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Language clusters based on linguistic complex networks
Authors:HaiTao Liu  WenWen Li
Institution:1 School of International Studies, Zhejiang University, Hangzhou 310058, China; 
2 Institute of Applied Linguistics, Communication University of China, Beijing 100024, China
Abstract:To investigate the feasibility of using complex networks in the study of linguistic typology, this paper builds and explores 15 lin-guistic complex networks based on the dependency syntactic treebanks of 15 languages. The results show that it is possible to classify human languages by means of the following main parameters of complex networks: (a) average degree of the node, (b) cluster coefficients, (c) average path length, (d) network centralization, (e) diameter, (f) power exponent of degree distribution, and (g) the determination coefficient of power law distributions. The precision of this method is similar to the results achieved by means of modern word order typology. This paper tries to solve two problems of current linguistic typology. First, the language sample of a typological study is not real text; second, typological studies pay too much attention to local language structures in the course of choosing typological parameters. This study performs better in global typological features of language and not only enhances typological methods, but it is also valuable for developing the applications of complex networks in the humanities, social, and life sciences.
Keywords:complex networks  linguistic typology  language network  syntactic dependency network  cluster analysis  language classification
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