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Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities

Oral cancer is a growing health issue in a number of low- and middle-income countries (LMIC), particularly in South and Southeast Asia. The described dual-modality, dual-view, point-of-care oral cancer screening device, developed for high-risk populations in remote regions with limited infrastructur...

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Autores principales: Uthoff, Ross D., Song, Bofan, Sunny, Sumsum, Patrick, Sanjana, Suresh, Amritha, Kolur, Trupti, Keerthi, G., Spires, Oliver, Anbarani, Afarin, Wilder-Smith, Petra, Kuriakose, Moni Abraham, Birur, Praveen, Liang, Rongguang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6281283/
https://www.ncbi.nlm.nih.gov/pubmed/30517120
http://dx.doi.org/10.1371/journal.pone.0207493
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author Uthoff, Ross D.
Song, Bofan
Sunny, Sumsum
Patrick, Sanjana
Suresh, Amritha
Kolur, Trupti
Keerthi, G.
Spires, Oliver
Anbarani, Afarin
Wilder-Smith, Petra
Kuriakose, Moni Abraham
Birur, Praveen
Liang, Rongguang
author_facet Uthoff, Ross D.
Song, Bofan
Sunny, Sumsum
Patrick, Sanjana
Suresh, Amritha
Kolur, Trupti
Keerthi, G.
Spires, Oliver
Anbarani, Afarin
Wilder-Smith, Petra
Kuriakose, Moni Abraham
Birur, Praveen
Liang, Rongguang
author_sort Uthoff, Ross D.
collection PubMed
description Oral cancer is a growing health issue in a number of low- and middle-income countries (LMIC), particularly in South and Southeast Asia. The described dual-modality, dual-view, point-of-care oral cancer screening device, developed for high-risk populations in remote regions with limited infrastructure, implements autofluorescence imaging (AFI) and white light imaging (WLI) on a smartphone platform, enabling early detection of pre-cancerous and cancerous lesions in the oral cavity with the potential to reduce morbidity, mortality, and overall healthcare costs. Using a custom Android application, this device synchronizes external light-emitting diode (LED) illumination and image capture for AFI and WLI. Data is uploaded to a cloud server for diagnosis by a remote specialist through a web app, with the ability to transmit triage instructions back to the device and patient. Finally, with the on-site specialist’s diagnosis as the gold-standard, the remote specialist and a convolutional neural network (CNN) were able to classify 170 image pairs into ‘suspicious’ and ‘not suspicious’ with sensitivities, specificities, positive predictive values, and negative predictive values ranging from 81.25% to 94.94%.
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spelling pubmed-62812832018-12-20 Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities Uthoff, Ross D. Song, Bofan Sunny, Sumsum Patrick, Sanjana Suresh, Amritha Kolur, Trupti Keerthi, G. Spires, Oliver Anbarani, Afarin Wilder-Smith, Petra Kuriakose, Moni Abraham Birur, Praveen Liang, Rongguang PLoS One Research Article Oral cancer is a growing health issue in a number of low- and middle-income countries (LMIC), particularly in South and Southeast Asia. The described dual-modality, dual-view, point-of-care oral cancer screening device, developed for high-risk populations in remote regions with limited infrastructure, implements autofluorescence imaging (AFI) and white light imaging (WLI) on a smartphone platform, enabling early detection of pre-cancerous and cancerous lesions in the oral cavity with the potential to reduce morbidity, mortality, and overall healthcare costs. Using a custom Android application, this device synchronizes external light-emitting diode (LED) illumination and image capture for AFI and WLI. Data is uploaded to a cloud server for diagnosis by a remote specialist through a web app, with the ability to transmit triage instructions back to the device and patient. Finally, with the on-site specialist’s diagnosis as the gold-standard, the remote specialist and a convolutional neural network (CNN) were able to classify 170 image pairs into ‘suspicious’ and ‘not suspicious’ with sensitivities, specificities, positive predictive values, and negative predictive values ranging from 81.25% to 94.94%. Public Library of Science 2018-12-05 /pmc/articles/PMC6281283/ /pubmed/30517120 http://dx.doi.org/10.1371/journal.pone.0207493 Text en © 2018 Uthoff et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Uthoff, Ross D.
Song, Bofan
Sunny, Sumsum
Patrick, Sanjana
Suresh, Amritha
Kolur, Trupti
Keerthi, G.
Spires, Oliver
Anbarani, Afarin
Wilder-Smith, Petra
Kuriakose, Moni Abraham
Birur, Praveen
Liang, Rongguang
Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities
title Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities
title_full Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities
title_fullStr Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities
title_full_unstemmed Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities
title_short Point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities
title_sort point-of-care, smartphone-based, dual-modality, dual-view, oral cancer screening device with neural network classification for low-resource communities
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6281283/
https://www.ncbi.nlm.nih.gov/pubmed/30517120
http://dx.doi.org/10.1371/journal.pone.0207493
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