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Detecting People Interested in Non-Suicidal Self-Injury on Social Media
Published 10 Jul 2022 in cs.SI and cs.LG | (2207.07014v1)
Abstract: We propose a supervised learning approach to detect people interested in Non-Suicidal Self-Injury (NSSI). We treat the task as a binary classification problem, and build classifiers based upon features extracted from people self-declared interests. Experimental evaluation on a real-world dataset, the LiveJournal social blogging networking platform, demonstrates the effectiveness of our proposed model.
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