2024
DOI: 10.3389/fpubh.2024.1334881
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Measuring the performance of computer vision artificial intelligence to interpret images of HIV self-testing results

Stephanie D. Roche,
Obinna I. Ekwunife,
Rouella Mendonca
et al.

Abstract: IntroductionHIV self-testing (HIVST) is highly sensitive and specific, addresses known barriers to HIV testing (such as stigma), and is recommended by the World Health Organization as a testing option for the delivery of HIV pre-exposure prophylaxis (PrEP). Nevertheless, HIVST remains underutilized as a diagnostic tool in community-based, differentiated HIV service delivery models, possibly due to concerns about result misinterpretation, which could lead to inadvertent onward transmission of HIV, delays in ant… Show more

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Cited by 6 publications
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“…Artificial intelligence (AI) is more widely used by health researchers to analyze large amounts of data, including social media data and electronic health records (EHR). In regard to HIV, AI has been used to make predictions of HIV outbreak locations or clusters, develop prevention or treatment interventions, optimize long-term maintenance dosing of medication, encourage medication uptake, and enhance counseling outcomes [2][3][4][5].…”
Section: Introductionmentioning
confidence: 99%
“…Artificial intelligence (AI) is more widely used by health researchers to analyze large amounts of data, including social media data and electronic health records (EHR). In regard to HIV, AI has been used to make predictions of HIV outbreak locations or clusters, develop prevention or treatment interventions, optimize long-term maintenance dosing of medication, encourage medication uptake, and enhance counseling outcomes [2][3][4][5].…”
Section: Introductionmentioning
confidence: 99%