FBM: Combining lexicon-based ML and heuristics for Social Media Polarities

نویسندگان

  • Carlos Rodríguez Penagos
  • Jordi Atserias Batalla
  • Joan Codina-Filbà
  • David García Narbona
  • Jens Grivolla
  • Patrik Lambert
  • Roser Saurí
چکیده

This paper describes the system implemented by Fundació Barcelona Media (FBM) for classifying the polarity of opinion expressions in tweets and SMSs, and which is supported by a UIMA pipeline for rich linguistic and sentiment annotations. FBM participated in the SEMEVAL 2013 Task 2 on polarity classification. It ranked 5th in Task A (constrained track) using an ensemble system combining ML algorithms with dictionary-based heuristics, and 7th (Task B, constrained) using an SVM classifier with features derived from the linguistic annotations and some heuristics.

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تاریخ انتشار 2013