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AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine
Automated image analysis plays an increasing role in radiology in detecting and quantifying image features outside of the perception of human eyes. Common AI-based approaches address a single medical problem, although patients often present with multiple interacting, frequently subclinical medical c...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9690402/ https://www.ncbi.nlm.nih.gov/pubmed/36360507 http://dx.doi.org/10.3390/healthcare10112166 |
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author | Palm, Viktoria Norajitra, Tobias von Stackelberg, Oyunbileg Heussel, Claus P. Skornitzke, Stephan Weinheimer, Oliver Kopytova, Taisiya Klein, Andre Almeida, Silvia D. Baumgartner, Michael Bounias, Dimitrios Scherer, Jonas Kades, Klaus Gao, Hanno Jäger, Paul Nolden, Marco Tong, Elizabeth Eckl, Kira Nattenmüller, Johanna Nonnenmacher, Tobias Naas, Omar Reuter, Julia Bischoff, Arved Kroschke, Jonas Rengier, Fabian Schlamp, Kai Debic, Manuel Kauczor, Hans-Ulrich Maier-Hein, Klaus Wielpütz, Mark O. |
author_facet | Palm, Viktoria Norajitra, Tobias von Stackelberg, Oyunbileg Heussel, Claus P. Skornitzke, Stephan Weinheimer, Oliver Kopytova, Taisiya Klein, Andre Almeida, Silvia D. Baumgartner, Michael Bounias, Dimitrios Scherer, Jonas Kades, Klaus Gao, Hanno Jäger, Paul Nolden, Marco Tong, Elizabeth Eckl, Kira Nattenmüller, Johanna Nonnenmacher, Tobias Naas, Omar Reuter, Julia Bischoff, Arved Kroschke, Jonas Rengier, Fabian Schlamp, Kai Debic, Manuel Kauczor, Hans-Ulrich Maier-Hein, Klaus Wielpütz, Mark O. |
author_sort | Palm, Viktoria |
collection | PubMed |
description | Automated image analysis plays an increasing role in radiology in detecting and quantifying image features outside of the perception of human eyes. Common AI-based approaches address a single medical problem, although patients often present with multiple interacting, frequently subclinical medical conditions. A holistic imaging diagnostics tool based on artificial intelligence (AI) has the potential of providing an overview of multi-system comorbidities within a single workflow. An interdisciplinary, multicentric team of medical experts and computer scientists designed a pipeline, comprising AI-based tools for the automated detection, quantification and characterization of the most common pulmonary, metabolic, cardiovascular and musculoskeletal comorbidities in chest computed tomography (CT). To provide a comprehensive evaluation of each patient, a multidimensional workflow was established with algorithms operating synchronously on a decentralized Joined Imaging Platform (JIP). The results of each patient are transferred to a dedicated database and summarized as a structured report with reference to available reference values and annotated sample images of detected pathologies. Hence, this tool allows for the comprehensive, large-scale analysis of imaging-biomarkers of comorbidities in chest CT, first in science and then in clinical routine. Moreover, this tool accommodates the quantitative analysis and classification of each pathology, providing integral diagnostic and prognostic value, and subsequently leading to improved preventive patient care and further possibilities for future studies. |
format | Online Article Text |
id | pubmed-9690402 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-96904022022-11-25 AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine Palm, Viktoria Norajitra, Tobias von Stackelberg, Oyunbileg Heussel, Claus P. Skornitzke, Stephan Weinheimer, Oliver Kopytova, Taisiya Klein, Andre Almeida, Silvia D. Baumgartner, Michael Bounias, Dimitrios Scherer, Jonas Kades, Klaus Gao, Hanno Jäger, Paul Nolden, Marco Tong, Elizabeth Eckl, Kira Nattenmüller, Johanna Nonnenmacher, Tobias Naas, Omar Reuter, Julia Bischoff, Arved Kroschke, Jonas Rengier, Fabian Schlamp, Kai Debic, Manuel Kauczor, Hans-Ulrich Maier-Hein, Klaus Wielpütz, Mark O. Healthcare (Basel) Article Automated image analysis plays an increasing role in radiology in detecting and quantifying image features outside of the perception of human eyes. Common AI-based approaches address a single medical problem, although patients often present with multiple interacting, frequently subclinical medical conditions. A holistic imaging diagnostics tool based on artificial intelligence (AI) has the potential of providing an overview of multi-system comorbidities within a single workflow. An interdisciplinary, multicentric team of medical experts and computer scientists designed a pipeline, comprising AI-based tools for the automated detection, quantification and characterization of the most common pulmonary, metabolic, cardiovascular and musculoskeletal comorbidities in chest computed tomography (CT). To provide a comprehensive evaluation of each patient, a multidimensional workflow was established with algorithms operating synchronously on a decentralized Joined Imaging Platform (JIP). The results of each patient are transferred to a dedicated database and summarized as a structured report with reference to available reference values and annotated sample images of detected pathologies. Hence, this tool allows for the comprehensive, large-scale analysis of imaging-biomarkers of comorbidities in chest CT, first in science and then in clinical routine. Moreover, this tool accommodates the quantitative analysis and classification of each pathology, providing integral diagnostic and prognostic value, and subsequently leading to improved preventive patient care and further possibilities for future studies. MDPI 2022-10-29 /pmc/articles/PMC9690402/ /pubmed/36360507 http://dx.doi.org/10.3390/healthcare10112166 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 Palm, Viktoria Norajitra, Tobias von Stackelberg, Oyunbileg Heussel, Claus P. Skornitzke, Stephan Weinheimer, Oliver Kopytova, Taisiya Klein, Andre Almeida, Silvia D. Baumgartner, Michael Bounias, Dimitrios Scherer, Jonas Kades, Klaus Gao, Hanno Jäger, Paul Nolden, Marco Tong, Elizabeth Eckl, Kira Nattenmüller, Johanna Nonnenmacher, Tobias Naas, Omar Reuter, Julia Bischoff, Arved Kroschke, Jonas Rengier, Fabian Schlamp, Kai Debic, Manuel Kauczor, Hans-Ulrich Maier-Hein, Klaus Wielpütz, Mark O. AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine |
title | AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine |
title_full | AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine |
title_fullStr | AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine |
title_full_unstemmed | AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine |
title_short | AI-Supported Comprehensive Detection and Quantification of Biomarkers of Subclinical Widespread Diseases at Chest CT for Preventive Medicine |
title_sort | ai-supported comprehensive detection and quantification of biomarkers of subclinical widespread diseases at chest ct for preventive medicine |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9690402/ https://www.ncbi.nlm.nih.gov/pubmed/36360507 http://dx.doi.org/10.3390/healthcare10112166 |
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