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Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software
Purpose: To compare different commercial software in the quantification of Pneumonia Lesions in COVID-19 infection and to stratify the patients based on the disease severity using on chest computed tomography (CT) images. Materials and methods: We retrospectively examined 162 patients with confirmed...
Autores principales: | , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558768/ https://www.ncbi.nlm.nih.gov/pubmed/32971756 http://dx.doi.org/10.3390/ijerph17186914 |
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author | Grassi, Roberto Cappabianca, Salvatore Urraro, Fabrizio Feragalli, Beatrice Montanelli, Alessandro Patelli, Gianluigi Granata, Vincenza Giacobbe, Giuliana Russo, Gaetano Maria Grillo, Assunta De Lisio, Angela Paura, Cesare Clemente, Alfredo Gagliardi, Giuliano Magliocchetti, Simona Cozzi, Diletta Fusco, Roberta Belfiore, Maria Paola Grassi, Roberta Miele, Vittorio |
author_facet | Grassi, Roberto Cappabianca, Salvatore Urraro, Fabrizio Feragalli, Beatrice Montanelli, Alessandro Patelli, Gianluigi Granata, Vincenza Giacobbe, Giuliana Russo, Gaetano Maria Grillo, Assunta De Lisio, Angela Paura, Cesare Clemente, Alfredo Gagliardi, Giuliano Magliocchetti, Simona Cozzi, Diletta Fusco, Roberta Belfiore, Maria Paola Grassi, Roberta Miele, Vittorio |
author_sort | Grassi, Roberto |
collection | PubMed |
description | Purpose: To compare different commercial software in the quantification of Pneumonia Lesions in COVID-19 infection and to stratify the patients based on the disease severity using on chest computed tomography (CT) images. Materials and methods: We retrospectively examined 162 patients with confirmed COVID-19 infection by reverse transcriptase-polymerase chain reaction (RT-PCR) test. All cases were evaluated separately by radiologists (visually) and by using three computer software programs: (1) Thoracic VCAR software, GE Healthcare, United States; (2) Myrian, Intrasense, France; (3) InferRead, InferVision Europe, Wiesbaden, Germany. The degree of lesions was visually scored by the radiologist using a score on 5 levels (none, mild, moderate, severe, and critic). The parameters obtained using the computer tools included healthy residual lung parenchyma, ground-glass opacity area, and consolidation volume. Intraclass coefficient (ICC), Spearman correlation analysis, and non-parametric tests were performed. Results: Thoracic VCAR software was not able to perform volumes segmentation in 26/162 (16.0%) cases, Myrian software in 12/162 (7.4%) patients while InferRead software in 61/162 (37.7%) patients. A great variability (ICC ranged for 0.17 to 0.51) was detected among the quantitative measurements of the residual healthy lung parenchyma volume, GGO, and consolidations volumes calculated by different computer tools. The overall radiological severity score was moderately correlated with the residual healthy lung parenchyma volume obtained by ThoracicVCAR or Myrian software, with the GGO area obtained by the ThoracicVCAR tool and with consolidation volume obtained by Myrian software. Quantified volumes by InferRead software had a low correlation with the overall radiological severity score. Conclusions: Computer-aided pneumonia quantification could be an easy and feasible way to stratify COVID-19 cases according to severity; however, a great variability among quantitative measurements provided by computer tools should be considered. |
format | Online Article Text |
id | pubmed-7558768 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-75587682020-10-26 Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software Grassi, Roberto Cappabianca, Salvatore Urraro, Fabrizio Feragalli, Beatrice Montanelli, Alessandro Patelli, Gianluigi Granata, Vincenza Giacobbe, Giuliana Russo, Gaetano Maria Grillo, Assunta De Lisio, Angela Paura, Cesare Clemente, Alfredo Gagliardi, Giuliano Magliocchetti, Simona Cozzi, Diletta Fusco, Roberta Belfiore, Maria Paola Grassi, Roberta Miele, Vittorio Int J Environ Res Public Health Article Purpose: To compare different commercial software in the quantification of Pneumonia Lesions in COVID-19 infection and to stratify the patients based on the disease severity using on chest computed tomography (CT) images. Materials and methods: We retrospectively examined 162 patients with confirmed COVID-19 infection by reverse transcriptase-polymerase chain reaction (RT-PCR) test. All cases were evaluated separately by radiologists (visually) and by using three computer software programs: (1) Thoracic VCAR software, GE Healthcare, United States; (2) Myrian, Intrasense, France; (3) InferRead, InferVision Europe, Wiesbaden, Germany. The degree of lesions was visually scored by the radiologist using a score on 5 levels (none, mild, moderate, severe, and critic). The parameters obtained using the computer tools included healthy residual lung parenchyma, ground-glass opacity area, and consolidation volume. Intraclass coefficient (ICC), Spearman correlation analysis, and non-parametric tests were performed. Results: Thoracic VCAR software was not able to perform volumes segmentation in 26/162 (16.0%) cases, Myrian software in 12/162 (7.4%) patients while InferRead software in 61/162 (37.7%) patients. A great variability (ICC ranged for 0.17 to 0.51) was detected among the quantitative measurements of the residual healthy lung parenchyma volume, GGO, and consolidations volumes calculated by different computer tools. The overall radiological severity score was moderately correlated with the residual healthy lung parenchyma volume obtained by ThoracicVCAR or Myrian software, with the GGO area obtained by the ThoracicVCAR tool and with consolidation volume obtained by Myrian software. Quantified volumes by InferRead software had a low correlation with the overall radiological severity score. Conclusions: Computer-aided pneumonia quantification could be an easy and feasible way to stratify COVID-19 cases according to severity; however, a great variability among quantitative measurements provided by computer tools should be considered. MDPI 2020-09-22 2020-09 /pmc/articles/PMC7558768/ /pubmed/32971756 http://dx.doi.org/10.3390/ijerph17186914 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Grassi, Roberto Cappabianca, Salvatore Urraro, Fabrizio Feragalli, Beatrice Montanelli, Alessandro Patelli, Gianluigi Granata, Vincenza Giacobbe, Giuliana Russo, Gaetano Maria Grillo, Assunta De Lisio, Angela Paura, Cesare Clemente, Alfredo Gagliardi, Giuliano Magliocchetti, Simona Cozzi, Diletta Fusco, Roberta Belfiore, Maria Paola Grassi, Roberta Miele, Vittorio Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software |
title | Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software |
title_full | Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software |
title_fullStr | Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software |
title_full_unstemmed | Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software |
title_short | Chest CT Computerized Aided Quantification of PNEUMONIA Lesions in COVID-19 Infection: A Comparison among Three Commercial Software |
title_sort | chest ct computerized aided quantification of pneumonia lesions in covid-19 infection: a comparison among three commercial software |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558768/ https://www.ncbi.nlm.nih.gov/pubmed/32971756 http://dx.doi.org/10.3390/ijerph17186914 |
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