds a row-normalised adjacency matrix into a linear regression, separating endogenous peer effects (imitation of outcomes), exogenous contextual effects (influence of neighbours' attributes), and correlated effects (shared environment), while using network topology to construct valid instruments. | 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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