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Crowd learning with candidate labeling: An EM-based solution

  • Basque Center for Applied Mathematics
  • University of the Basque Country

Producció científica: Capítol del llibre/Acta del congrésActa de congrésAvaluat per experts

1 Citació (Scopus)

Resum

Crowdsourcing is widely used nowadays in machine learning for data labeling. Although in the traditional case annotators are asked to provide a single label for each instance, novel approaches allow annotators, in case of doubt, to choose a subset of labels as a way to extract more information from them. In both the traditional and these novel approaches, the reliability of the labelers can be modeled based on the collections of labels that they provide. In this paper, we propose an Expectation-Maximization-based method for crowdsourced data with candidate sets. Iteratively the likelihood of the parameters that model the reliability of the labelers is maximized, while the ground truth is estimated. The experimental results suggest that the proposed method performs better than the baseline aggregation schemes in terms of estimated accuracy.

Idioma originalAnglès
Títol de la publicacióAdvances in Artificial Intelligence - 18th Conference of the Spanish Association for Artificial Intelligence, CAEPIA 2018, Proceedings
EditorsAntonio Gonzalez, Alicia Troncoso, Francisco Herrera, Sergio Damas, Rosana Montes, Sergio Alonso, Oscar Cordon
EditorSpringer Verlag
Pàgines13-23
Nombre de pàgines11
ISBN (imprès)9783030003739
DOIs
Estat de la publicacióData de publicació - 2018
Publicat externament
Esdeveniment18th Conference of the Spanish Association for Artificial Intelligence, CAEPIA 2018 - Granada, Espanya
Durada: 23 d’oct. 201826 d’oct. 2018

Sèrie de publicacions

NomLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Volum11160 LNAI
ISSN (imprès)0302-9743
ISSN (electrònic)1611-3349

Congrés

Congrés18th Conference of the Spanish Association for Artificial Intelligence, CAEPIA 2018
País/TerritoriEspanya
CiutatGranada
Període23/10/1826/10/18

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