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Portuguese Named Entity Recognition Using LSTM-CRF

机译:使用LSTM-CRF的葡萄牙语命名实体识别

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Named Entity Recognition is a challenging Natural Language Processing task for a language as rich as Portuguese. For this task, a Deep Learning architecture based on bidirectional Long Short-Term Memory with Conditional Random Fields has shown state-of-the-art performance for English, Spanish, Dutch and German languages. In this work, we evaluate this architecture and perform the tuning of hyper-parameters for Portuguese corpora. The results achieve state-of-the-art performance using the optimal values for them, improving the results obtained for Portuguese language to up to 5 points in the Fl score.
机译:对于像葡萄牙语这样丰富的语言,命名实体识别是一项具有挑战性的自然语言处理任务。对于此任务,基于带有条件随机字段的双向长期短期记忆的深度学习架构已显示出英语,西班牙语,荷兰语和德语语言的最新性能。在这项工作中,我们评估了这种体系结构,并对葡萄牙语语料库的超参数进行了调整。这些结果使用最佳值获得了最先进的性能,将葡萄牙语获得的结果提高到Fl分数最高5分。

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