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The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review

To reduce the number of missed or misdiagnosed lung nodules on CT scans by radiologists, many Artificial Intelligence (AI) algorithms have been developed. Some algorithms are currently being implemented in clinical practice, but the question is whether radiologists and patients really benefit from t...

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Autores principales: Ewals, Lotte J. S., van der Wulp, Kasper, van den Borne, Ben E. E. M., Pluyter, Jon R., Jacobs, Igor, Mavroeidis, Dimitrios, van der Sommen, Fons, Nederend, Joost
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10219568/
https://www.ncbi.nlm.nih.gov/pubmed/37240643
http://dx.doi.org/10.3390/jcm12103536
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author Ewals, Lotte J. S.
van der Wulp, Kasper
van den Borne, Ben E. E. M.
Pluyter, Jon R.
Jacobs, Igor
Mavroeidis, Dimitrios
van der Sommen, Fons
Nederend, Joost
author_facet Ewals, Lotte J. S.
van der Wulp, Kasper
van den Borne, Ben E. E. M.
Pluyter, Jon R.
Jacobs, Igor
Mavroeidis, Dimitrios
van der Sommen, Fons
Nederend, Joost
author_sort Ewals, Lotte J. S.
collection PubMed
description To reduce the number of missed or misdiagnosed lung nodules on CT scans by radiologists, many Artificial Intelligence (AI) algorithms have been developed. Some algorithms are currently being implemented in clinical practice, but the question is whether radiologists and patients really benefit from the use of these novel tools. This study aimed to review how AI assistance for lung nodule assessment on CT scans affects the performances of radiologists. We searched for studies that evaluated radiologists’ performances in the detection or malignancy prediction of lung nodules with and without AI assistance. Concerning detection, radiologists achieved with AI assistance a higher sensitivity and AUC, while the specificity was slightly lower. Concerning malignancy prediction, radiologists achieved with AI assistance generally a higher sensitivity, specificity and AUC. The radiologists’ workflows of using the AI assistance were often only described in limited detail in the papers. As recent studies showed improved performances of radiologists with AI assistance, AI assistance for lung nodule assessment holds great promise. To achieve added value of AI tools for lung nodule assessment in clinical practice, more research is required on the clinical validation of AI tools, impact on follow-up recommendations and ways of using AI tools.
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spelling pubmed-102195682023-05-27 The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review Ewals, Lotte J. S. van der Wulp, Kasper van den Borne, Ben E. E. M. Pluyter, Jon R. Jacobs, Igor Mavroeidis, Dimitrios van der Sommen, Fons Nederend, Joost J Clin Med Systematic Review To reduce the number of missed or misdiagnosed lung nodules on CT scans by radiologists, many Artificial Intelligence (AI) algorithms have been developed. Some algorithms are currently being implemented in clinical practice, but the question is whether radiologists and patients really benefit from the use of these novel tools. This study aimed to review how AI assistance for lung nodule assessment on CT scans affects the performances of radiologists. We searched for studies that evaluated radiologists’ performances in the detection or malignancy prediction of lung nodules with and without AI assistance. Concerning detection, radiologists achieved with AI assistance a higher sensitivity and AUC, while the specificity was slightly lower. Concerning malignancy prediction, radiologists achieved with AI assistance generally a higher sensitivity, specificity and AUC. The radiologists’ workflows of using the AI assistance were often only described in limited detail in the papers. As recent studies showed improved performances of radiologists with AI assistance, AI assistance for lung nodule assessment holds great promise. To achieve added value of AI tools for lung nodule assessment in clinical practice, more research is required on the clinical validation of AI tools, impact on follow-up recommendations and ways of using AI tools. MDPI 2023-05-18 /pmc/articles/PMC10219568/ /pubmed/37240643 http://dx.doi.org/10.3390/jcm12103536 Text en © 2023 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 Systematic Review
Ewals, Lotte J. S.
van der Wulp, Kasper
van den Borne, Ben E. E. M.
Pluyter, Jon R.
Jacobs, Igor
Mavroeidis, Dimitrios
van der Sommen, Fons
Nederend, Joost
The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review
title The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review
title_full The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review
title_fullStr The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review
title_full_unstemmed The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review
title_short The Effects of Artificial Intelligence Assistance on the Radiologists’ Assessment of Lung Nodules on CT Scans: A Systematic Review
title_sort effects of artificial intelligence assistance on the radiologists’ assessment of lung nodules on ct scans: a systematic review
topic Systematic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10219568/
https://www.ncbi.nlm.nih.gov/pubmed/37240643
http://dx.doi.org/10.3390/jcm12103536
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