Animacy Detection in Stories

Folgert Karsdorp, M. V. D. Meulen, T. Meder, Antal van den Bosch
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引用次数: 12

Abstract

This paper presents a linguistically uninformed computational model for animacy classification. The model makes use of word n-grams in combination with lower dimensional word embedding representations that are learned from a web-scale corpus. We compare the model to a number of linguistically informed models that use features such as dependency tags and show competitive results. We apply our animacy classifier to a large collection of Dutch folktales to obtain a list of all characters in the stories. We then draw a semantic map of all automatically extracted characters which provides a unique entrance point to the collection.
故事中的动画检测
本文提出了一种语言不知情的动画分类计算模型。该模型将单词n-gram与从网络规模语料库中学习到的较低维单词嵌入表示相结合。我们将该模型与许多使用依赖标签等特征的语言信息模型进行比较,并显示出竞争结果。我们将动画分类器应用于大量的荷兰民间故事集合,以获得故事中所有人物的列表。然后我们绘制所有自动提取的字符的语义图,这为集合提供了一个唯一的入口点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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