Wikipedia is a huge global repository of human knowledge that can be leveraged to investigate interwinements between cultures. With this aim, we apply methods of Markov chains and Google matrix for the analysis of the hyperlink networks of 24 Wikipedia language editions, and rank all their articles by PageRank, 2DRank and CheiRank algorithms. Using automatic extraction of people names, we obtain the top 100 historical figures, for each edition and for each algorithm. We investigate their spatial, temporal, and gender distributions in dependence of their cultural origins. Our study demonstrates not only the existence of skewness with local figures, mainly recognized only in their own cultures, but also the existence of global historical figures appearing in a large number of editions. By determining the birth time and place of these persons, we perform an analysis of the evolution of such figures through 35 centuries of human history for each language, thus recovering interactions and entanglement of cultures over time. We also obtain the distributions of historical figures over world countries, highlighting geographical aspects of cross-cultural links. Considering historical figures who appear in multiple editions as interactions between cultures, we construct a network of cultures and identify the most influential cultures according to this network.

Interactions of cultures and top people of wikipedia from ranking of 24 language editions / Y. Eom, P. Aragón, D. Laniado, A. Kaltenbrunner, S. Vigna, D.L. Shepelyansky. - In: PLOS ONE. - ISSN 1932-6203. - 10:3(2015), pp. e0114825.1-e0114825.27. [10.1371/journal.pone.0114825]

Interactions of cultures and top people of wikipedia from ranking of 24 language editions

S. Vigna
Penultimo
;
2015

Abstract

Wikipedia is a huge global repository of human knowledge that can be leveraged to investigate interwinements between cultures. With this aim, we apply methods of Markov chains and Google matrix for the analysis of the hyperlink networks of 24 Wikipedia language editions, and rank all their articles by PageRank, 2DRank and CheiRank algorithms. Using automatic extraction of people names, we obtain the top 100 historical figures, for each edition and for each algorithm. We investigate their spatial, temporal, and gender distributions in dependence of their cultural origins. Our study demonstrates not only the existence of skewness with local figures, mainly recognized only in their own cultures, but also the existence of global historical figures appearing in a large number of editions. By determining the birth time and place of these persons, we perform an analysis of the evolution of such figures through 35 centuries of human history for each language, thus recovering interactions and entanglement of cultures over time. We also obtain the distributions of historical figures over world countries, highlighting geographical aspects of cross-cultural links. Considering historical figures who appear in multiple editions as interactions between cultures, we construct a network of cultures and identify the most influential cultures according to this network.
English
Culture; Databases, Factual; Female; Humans; Internet; Language; Male; Markov Chains; Famous Persons; Agricultural and Biological Sciences (all); Biochemistry, Genetics and Molecular Biology (all); Medicine (all)
Settore INF/01 - Informatica
Articolo
Esperti anonimi
Ricerca di base
Pubblicazione scientifica
   New tools and Algorithms for Direct NEtwork analysis
   NADINE
   EUROPEAN COMMISSION
   FP7
   288956
2015
Public Library of Science
10
3
e0114825
1
27
27
Pubblicato
Periodico con rilevanza internazionale
scopus
crossref
pubmed
Aderisco
info:eu-repo/semantics/article
Interactions of cultures and top people of wikipedia from ranking of 24 language editions / Y. Eom, P. Aragón, D. Laniado, A. Kaltenbrunner, S. Vigna, D.L. Shepelyansky. - In: PLOS ONE. - ISSN 1932-6203. - 10:3(2015), pp. e0114825.1-e0114825.27. [10.1371/journal.pone.0114825]
open
Prodotti della ricerca::01 - Articolo su periodico
6
262
Article (author)
no
Y. Eom, P. Aragón, D. Laniado, A. Kaltenbrunner, S. Vigna, D.L. Shepelyansky
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/372423
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