Résumé Parsing as Hierarchical Sequence Labeling: An Empirical Study

September 13, 2023 · Declared Dead · 🏛 HR@RecSys

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Authors Federico Retyk, Hermenegildo Fabregat, Juan Aizpuru, Mariana Taglio, Rabih Zbib arXiv ID 2309.07015 Category cs.CL: Computation & Language Cross-listed cs.AI, cs.IR Citations 5 Venue HR@RecSys Last Checked 5 months ago
Abstract
Extracting information from résumés is typically formulated as a two-stage problem, where the document is first segmented into sections and then each section is processed individually to extract the target entities. Instead, we cast the whole problem as sequence labeling in two levels -- lines and tokens -- and study model architectures for solving both tasks simultaneously. We build high-quality résumé parsing corpora in English, French, Chinese, Spanish, German, Portuguese, and Swedish. Based on these corpora, we present experimental results that demonstrate the effectiveness of the proposed models for the information extraction task, outperforming approaches introduced in previous work. We conduct an ablation study of the proposed architectures. We also analyze both model performance and resource efficiency, and describe the trade-offs for model deployment in the context of a production environment.
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