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dc.contributor.authorCastro Peña, Juan Luis 
dc.contributor.authorFrancisco Aparicio, Manuel
dc.date.accessioned2024-12-20T07:53:00Z
dc.date.available2024-12-20T07:53:00Z
dc.date.issued2024-06
dc.identifier.citationFrancisco, M. and Castro, J.L. Key work paper “A Methodology to Quickly Perform Opinion Mining and Build Supervised Datasets Using Social Networks Mechanics”. Caepia 2024, XX Conferencia de la Asociación Española para la Inteligencia Artificial, 385-387, 2024.es_ES
dc.identifier.urihttps://hdl.handle.net/10481/98314
dc.description.abstractSocial Networking Sites (SNS) offer a full set of possibilities to perform opinion studies such as polling or market analysis. Normally, artificial intelligence techniques are applied, and they often require supervised datasets. The process of building them is complex, time-consuming and expensive. In this paper, it is proposed to assist the labelling task by taking advantage of social network mechanics. In order to do that, it is introduced the co-retweet relation to build a graph that allows to propagate user labels to their similarity neighbourhood. Therefore, it is possible to build supervised datasets with significant less human effort and with higher accuracy than other weak-supervision techniques. The proposal was tested with 3 datasets labelled by an expert committee, and results showed that it outperforms other weak-supervision techniques. This methodology may be adapted to other social networks and topics, it is relevant for applications like informed decision-making (e.g. content moderation), specially when interpretability is required.es_ES
dc.language.isoenges_ES
dc.publisherCAEPIAes_ES
dc.titleKey work paper “A Methodology to Quickly Perform Opinion Mining and Build Supervised Datasets Using Social Networks Mechanics”es_ES
dc.typeconference outputes_ES
dc.rights.accessRightsopen accesses_ES
dc.type.hasVersionAMes_ES


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