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Using A Finetuned Large Language Model For Symptombased Depression Evaluation Samantha Weber Nicolas Deperrois Robert Heun Laura Frühschütz Anna Monn Stephanie Homan Andrea Häfliger Erich Seifritz Tobias Kowatsch Lena Jäger Katharina Schultebraucks Sapir Gershov Jacopo Mocellin Birgit Kleim Sebastian

  • SKU: BELL-239629024
Using A Finetuned Large Language Model For Symptombased Depression Evaluation Samantha Weber Nicolas Deperrois Robert Heun Laura Frühschütz Anna Monn Stephanie Homan Andrea Häfliger Erich Seifritz Tobias Kowatsch Lena Jäger Katharina Schultebraucks Sapir Gershov Jacopo Mocellin Birgit Kleim Sebastian
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Using A Finetuned Large Language Model For Symptombased Depression Evaluation Samantha Weber Nicolas Deperrois Robert Heun Laura Frühschütz Anna Monn Stephanie Homan Andrea Häfliger Erich Seifritz Tobias Kowatsch Lena Jäger Katharina Schultebraucks Sapir Gershov Jacopo Mocellin Birgit Kleim Sebastian instant download after payment.

Publisher: x
File Extension: PDF
File size: 2.4 MB
Author: Samantha Weber & Nicolas Deperrois & Robert Heun & Laura Frühschütz & Anna Monn & Stephanie Homan & Andrea Häfliger & Erich Seifritz & Tobias Kowatsch & Lena Jäger & Katharina Schultebraucks & Sapir Gershov & Jacopo Mocellin & Birgit Kleim & Sebastian...
Language: English
Year: 2025

Product desciption

Using A Finetuned Large Language Model For Symptombased Depression Evaluation Samantha Weber Nicolas Deperrois Robert Heun Laura Frühschütz Anna Monn Stephanie Homan Andrea Häfliger Erich Seifritz Tobias Kowatsch Lena Jäger Katharina Schultebraucks Sapir Gershov Jacopo Mocellin Birgit Kleim Sebastian by Samantha Weber & Nicolas Deperrois & Robert Heun & Laura Frühschütz & Anna Monn & Stephanie Homan & Andrea Häfliger & Erich Seifritz & Tobias Kowatsch & Lena Jäger & Katharina Schultebraucks & Sapir Gershov & Jacopo Mocellin & Birgit Kleim & Sebastian... instant download after payment.

npj Digital Medicine, doi:10.1038/s41746-025-01982-8

Recent advances in artificial intelligence, particularly large language models (LLMs), show promise formental health applications, including the automated detection of depressive symptoms from natural1234567890():,;1234567890():,;language. We fine-tuned a German BERT-based LLM to predict individual Montgomery-ÅsbergDepression Rating Scale (MADRS) scores using a regression approach across different symptomitems (0–6 severity scale), based on structured clinical interviews with transdiagnostic patients as wellas synthetically generated interviews. The fine-tuned model achieved a mean absolute error of 0.7–1.0across items, with accuracies ranging from 79 to 88%, closely matching clinician ratings. Fine-tuningresulted in a 75% reduction in prediction errors relative to the untrained model. These findingsdemonstrate the potential of lightweight LLMs to accurately assess depressive symptom severity,offering a scalable tool for clinical decision-making, and monitoring treatment progress, particularly inlow-resource settings.