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A comparison of extrinsic clustering evaluation metrics based on formal constraints

Full Title
A comparison of extrinsic clustering evaluation metrics based on formal constraints
Description

There is a wide set of evaluation metrics available to compare the quality of text clustering algorithms. In this article, we define a few intuitive formal constraints on such metrics which shed light on which aspects of the quality of a clustering are captured by different metric families. These formal constraints are validated in an experiment involving human assessments, and compared with other constraints proposed in the literature. Our analysis of a wide range of metrics shows that only BCubed satisfies all formal constraints. We also extend the analysis to the problem of overlapping clustering, where items can simultaneously belong to more than one cluster. As Bcubed cannot be directly applied to this task, we propose a modified version of Bcubed that avoids the problems found with other metrics.

Location
https://hdl.handle.net/20.500.14468/19990

Authorship & License

Author
Amigo Cabrera, Enrique
Gonzalo Arroyo, Julio Antonio
License Rights
BY-NC-ND
Público

Academic Information

School
Escuela Téc. Sup. de Ingeniería Informática

Attached Resources

icono
Articulo en revista cientifica publico Creative Commons: reconocimiento - sin obra derivada - no comercial

Resource Card

Model
Artículo En Revista Científica
Collection
Investigacion
Publication Repository
e-Spacio
Language Repo
Inglés
Update Date
Tue, 05/21/2024 - 12:00
Creation Date
Mon, 05/11/2009 - 12:00

Tags

Accessibility

https://fcrepo.repositoriodigital.inteccauned.es/fcrepo/rest/24/03/79/0f/2403790f-2cb6-4ef5-96d3-dee1a9126645
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