Normalized mutual information (NMI) is a widely used measure to compare community detection methods. Recently, however, the need of adjustment for information theoretic based measures has been argued because of their tendency in choosing clustering solutions with more communities. In this paper an experimental evaluation is performed to investigate this problem, and an adjustment that scales the values of NMI is proposed. Experiments on synthetic generated networks highlight the unbiased behavior of scaled NMI.

Is Normalized Mutual Information a Fair Measure for Comparing Community Detection Methods?

Alessia Amelio;Clara Pizzuti
2015

Abstract

Normalized mutual information (NMI) is a widely used measure to compare community detection methods. Recently, however, the need of adjustment for information theoretic based measures has been argued because of their tendency in choosing clustering solutions with more communities. In this paper an experimental evaluation is performed to investigate this problem, and an adjustment that scales the values of NMI is proposed. Experiments on synthetic generated networks highlight the unbiased behavior of scaled NMI.
2015
Istituto di Calcolo e Reti ad Alte Prestazioni - ICAR
Inglese
IEEE/ACM International Conference on Advances in Social Networks Analysis and Mining, ASONAM 2015. ACM 2015, ISBN 978-1-4503-3854-7
1584
1585
2
Sì, ma tipo non specificato
August 25 - 28, 2015
Paris, France
Community detection
normalized mutual information
none
info:eu-repo/semantics/conferenceObject
Alessia Amelio; Clara Pizzuti
275
04 Contributo in convegno::04.03 Poster in Atti di convegno
2
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/305338
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