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Natural Language Processing (Almost) from Scratch

机译:从零开始的自然语言处理(几乎)

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We propose a unified neural network architecture and learning algorithm that can be applied to various natural language processing tasks including part-of-speech tagging, chunking, named entity recognition, and semantic role labeling. This versatility is achieved by trying to avoid task-specific engineering and therefore disregarding a lot of prior knowledge. Instead of exploiting man-made input features carefully optimized for each task, our system learns internal representations on the basis of vast amounts of mostly unlabeled training data. This work is then used as a basis for building a freely available tagging system with good performance and minimal computational requirements. color="gray">
机译:我们提出了一种统一的神经网络体系结构和学习算法,可将其应用于各种自然语言处理任务,包括词性标注,分块,命名实体识别和语义角色标记。通过尝试避免特定于任务的工程设计并因此忽略了许多先验知识,可以实现这种多功能性。我们的系统没有利用针对每个任务精心优化的人为输入功能,而是基于大量未标记的培训数据来学习内部表示。然后,这项工作将被用作构建具有良好性能和最低计算要求的免费提供的标记系统的基础。 color =“ gray”>

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