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Quantification of network structural dissimilarities

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10.1038/ncomms13928
 
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hdl:2117/100483

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Schieber, Tiabo A.
Carpi, Laura
Díaz Guilera, Albert
Pardalos, Panos M.
Masoller Alonso, CristinaMés informacióMés informacióMés informació
Ravetti, Martin G.
Document typeArticle
Defense date2017-01-09
Rights accessOpen Access
Attribution-NonCommercial-NoDerivs 3.0 Spain
This work is protected by the corresponding intellectual and industrial property rights. Except where otherwise noted, its contents are licensed under a Creative Commons license : Attribution-NonCommercial-NoDerivs 3.0 Spain
Abstract
Identifying and quantifying dissimilarities among graphs is a fundamental and challenging problem of practical importance in many fields of science. Current methods of network comparison are limited to extract only partial information or are computationally very demanding. Here we propose an efficient and precise measure for network comparison, which is based on quantifying differences among distance probability distributions extracted from the networks. Extensive experiments on synthetic and real-world networks show that this measure returns non-zero values only when the graphs are non-isomorphic. Most importantly, the measure proposed here can identify and quantify structural topological differences that have a practical impact on the information flow through the network, such as the presence or absence of critical links that connect or disconnect connected components.
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© 2017. This version is made available under the CC-BY-NC-ND 4.0 license http://creativecommons.org/licenses/by-nc-nd/4.0/
CitationSchieber, T.A., Carpi, L., Díaz-Guilera, A., Pardalos, P.M., Masoller, C., Ravetti, M.G. Quantification of network structural dissimilarities. "Nature communications", 9 Gener 2017, vol. 8, p. 1-10. 
URIhttp://hdl.handle.net/2117/100483
DOI10.1038/ncomms13928
ISSN2041-1723
Publisher versionhttp://www.nature.com/articles/ncomms13928
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