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A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays

BACKGROUND: Rapid diagnostic tests (RDTs) are being widely used to manage COVID-19 pandemic. However, many results remain unreported or unconfirmed, altering a correct epidemiological surveillance. OBJECTIVE: Our aim was to evaluate an artificial intelligence–based smartphone app, connected to a clo...

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Autores principales: Bermejo-Peláez, David, Marcos-Mencía, Daniel, Álamo, Elisa, Pérez-Panizo, Nuria, Mousa, Adriana, Dacal, Elena, Lin, Lin, Vladimirov, Alexander, Cuadrado, Daniel, Mateos-Nozal, Jesús, Galán, Juan Carlos, Romero-Hernandez, Beatriz, Cantón, Rafael, Luengo-Oroz, Miguel, Rodriguez-Dominguez, Mario
Formato: Online Artículo Texto
Lenguaje:English
Publicado: JMIR Publications 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9840096/
https://www.ncbi.nlm.nih.gov/pubmed/36265136
http://dx.doi.org/10.2196/38533
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author Bermejo-Peláez, David
Marcos-Mencía, Daniel
Álamo, Elisa
Pérez-Panizo, Nuria
Mousa, Adriana
Dacal, Elena
Lin, Lin
Vladimirov, Alexander
Cuadrado, Daniel
Mateos-Nozal, Jesús
Galán, Juan Carlos
Romero-Hernandez, Beatriz
Cantón, Rafael
Luengo-Oroz, Miguel
Rodriguez-Dominguez, Mario
author_facet Bermejo-Peláez, David
Marcos-Mencía, Daniel
Álamo, Elisa
Pérez-Panizo, Nuria
Mousa, Adriana
Dacal, Elena
Lin, Lin
Vladimirov, Alexander
Cuadrado, Daniel
Mateos-Nozal, Jesús
Galán, Juan Carlos
Romero-Hernandez, Beatriz
Cantón, Rafael
Luengo-Oroz, Miguel
Rodriguez-Dominguez, Mario
author_sort Bermejo-Peláez, David
collection PubMed
description BACKGROUND: Rapid diagnostic tests (RDTs) are being widely used to manage COVID-19 pandemic. However, many results remain unreported or unconfirmed, altering a correct epidemiological surveillance. OBJECTIVE: Our aim was to evaluate an artificial intelligence–based smartphone app, connected to a cloud web platform, to automatically and objectively read RDT results and assess its impact on COVID-19 pandemic management. METHODS: Overall, 252 human sera were used to inoculate a total of 1165 RDTs for training and validation purposes. We then conducted two field studies to assess the performance on real-world scenarios by testing 172 antibody RDTs at two nursing homes and 96 antigen RDTs at one hospital emergency department. RESULTS: Field studies demonstrated high levels of sensitivity (100%) and specificity (94.4%, CI 92.8%-96.1%) for reading IgG band of COVID-19 antibody RDTs compared to visual readings from health workers. Sensitivity of detecting IgM test bands was 100%, and specificity was 95.8% (CI 94.3%-97.3%). All COVID-19 antigen RDTs were correctly read by the app. CONCLUSIONS: The proposed reading system is automatic, reducing variability and uncertainty associated with RDTs interpretation and can be used to read different RDT brands. The web platform serves as a real-time epidemiological tracking tool and facilitates reporting of positive RDTs to relevant health authorities.
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spelling pubmed-98400962023-01-15 A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays Bermejo-Peláez, David Marcos-Mencía, Daniel Álamo, Elisa Pérez-Panizo, Nuria Mousa, Adriana Dacal, Elena Lin, Lin Vladimirov, Alexander Cuadrado, Daniel Mateos-Nozal, Jesús Galán, Juan Carlos Romero-Hernandez, Beatriz Cantón, Rafael Luengo-Oroz, Miguel Rodriguez-Dominguez, Mario JMIR Public Health Surveill Original Paper BACKGROUND: Rapid diagnostic tests (RDTs) are being widely used to manage COVID-19 pandemic. However, many results remain unreported or unconfirmed, altering a correct epidemiological surveillance. OBJECTIVE: Our aim was to evaluate an artificial intelligence–based smartphone app, connected to a cloud web platform, to automatically and objectively read RDT results and assess its impact on COVID-19 pandemic management. METHODS: Overall, 252 human sera were used to inoculate a total of 1165 RDTs for training and validation purposes. We then conducted two field studies to assess the performance on real-world scenarios by testing 172 antibody RDTs at two nursing homes and 96 antigen RDTs at one hospital emergency department. RESULTS: Field studies demonstrated high levels of sensitivity (100%) and specificity (94.4%, CI 92.8%-96.1%) for reading IgG band of COVID-19 antibody RDTs compared to visual readings from health workers. Sensitivity of detecting IgM test bands was 100%, and specificity was 95.8% (CI 94.3%-97.3%). All COVID-19 antigen RDTs were correctly read by the app. CONCLUSIONS: The proposed reading system is automatic, reducing variability and uncertainty associated with RDTs interpretation and can be used to read different RDT brands. The web platform serves as a real-time epidemiological tracking tool and facilitates reporting of positive RDTs to relevant health authorities. JMIR Publications 2022-12-30 /pmc/articles/PMC9840096/ /pubmed/36265136 http://dx.doi.org/10.2196/38533 Text en ©David Bermejo-Peláez, Daniel Marcos-Mencía, Elisa Álamo, Nuria Pérez-Panizo, Adriana Mousa, Elena Dacal, Lin Lin, Alexander Vladimirov, Daniel Cuadrado, Jesús Mateos-Nozal, Juan Carlos Galán, Beatriz Romero-Hernandez, Rafael Cantón, Miguel Luengo-Oroz, Mario Rodriguez-Dominguez. Originally published in JMIR Public Health and Surveillance (https://publichealth.jmir.org), 30.12.2022. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work, first published in JMIR Public Health and Surveillance, is properly cited. The complete bibliographic information, a link to the original publication on https://publichealth.jmir.org, as well as this copyright and license information must be included.
spellingShingle Original Paper
Bermejo-Peláez, David
Marcos-Mencía, Daniel
Álamo, Elisa
Pérez-Panizo, Nuria
Mousa, Adriana
Dacal, Elena
Lin, Lin
Vladimirov, Alexander
Cuadrado, Daniel
Mateos-Nozal, Jesús
Galán, Juan Carlos
Romero-Hernandez, Beatriz
Cantón, Rafael
Luengo-Oroz, Miguel
Rodriguez-Dominguez, Mario
A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays
title A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays
title_full A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays
title_fullStr A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays
title_full_unstemmed A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays
title_short A Smartphone-Based Platform Assisted by Artificial Intelligence for Reading and Reporting Rapid Diagnostic Tests: Evaluation Study in SARS-CoV-2 Lateral Flow Immunoassays
title_sort smartphone-based platform assisted by artificial intelligence for reading and reporting rapid diagnostic tests: evaluation study in sars-cov-2 lateral flow immunoassays
topic Original Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9840096/
https://www.ncbi.nlm.nih.gov/pubmed/36265136
http://dx.doi.org/10.2196/38533
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