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Language Independent NER using a Unified Model of Internal and Contextual Evidence

机译:语言独立网上使用内部和上下文证据的统一模型

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This paper investigates the use of a language independent model for named entity recognition based on iterative learning in a co-training fashion, using word-internal and contextual information as independent evidence sources. Its bootstrapping process begins with only seed entities and seed contexts extracted from the provided annotated corpus. F-measure exceeds 77 in Spanish and 72 in Dutch.
机译:本文根据协同培训时尚的迭代学习,研究了语言独立模型的使用,以迭代学习,使用单词内部和上下文信息作为独立证据来源。其自动启动过程仅始于从提供的注释语料库中提取的种子实体和种子上下文。 F措施超过了西班牙语和荷兰语72的77。

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