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Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit

INTRODUCTION: Opioid misuse is a public health crisis in the US, and misuse of synthetic opioids such as fentanyl have driven the most recent waves of opioid-related deaths. Because those who misuse fentanyl are often a hidden and high-risk group, innovative methods for identifying individuals at ri...

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Autores principales: Garg, Sanjana, Taylor, Jordan, El Sherief, Mai, Kasson, Erin, Aledavood, Talayeh, Riordan, Raven, Kaiser, Nina, Cavazos-Rehg, Patricia, De Choudhury, Munmun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8581502/
https://www.ncbi.nlm.nih.gov/pubmed/34804810
http://dx.doi.org/10.1016/j.invent.2021.100467
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author Garg, Sanjana
Taylor, Jordan
El Sherief, Mai
Kasson, Erin
Aledavood, Talayeh
Riordan, Raven
Kaiser, Nina
Cavazos-Rehg, Patricia
De Choudhury, Munmun
author_facet Garg, Sanjana
Taylor, Jordan
El Sherief, Mai
Kasson, Erin
Aledavood, Talayeh
Riordan, Raven
Kaiser, Nina
Cavazos-Rehg, Patricia
De Choudhury, Munmun
author_sort Garg, Sanjana
collection PubMed
description INTRODUCTION: Opioid misuse is a public health crisis in the US, and misuse of synthetic opioids such as fentanyl have driven the most recent waves of opioid-related deaths. Because those who misuse fentanyl are often a hidden and high-risk group, innovative methods for identifying individuals at risk for fentanyl misuse are needed. Machine learning has been used in the past to investigate discussions surrounding substance use on Reddit, and this study leverages similar techniques to identify risky content from discussions of fentanyl on this platform. METHODS: A codebook was developed by clinical domain experts with 12 categories indicative of fentanyl misuse risk, and this was used to manually label 391 Reddit posts and comments. Using this data, we built machine learning classification models to identify fentanyl risk. RESULTS: Our machine learning risk model was able to detect posts or comments labeled as risky by our clinical experts with 76% accuracy and 76% sensitivity. Furthermore, we provide a vocabulary of community-specific, colloquial words for fentanyl and its analogues. DISCUSSION: This study uses an interdisciplinary approach leveraging machine learning techniques and clinical domain expertise to automatically detect risky discourse, which may elicit and benefit from timely intervention. Moreover, our vocabulary of online terms for fentanyl and its analogues expands our understanding of online “street” nomenclature for opiates. Through an improved understanding of substance misuse risk factors, these findings allow for identification of risk concepts among those misusing fentanyl to inform outreach and intervention strategies tailored to this at-risk group.
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spelling pubmed-85815022021-11-18 Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit Garg, Sanjana Taylor, Jordan El Sherief, Mai Kasson, Erin Aledavood, Talayeh Riordan, Raven Kaiser, Nina Cavazos-Rehg, Patricia De Choudhury, Munmun Internet Interv Full length Article INTRODUCTION: Opioid misuse is a public health crisis in the US, and misuse of synthetic opioids such as fentanyl have driven the most recent waves of opioid-related deaths. Because those who misuse fentanyl are often a hidden and high-risk group, innovative methods for identifying individuals at risk for fentanyl misuse are needed. Machine learning has been used in the past to investigate discussions surrounding substance use on Reddit, and this study leverages similar techniques to identify risky content from discussions of fentanyl on this platform. METHODS: A codebook was developed by clinical domain experts with 12 categories indicative of fentanyl misuse risk, and this was used to manually label 391 Reddit posts and comments. Using this data, we built machine learning classification models to identify fentanyl risk. RESULTS: Our machine learning risk model was able to detect posts or comments labeled as risky by our clinical experts with 76% accuracy and 76% sensitivity. Furthermore, we provide a vocabulary of community-specific, colloquial words for fentanyl and its analogues. DISCUSSION: This study uses an interdisciplinary approach leveraging machine learning techniques and clinical domain expertise to automatically detect risky discourse, which may elicit and benefit from timely intervention. Moreover, our vocabulary of online terms for fentanyl and its analogues expands our understanding of online “street” nomenclature for opiates. Through an improved understanding of substance misuse risk factors, these findings allow for identification of risk concepts among those misusing fentanyl to inform outreach and intervention strategies tailored to this at-risk group. Elsevier 2021-10-20 /pmc/articles/PMC8581502/ /pubmed/34804810 http://dx.doi.org/10.1016/j.invent.2021.100467 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Full length Article
Garg, Sanjana
Taylor, Jordan
El Sherief, Mai
Kasson, Erin
Aledavood, Talayeh
Riordan, Raven
Kaiser, Nina
Cavazos-Rehg, Patricia
De Choudhury, Munmun
Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit
title Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit
title_full Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit
title_fullStr Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit
title_full_unstemmed Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit
title_short Detecting risk level in individuals misusing fentanyl utilizing posts from an online community on Reddit
title_sort detecting risk level in individuals misusing fentanyl utilizing posts from an online community on reddit
topic Full length Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8581502/
https://www.ncbi.nlm.nih.gov/pubmed/34804810
http://dx.doi.org/10.1016/j.invent.2021.100467
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