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Predicting therapy outcome in a digital mental health intervention for depression and anxiety: A machine learning approach.

Silvan HornsteinValerie Forman-HoffmanAlbert NazanderKristian RantaKevin Hilbert
Published in: Digital health (2021)
This study provides evidence that social-demographic and clinical variables can be used for machine learning to predict therapy outcomes within the context of a therapist-supported digital mental health intervention. Despite the overall moderate performance, this appears promising as these predictions can potentially improve the outcomes of non-responders by monitoring their progress or by offering alternative or additional treatment.
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