One Graph to Rule them All: Using NLP and Graph Neural Networks to analyse Tolkien's Legendarium

October 14, 2022 ยท Declared Dead ยท ๐Ÿ› Workshop on Computational Humanities Research

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Authors Vincenzo Perri, Lisi Qarkaxhija, Albin Zehe, Andreas Hotho, Ingo Scholtes arXiv ID 2210.07871 Category cs.CL: Computation & Language Cross-listed cs.AI Citations 7 Venue Workshop on Computational Humanities Research Last Checked 5 months ago
Abstract
Natural Language Processing and Machine Learning have considerably advanced Computational Literary Studies. Similarly, the construction of co-occurrence networks of literary characters, and their analysis using methods from social network analysis and network science, have provided insights into the micro- and macro-level structure of literary texts. Combining these perspectives, in this work we study character networks extracted from a text corpus of J.R.R. Tolkien's Legendarium. We show that this perspective helps us to analyse and visualise the narrative style that characterises Tolkien's works. Addressing character classification, embedding and co-occurrence prediction, we further investigate the advantages of state-of-the-art Graph Neural Networks over a popular word embedding method. Our results highlight the large potential of graph learning in Computational Literary Studies.
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