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Mining Symptoms of Severe Mood Disorders in Large Internet Communities

Authors :
Taridzo Chomutare
Gunnar Hartvigsen
Eirik Årsand
Source :
CBMS
Publication Year :
2015
Publisher :
IEEE, 2015.

Abstract

Internet communities have become an important source of support for people with chronic illnesses such as diabetes and obesity, both of which have been associated with depression. In this paper, we argue text classification as promising tool for mining mood disorder cues from Internet chat messages. We created a minimal corpus of 200 chat profiles, based on a disease classification system, ICD-10 diagnostic criteria, and DSM-IV depression definitions. Using significant grams, we trained and tested multiple classifiers on the corpus, with additional evaluation on unlabelled data. Current findings demonstrate the feasibility of scalable flagging of patients who areat risk of developing severe depression in large Internet health communities.

Details

Database :
OpenAIRE
Journal :
2015 IEEE 28th International Symposium on Computer-Based Medical Systems
Accession number :
edsair.doi...........82128d627b540d75f2a88f34d536588d
Full Text :
https://doi.org/10.1109/cbms.2015.36