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Automatic Classification of Poetry by Meter and Rhyme

机译:用米和押韵自动分类诗歌

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摘要

In this paper, we focus on large scale poetry classification by meter. We repurposed an open source poetry scanning program (the Scandroid by Charles O. Hartman) as a feature extractor. Our machine learning experiments show a useful ability to classify poems by poetic meter. We also made our own rhyme detector using the Carnegie Melon University Pronouncing Dictionary as our primary source of pronunciation information. Future work will involve classifying rhyme and assembling a graph (or graphs) as part of the Graph Poem Project depicting the interconnected nature of poetry across history, geography, genre, etc.
机译:在本文中,我们专注于米的大规模诗歌分类。我们重新浏览了一个开源诗歌扫描程序(Charles O. Hartman的Scandroid)作为特征提取器。我们的机器学习实验表明了诗歌仪表分类诗歌的有用能力。我们还使用Carnegie Melon Universy发表词典作为我们的主要发音信息来源的押韵探测器。未来的工作将涉及分类押韵并将图形(或图形)组装为图诗歌项目的一部分,描绘了历史,地理,类型等诗歌的互联性质。

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