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Modeling Global Syntactic Variation in English Using Dialect Classification

机译:使用方言分类为英语建模全局句法变化

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摘要

This paper evaluates global-scale dialect identification for 14 national varieties of English as a means for studying syntactic variation. The paper makes three main contributions: (i) introducing data-driven language mapping as a method for selecting the inventory of national varieties to include in the task; (ii) producing a large and dynamic set of syntactic features using grammar induction rather than focusing on a few hand-selected features such as function words; and (iii) comparing models across both web corpora and social media corpora in order to measure the robustness of syntactic variation across registers.
机译:本文评估了14个国家英语变体的全球范围方言识别,以此作为研究语法变异的一种手段。本文做出了三个主要贡献:(i)引入数据驱动的语言映射作为选择要纳入任务的国家品种清单的一种方法; (ii)使用语法归纳法而不是专注于一些手动选择的特征(例如功能词)来产生大量动态的句法特征; (iii)比较网络语料库和社交媒体语料库中的模型,以衡量跨寄存器的语法变化的稳健性。

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