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Accepted for/Published in: JMIR Research Protocols

Date Submitted: Apr 6, 2018
Open Peer Review Period: Apr 7, 2018 - Jun 27, 2018
Date Accepted: Sep 27, 2018
(closed for review but you can still tweet)

The final, peer-reviewed published version of this preprint can be found here:

Predicting Prediabetes Through Facebook Postings: Protocol for a Mixed-Methods Study

Xu X, Litchman ML, Gee PM, Whatcott W, Chacon L, Holmes J, Srinivasan SS

Predicting Prediabetes Through Facebook Postings: Protocol for a Mixed-Methods Study

JMIR Res Protoc 2018;7(12):e10720

DOI: 10.2196/10720

PMID: 30552084

PMCID: 6315248

Warning: This is an author submission that is not peer-reviewed or edited. Preprints - unless they show as "accepted" - should not be relied on to guide clinical practice or health-related behavior and should not be reported in news media as established information.

Predicting Prediabetes Through Facebook Postings: Protocol for a Mixed-Methods Study

  • Xiaomeng Xu; 
  • Michelle L Litchman; 
  • Perry M Gee; 
  • Webb Whatcott; 
  • Loni Chacon; 
  • John Holmes; 
  • Sankara Subramanian Srinivasan

Background:

The field of infodemiology uses health care trends found in public networks, such as social media, to track and quantify the spread of disease. Type 2 diabetes is on the rise worldwide, and social media may be useful in identifying prediabetes through behavior exhibited through social media platforms such as Facebook and thus in designing and administering early interventions and containing further progression of the disease.

Objective:

This pilot study is designed to investigate the social media behavior of individuals with prediabetes, before and after diagnosis. Pre- and postdiagnosis Facebook content (posts) of such individuals will be used to create a taxonomy of prediabetes indicators and to identify themes and factors associated with an actual diagnosis of prediabetes.

Methods:

This is a single-center exploratory retrospective study that examines 20 adults with prediabetes. The investigators will code Facebook posts 3 months before through 3 months after prediabetes diagnosis. Data will be analyzed using both qualitative content analysis methodology as well as quantitative methodology to characterize participants and compare their posts pre- and postdiagnosis.

Results:

The project was funded for 2015-2018, and enrollment will be completed by the end of 2018. Data coding is currently under way and the first results are expected to be submitted for publication in 2019. Results will include both quantitative and qualitative data about participants and the similarities and differences between coded social media posts.

Conclusions:

This pilot study is the first step in creating a taxonomy of social media indicators for prediabetes. Such a taxonomy would provide a tool for researchers and health care professionals to use social media postings for identifying those at greater risk of having prediabetes.

International Registered Report:

DERR1-10.2196/10720


 Citation

Please cite as:

Xu X, Litchman ML, Gee PM, Whatcott W, Chacon L, Holmes J, Srinivasan SS

Predicting Prediabetes Through Facebook Postings: Protocol for a Mixed-Methods Study

JMIR Res Protoc 2018;7(12):e10720

DOI: 10.2196/10720

PMID: 30552084

PMCID: 6315248

Per the author's request the PDF is not available.

© The authors. All rights reserved. This is a privileged document currently under peer-review/community review (or an accepted/rejected manuscript). Authors have provided JMIR Publications with an exclusive license to publish this preprint on it's website for review and ahead-of-print citation purposes only. While the final peer-reviewed paper may be licensed under a cc-by license on publication, at this stage authors and publisher expressively prohibit redistribution of this draft paper other than for review purposes.