Publication | Closed Access
A linked data approach to sentiment and emotion analysis of twitter in the financial domain
15
Citations
20
References
2014
Year
Social Data AnalysisEngineeringBusiness IntelligenceCommunicationSemantic WebEmotion AnalysisMultimodal Sentiment AnalysisCorpus LinguisticsSentiment AnalysisJournalismText MiningNatural Language ProcessingComputational Social ScienceSocial MediaInformation RetrievalData ScienceAffective ComputingLinked DataContent AnalysisData ApproachSocial Medium MiningFinancial DomainSpanish Stock MarketKnowledge DiscoveryFinanceStock MarketSocial Medium DataArts
Sentiment analysis has recently gained popularity in the financial domain thanks to its capability to predict the stock market based on the wisdom of the crowds. Nevertheless, current sentiment indicators are still silos that cannot be combined to get better insight about the mood of different communities. In this article we propose a Linked Data approach for modelling sentiment and emotions about financial entities. We aim at integrating sentiment information from different communities or providers, and complements existing initiatives such as FIBO. The ap- proach has been validated in the semantic annotation of tweets of several stocks in the Spanish stock market, including its sentiment information.
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