Enhancing Suicide Risk Detection on Social Media through Semi-Supervised Deep Label Smoothing
Matthew Squires, Xiaohui Tao, Soman Elangovan, U Rajendra Acharya, Raj, Gururajan, Haoran Xie, Xujuan Zhou

TL;DR
This paper introduces a semi-supervised deep label smoothing technique to improve suicide risk detection on social media, addressing uncertainty in mental health data and achieving higher classification accuracy.
Contribution
The work presents a novel label smoothing method tailored for mental health classification, enhancing deep learning performance on uncertain, noisy social media data.
Findings
Improved accuracy from 43% to 52% on Reddit C-SSRS dataset.
Demonstrated effectiveness of semi-supervised label smoothing in mental health classification.
Potential to better support individuals experiencing mental distress.
Abstract
Suicide is a prominent issue in society. Unfortunately, many people at risk for suicide do not receive the support required. Barriers to people receiving support include social stigma and lack of access to mental health care. With the popularity of social media, people have turned to online forums, such as Reddit to express their feelings and seek support. This provides the opportunity to support people with the aid of artificial intelligence. Social media posts can be classified, using text classification, to help connect people with professional help. However, these systems fail to account for the inherent uncertainty in classifying mental health conditions. Unlike other areas of healthcare, mental health conditions have no objective measurements of disease often relying on expert opinion. Thus when formulating deep learning problems involving mental health, using hard, binary labels…
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Taxonomy
TopicsMental Health via Writing
MethodsLabel Smoothing
