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IRISA at SMM4H 2018: Neural Network and Bagging for Tweet Classification

机译:IRISA在SMM4H 2018:神经网络和Tweet分类的袋装

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This paper describes the systems developed by IRISA to participate to the four tasks of the SMM4H 2018 challenge. For these tweet classification tasks, we adopt a common approach based on recurrent neural networks (BiLSTM). Our main contributions are the use of certain features, the use of Bagging in order to deal with unbalanced datasets, and on the automatic selection of difficult examples. These techniques allow us to reach 91.4, 46.5, 47.8, 85.0 as F1-scores for Tasks 1 to 4.
机译:本文介绍了IRISA开发的系统参与SMM4H 2018 2018挑战的四项任务。对于这些推文分类任务,我们采用了一种基于经常性神经网络(Bilstm)的常见方法。我们的主要贡献是使用某些功能,使用装袋以处理不平衡的数据集,并在自动选择困难的例子。这些技术允许我们达到91.4,46.5,47.8,85.0作为任务1至4的F1分数。

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