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DS@GT eRisk 2024: Sentence Transformers for Social Media Risk Assessment
July 10, 2024 ยท Declared Dead ยท ๐ Conference and Labs of the Evaluation Forum
Authors
David Guecha, Aaryan Potdar, Anthony Miyaguchi
arXiv ID
2407.08008
Category
cs.CL: Computation & Language
Cross-listed
cs.IR
Citations
3
Venue
Conference and Labs of the Evaluation Forum
Repository
https://github.com/dsgt-kaggle-clef/erisk-2024}
Last Checked
5 months ago
Abstract
We present working notes for DS@GT team in the eRisk 2024 for Tasks 1 and 3. We propose a ranking system for Task 1 that predicts symptoms of depression based on the Beck Depression Inventory (BDI-II) questionnaire using binary classifiers trained on question relevancy as a proxy for ranking. We find that binary classifiers are not well calibrated for ranking, and perform poorly during evaluation. For Task 3, we use embeddings from BERT to predict the severity of eating disorder symptoms based on user post history. We find that classical machine learning models perform well on the task, and end up competitive with the baseline models. Representation of text data is crucial in both tasks, and we find that sentence transformers are a powerful tool for downstream modeling. Source code and models are available at \url{https://github.com/dsgt-kaggle-clef/erisk-2024}.
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