Automated Detection of Cognitive Distortions in Text Exchanges Between Clinicians and People With Serious Mental Illness.

Psychiatr Serv

Behavioral Research in Technology and Engineering Center, Department of Psychiatry and Behavioral Sciences (Tauscher, Chander, Cohen, Ben-Zeev), and Department of Biomedical Informatics and Medical Education (Lybarger, Ding, Cohen), University of Washington, Seattle; Department of Psychological and Brain Sciences, Dartmouth College, Hanover, New Hampshire (Hudenko).

Published: April 2023

AI Article Synopsis

  • The study aimed to see if natural language processing (NLP) can identify cognitive distortions in messages between clinicians and clients with serious mental illness, similar to trained human raters.* -
  • Researchers analyzed over 7,000 text messages, having clinicians label them for distortions like catastrophizing and overgeneralizing, then compared NLP classification methods to these human assessments.* -
  • The best NLP model achieved comparable accuracy to the clinical raters, indicating that NLP could be a valuable tool for scaling automated clinical support in message-based mental health care.*

Article Abstract

Objective: The authors tested whether natural language processing (NLP) methods can detect and classify cognitive distortions in text messages between clinicians and people with serious mental illness as effectively as clinically trained human raters.

Methods: Text messages (N=7,354) were collected from 39 clients in a randomized controlled trial of a 12-week texting intervention. Clinical annotators labeled messages for common cognitive distortions: mental filtering, jumping to conclusions, catastrophizing, "should" statements, and overgeneralizing. Multiple NLP classification methods were applied to the same messages, and performance was compared.

Results: A tuned model that used bidirectional encoder representations from transformers (F1=0.62) achieved performance comparable to that of clinical raters in classifying texts with any distortion (F1=0.63) and superior to that of other models.

Conclusions: NLP methods can be used to effectively detect and classify cognitive distortions in text exchanges, and they have the potential to inform scalable automated tools for clinical support during message-based care for people with serious mental illness.

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Source
http://dx.doi.org/10.1176/appi.ps.202100692DOI Listing

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