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AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs

Early diagnosis of COVID-19 is required to provide the best treatment to our patients, to prevent the epidemic from spreading in the community, and to reduce costs associated with the aggravation of the disease. We developed a decision tree model to evaluate the impact of using an artificial intelli...

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Autores principales: Esposito, Giovanni, Ernst, Benoit, Henket, Monique, Winandy, Marie, Chatterjee, Avishek, Van Eyndhoven, Simon, Praet, Jelle, Smeets, Dirk, Meunier, Paul, Louis, Renaud, Kolh, Philippe, Guiot, Julien
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9324628/
https://www.ncbi.nlm.nih.gov/pubmed/35885513
http://dx.doi.org/10.3390/diagnostics12071608
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author Esposito, Giovanni
Ernst, Benoit
Henket, Monique
Winandy, Marie
Chatterjee, Avishek
Van Eyndhoven, Simon
Praet, Jelle
Smeets, Dirk
Meunier, Paul
Louis, Renaud
Kolh, Philippe
Guiot, Julien
author_facet Esposito, Giovanni
Ernst, Benoit
Henket, Monique
Winandy, Marie
Chatterjee, Avishek
Van Eyndhoven, Simon
Praet, Jelle
Smeets, Dirk
Meunier, Paul
Louis, Renaud
Kolh, Philippe
Guiot, Julien
author_sort Esposito, Giovanni
collection PubMed
description Early diagnosis of COVID-19 is required to provide the best treatment to our patients, to prevent the epidemic from spreading in the community, and to reduce costs associated with the aggravation of the disease. We developed a decision tree model to evaluate the impact of using an artificial intelligence-based chest computed tomography (CT) analysis software (icolung, icometrix) to analyze CT scans for the detection and prognosis of COVID-19 cases. The model compared routine practice where patients receiving a chest CT scan were not screened for COVID-19, with a scenario where icolung was introduced to enable COVID-19 diagnosis. The primary outcome was to evaluate the impact of icolung on the transmission of COVID-19 infection, and the secondary outcome was the in-hospital length of stay. Using EUR 20000 as a willingness-to-pay threshold, icolung is cost-effective in reducing the risk of transmission, with a low prevalence of COVID-19 infections. Concerning the hospitalization cost, icolung is cost-effective at a higher value of COVID-19 prevalence and risk of hospitalization. This model provides a framework for the evaluation of AI-based tools for the early detection of COVID-19 cases. It allows for making decisions regarding their implementation in routine practice, considering both costs and effects.
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spelling pubmed-93246282022-07-27 AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs Esposito, Giovanni Ernst, Benoit Henket, Monique Winandy, Marie Chatterjee, Avishek Van Eyndhoven, Simon Praet, Jelle Smeets, Dirk Meunier, Paul Louis, Renaud Kolh, Philippe Guiot, Julien Diagnostics (Basel) Article Early diagnosis of COVID-19 is required to provide the best treatment to our patients, to prevent the epidemic from spreading in the community, and to reduce costs associated with the aggravation of the disease. We developed a decision tree model to evaluate the impact of using an artificial intelligence-based chest computed tomography (CT) analysis software (icolung, icometrix) to analyze CT scans for the detection and prognosis of COVID-19 cases. The model compared routine practice where patients receiving a chest CT scan were not screened for COVID-19, with a scenario where icolung was introduced to enable COVID-19 diagnosis. The primary outcome was to evaluate the impact of icolung on the transmission of COVID-19 infection, and the secondary outcome was the in-hospital length of stay. Using EUR 20000 as a willingness-to-pay threshold, icolung is cost-effective in reducing the risk of transmission, with a low prevalence of COVID-19 infections. Concerning the hospitalization cost, icolung is cost-effective at a higher value of COVID-19 prevalence and risk of hospitalization. This model provides a framework for the evaluation of AI-based tools for the early detection of COVID-19 cases. It allows for making decisions regarding their implementation in routine practice, considering both costs and effects. MDPI 2022-07-01 /pmc/articles/PMC9324628/ /pubmed/35885513 http://dx.doi.org/10.3390/diagnostics12071608 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Esposito, Giovanni
Ernst, Benoit
Henket, Monique
Winandy, Marie
Chatterjee, Avishek
Van Eyndhoven, Simon
Praet, Jelle
Smeets, Dirk
Meunier, Paul
Louis, Renaud
Kolh, Philippe
Guiot, Julien
AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs
title AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs
title_full AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs
title_fullStr AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs
title_full_unstemmed AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs
title_short AI-Based Chest CT Analysis for Rapid COVID-19 Diagnosis and Prognosis: A Practical Tool to Flag High-Risk Patients and Lower Healthcare Costs
title_sort ai-based chest ct analysis for rapid covid-19 diagnosis and prognosis: a practical tool to flag high-risk patients and lower healthcare costs
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9324628/
https://www.ncbi.nlm.nih.gov/pubmed/35885513
http://dx.doi.org/10.3390/diagnostics12071608
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