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An ANN model for the differential diagnosis of tuberculosis and sarcoidosis

Sarcoidosis is often misdiagnosed as tuberculosis and consequently mistreated owing to inherent limitations in histopathological and radiological presentations. It is known that the differential diagnosis of Tuberculosis and Sarcoidosis is often non-trivial and requires expertise and experience from...

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Autores principales: Vijayaraj, Mahalakshmi, Abhinand, PA, Venkatesan, P, Ragunath, PK
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Biomedical Informatics 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7505241/
https://www.ncbi.nlm.nih.gov/pubmed/32994679
http://dx.doi.org/10.6026/97320630016539
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author Vijayaraj, Mahalakshmi
Abhinand, PA
Venkatesan, P
Ragunath, PK
author_facet Vijayaraj, Mahalakshmi
Abhinand, PA
Venkatesan, P
Ragunath, PK
author_sort Vijayaraj, Mahalakshmi
collection PubMed
description Sarcoidosis is often misdiagnosed as tuberculosis and consequently mistreated owing to inherent limitations in histopathological and radiological presentations. It is known that the differential diagnosis of Tuberculosis and Sarcoidosis is often non-trivial and requires expertise and experience from clinicians. Therefore, it is of interest to describe a multilayer neural network model to differentiate pulmonary tuberculosis from Sarcoidosis using signal intensity data from blood transcriptional microarray. Genes that are significantly upregulated in Pulmonary Tuberculosis and Sarcoidosis in comparison with healthy controls were used in the model. The model classified Pulmonary Tuberculosis and Sarcoidosis with 95.8% accuracy. The model also helps to identify gene markers that are differentially upregulated in the two clinical conditions.
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spelling pubmed-75052412020-09-28 An ANN model for the differential diagnosis of tuberculosis and sarcoidosis Vijayaraj, Mahalakshmi Abhinand, PA Venkatesan, P Ragunath, PK Bioinformation Research-Article Sarcoidosis is often misdiagnosed as tuberculosis and consequently mistreated owing to inherent limitations in histopathological and radiological presentations. It is known that the differential diagnosis of Tuberculosis and Sarcoidosis is often non-trivial and requires expertise and experience from clinicians. Therefore, it is of interest to describe a multilayer neural network model to differentiate pulmonary tuberculosis from Sarcoidosis using signal intensity data from blood transcriptional microarray. Genes that are significantly upregulated in Pulmonary Tuberculosis and Sarcoidosis in comparison with healthy controls were used in the model. The model classified Pulmonary Tuberculosis and Sarcoidosis with 95.8% accuracy. The model also helps to identify gene markers that are differentially upregulated in the two clinical conditions. Biomedical Informatics 2020-07-31 /pmc/articles/PMC7505241/ /pubmed/32994679 http://dx.doi.org/10.6026/97320630016539 Text en © 2020 Biomedical Informatics http://creativecommons.org/licenses/by/3.0/ This is an Open Access article which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. This is distributed under the terms of the Creative Commons Attribution License.
spellingShingle Research-Article
Vijayaraj, Mahalakshmi
Abhinand, PA
Venkatesan, P
Ragunath, PK
An ANN model for the differential diagnosis of tuberculosis and sarcoidosis
title An ANN model for the differential diagnosis of tuberculosis and sarcoidosis
title_full An ANN model for the differential diagnosis of tuberculosis and sarcoidosis
title_fullStr An ANN model for the differential diagnosis of tuberculosis and sarcoidosis
title_full_unstemmed An ANN model for the differential diagnosis of tuberculosis and sarcoidosis
title_short An ANN model for the differential diagnosis of tuberculosis and sarcoidosis
title_sort ann model for the differential diagnosis of tuberculosis and sarcoidosis
topic Research-Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7505241/
https://www.ncbi.nlm.nih.gov/pubmed/32994679
http://dx.doi.org/10.6026/97320630016539
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