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Team Fernando-Pessa at SemEval-2019 Task 4: Back to Basics in Hyperpartisan News Detection

机译:Fernando-Pessa队在Semeval-2019任务4:返回基础知识在Hyperpartisan新闻检测

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This paper describes our submission~1 to the SemEval 2019 Hyperpartisan News Detection task. Our system aims for a linguistics-based document classification from a minimal set of interpretable features, while maintaining good performance. To this goal, we follow a feature-based approach and perform several experiments with different machine learning classifiers. On the main task, our model achieved an accuracy of 71.7%, which was improved after the task's end to 72.9%. We also participate in the meta-learning sub-task, for classifying documents with the binary classifications of all submitted systems as input, achieving an accuracy of 89.9%.
机译:本文介绍了我们的提交〜1到Semeval 2019 HyperPartisan新闻检测任务。我们的系统旨在从最小的可解释功能中的基于语言学的文档分类,同时保持良好的性能。为此,我们遵循基于特征的方法,并使用不同的机器学习分类器执行多个实验。在主要任务上,我们的模型实现了71.7%的准确性,在任务结束到72.9%后得到了改善。我们还参与了元学习子任务,用于将文件分类为所有提交系统的二进制分类作为输入,实现了89.9%的准确性。

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