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Tackling the Challenge of Computational Identification of Characters in Fictional Narratives

机译:应对小说叙事中的人物计算识别的挑战

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This paper focuses on the computational identification of characters in fictional narratives, regardless of their nature, i.e., either humans, animals or other type of beings. We approach this problem as a supervised binary classification task, whether or not a noun in a narrative -specifically in a fairy taleis classified as a character. A wide range of Machine Learning algorithms and configurations were tested in order to come up with the most appropriate model (or set of models) to successfully fulfil this task. Despite the challenges associated with the character identification in the domain of children stories, the best models obtain an F-Measure above 0.80, proving a good performance and broadly outperforming the baselines.
机译:本文着重于虚构叙事中人物的计算识别,无论其性质如何,即人,动物或其他类型的生物。我们将此问题作为有监督的二进制分类任务,无论是叙事中的名词,尤其是童话故事中被分类为字符的名词。为了提供最合适的模型(或一组模型)来成功完成此任务,对各种机器学习算法和配置进行了测试。尽管在儿童故事领域中与角色识别相关的挑战很大,但最好的模型还是获得了高于0.80的F值,证明了其良好的性能并且在总体上优于基线。

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