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Portuguese Named Entity Recognition Using LSTM-CRF

机译:葡萄牙语使用LSTM-CRF命名实体识别

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摘要

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 F1 score.
机译:命名实体识别是一种充满挑战的自然语言处理任务,适用于葡萄牙语的语言。对于此任务,基于双向短期内存的深度学习架构。条件随机字段显示出用于英语,西班牙语,荷兰语和德语语言的最先进的性能。在。这项工作,我们评估此架构,并对葡萄牙语料库进行超级参数进行调整。结果利用它们的最佳价值实现最先进的性能,从而改善葡萄牙语的结果,在F1得分中最多可达5分。

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