Improving Named Entity Recognition in Tor Darknet with Local Distance Neighbor Feature
May 18, 2020 ยท Declared Dead ยท ๐ arXiv.org
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Authors
Mhd Wesam Al-Nabki, Francisco Jaรฑez-Martino, Roberto A. Vasco-Carofilis, Eduardo Fidalgo, Javier Velasco-Mata
arXiv ID
2005.08746
Category
cs.CL: Computation & Language
Cross-listed
cs.CV
Citations
2
Venue
arXiv.org
Last Checked
5 months ago
Abstract
Name entity recognition in noisy user-generated texts is a difficult task usually enhanced by incorporating an external resource of information, such as gazetteers. However, gazetteers are task-specific, and they are expensive to build and maintain. This paper adopts and improves the approach of Aguilar et al. by presenting a novel feature, called Local Distance Neighbor, which substitutes gazetteers. We tested the new approach on the W-NUT-2017 dataset, obtaining state-of-the-art results for the Group, Person and Product categories of Named Entities. Next, we added 851 manually labeled samples to the W-NUT-2017 dataset to account for named entities in the Tor Darknet related to weapons and drug selling. Finally, our proposal achieved an entity and surface F1 scores of 52.96% and 50.57% on this extended dataset, demonstrating its usefulness for Law Enforcement Agencies to detect named entities in the Tor hidden services.
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