KPI-EDGAR: A Novel Dataset and Accompanying Metric for Relation Extraction from Financial Documents
October 17, 2022 ยท Declared Dead ยท ๐ International Conference on Machine Learning and Applications
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Authors
Tobias Deuรer, Syed Musharraf Ali, Lars Hillebrand, Desiana Nurchalifah, Basil Jacob, Christian Bauckhage, Rafet Sifa
arXiv ID
2210.09163
Category
cs.CL: Computation & Language
Citations
20
Venue
International Conference on Machine Learning and Applications
Last Checked
4 months ago
Abstract
We introduce KPI-EDGAR, a novel dataset for Joint Named Entity Recognition and Relation Extraction building on financial reports uploaded to the Electronic Data Gathering, Analysis, and Retrieval (EDGAR) system, where the main objective is to extract Key Performance Indicators (KPIs) from financial documents and link them to their numerical values and other attributes. We further provide four accompanying baselines for benchmarking potential future research. Additionally, we propose a new way of measuring the success of said extraction process by incorporating a word-level weighting scheme into the conventional F1 score to better model the inherently fuzzy borders of the entity pairs of a relation in this domain.
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