Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.

Suicide is the 10th leading cause of death in the U.S (1999-2019). However, predicting when someone will attempt suicide has been nearly impossible. In the modern world, many individuals suffering from mental illness seek emotional support and advice on well-known and easily-accessible social media...

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Main Authors: Manas Gaur, Vamsi Aribandi, Amanuel Alambo, Ugur Kursuncu, Krishnaprasad Thirunarayan, Jonathan Beich, Jyotishman Pathak, Amit Sheth
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2021-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0250448
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spelling doaj-fa94c676e0fb4d87abaab5e71fe46ae22021-06-01T04:30:30ZengPublic Library of Science (PLoS)PLoS ONE1932-62032021-01-01165e025044810.1371/journal.pone.0250448Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.Manas GaurVamsi AribandiAmanuel AlamboUgur KursuncuKrishnaprasad ThirunarayanJonathan BeichJyotishman PathakAmit ShethSuicide is the 10th leading cause of death in the U.S (1999-2019). However, predicting when someone will attempt suicide has been nearly impossible. In the modern world, many individuals suffering from mental illness seek emotional support and advice on well-known and easily-accessible social media platforms such as Reddit. While prior artificial intelligence research has demonstrated the ability to extract valuable information from social media on suicidal thoughts and behaviors, these efforts have not considered both severity and temporality of risk. The insights made possible by access to such data have enormous clinical potential-most dramatically envisioned as a trigger to employ timely and targeted interventions (i.e., voluntary and involuntary psychiatric hospitalization) to save lives. In this work, we address this knowledge gap by developing deep learning algorithms to assess suicide risk in terms of severity and temporality from Reddit data based on the Columbia Suicide Severity Rating Scale (C-SSRS). In particular, we employ two deep learning approaches: time-variant and time-invariant modeling, for user-level suicide risk assessment, and evaluate their performance against a clinician-adjudicated gold standard Reddit corpus annotated based on the C-SSRS. Our results suggest that the time-variant approach outperforms the time-invariant method in the assessment of suicide-related ideations and supportive behaviors (AUC:0.78), while the time-invariant model performed better in predicting suicide-related behaviors and suicide attempt (AUC:0.64). The proposed approach can be integrated with clinical diagnostic interviews for improving suicide risk assessments.https://doi.org/10.1371/journal.pone.0250448
collection DOAJ
language English
format Article
sources DOAJ
author Manas Gaur
Vamsi Aribandi
Amanuel Alambo
Ugur Kursuncu
Krishnaprasad Thirunarayan
Jonathan Beich
Jyotishman Pathak
Amit Sheth
spellingShingle Manas Gaur
Vamsi Aribandi
Amanuel Alambo
Ugur Kursuncu
Krishnaprasad Thirunarayan
Jonathan Beich
Jyotishman Pathak
Amit Sheth
Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.
PLoS ONE
author_facet Manas Gaur
Vamsi Aribandi
Amanuel Alambo
Ugur Kursuncu
Krishnaprasad Thirunarayan
Jonathan Beich
Jyotishman Pathak
Amit Sheth
author_sort Manas Gaur
title Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.
title_short Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.
title_full Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.
title_fullStr Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.
title_full_unstemmed Characterization of time-variant and time-invariant assessment of suicidality on Reddit using C-SSRS.
title_sort characterization of time-variant and time-invariant assessment of suicidality on reddit using c-ssrs.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2021-01-01
description Suicide is the 10th leading cause of death in the U.S (1999-2019). However, predicting when someone will attempt suicide has been nearly impossible. In the modern world, many individuals suffering from mental illness seek emotional support and advice on well-known and easily-accessible social media platforms such as Reddit. While prior artificial intelligence research has demonstrated the ability to extract valuable information from social media on suicidal thoughts and behaviors, these efforts have not considered both severity and temporality of risk. The insights made possible by access to such data have enormous clinical potential-most dramatically envisioned as a trigger to employ timely and targeted interventions (i.e., voluntary and involuntary psychiatric hospitalization) to save lives. In this work, we address this knowledge gap by developing deep learning algorithms to assess suicide risk in terms of severity and temporality from Reddit data based on the Columbia Suicide Severity Rating Scale (C-SSRS). In particular, we employ two deep learning approaches: time-variant and time-invariant modeling, for user-level suicide risk assessment, and evaluate their performance against a clinician-adjudicated gold standard Reddit corpus annotated based on the C-SSRS. Our results suggest that the time-variant approach outperforms the time-invariant method in the assessment of suicide-related ideations and supportive behaviors (AUC:0.78), while the time-invariant model performed better in predicting suicide-related behaviors and suicide attempt (AUC:0.64). The proposed approach can be integrated with clinical diagnostic interviews for improving suicide risk assessments.
url https://doi.org/10.1371/journal.pone.0250448
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