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Sensitivity and specificity of an eye movement tracking-based biomarker for concussion

OBJECT: The purpose of the current study is to determine the sensitivity and specificity of an eye tracking method as a classifier for identifying concussion. METHODS: Brain injured and control subjects prospectively underwent both eye tracking and Sport Concussion Assessment Tool 3. The results of...

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Autores principales: Samadani, Uzma, Li, Meng, Qian, Meng, Laska, Eugene, Ritlop, Robert, Kolecki, Radek, Reyes, Marleen, Altomare, Lindsey, Sone, Je Yeong, Adem, Aylin, Huang, Paul, Kondziolka, Douglas, Wall, Stephen, Frangos, Spiros, Marmar, Charles
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Future Medicine Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6114025/
https://www.ncbi.nlm.nih.gov/pubmed/30202548
http://dx.doi.org/10.2217/cnc.15.3
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author Samadani, Uzma
Li, Meng
Qian, Meng
Laska, Eugene
Ritlop, Robert
Kolecki, Radek
Reyes, Marleen
Altomare, Lindsey
Sone, Je Yeong
Adem, Aylin
Huang, Paul
Kondziolka, Douglas
Wall, Stephen
Frangos, Spiros
Marmar, Charles
author_facet Samadani, Uzma
Li, Meng
Qian, Meng
Laska, Eugene
Ritlop, Robert
Kolecki, Radek
Reyes, Marleen
Altomare, Lindsey
Sone, Je Yeong
Adem, Aylin
Huang, Paul
Kondziolka, Douglas
Wall, Stephen
Frangos, Spiros
Marmar, Charles
author_sort Samadani, Uzma
collection PubMed
description OBJECT: The purpose of the current study is to determine the sensitivity and specificity of an eye tracking method as a classifier for identifying concussion. METHODS: Brain injured and control subjects prospectively underwent both eye tracking and Sport Concussion Assessment Tool 3. The results of eye tracking biomarker based classifier models were then validated against a dataset of individuals not used in building a model. The area under the curve (AUC) of receiver operating characteristics was examined. RESULTS: An optimal classifier based on best subset had an AUC of 0.878, and a cross-validated AUC of 0.852 in CT- subjects and an AUC of 0.831 in a validation dataset. The optimal misclassification rate in an external dataset (n = 254) was 13%. CONCLUSION: If one defines concussion based on history, examination, radiographic and Sport Concussion Assessment Tool 3 criteria, it is possible to generate an eye tracking based biomarker that enables detection of concussion with reasonably high sensitivity and specificity.
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spelling pubmed-61140252018-09-10 Sensitivity and specificity of an eye movement tracking-based biomarker for concussion Samadani, Uzma Li, Meng Qian, Meng Laska, Eugene Ritlop, Robert Kolecki, Radek Reyes, Marleen Altomare, Lindsey Sone, Je Yeong Adem, Aylin Huang, Paul Kondziolka, Douglas Wall, Stephen Frangos, Spiros Marmar, Charles Concussion Research Article OBJECT: The purpose of the current study is to determine the sensitivity and specificity of an eye tracking method as a classifier for identifying concussion. METHODS: Brain injured and control subjects prospectively underwent both eye tracking and Sport Concussion Assessment Tool 3. The results of eye tracking biomarker based classifier models were then validated against a dataset of individuals not used in building a model. The area under the curve (AUC) of receiver operating characteristics was examined. RESULTS: An optimal classifier based on best subset had an AUC of 0.878, and a cross-validated AUC of 0.852 in CT- subjects and an AUC of 0.831 in a validation dataset. The optimal misclassification rate in an external dataset (n = 254) was 13%. CONCLUSION: If one defines concussion based on history, examination, radiographic and Sport Concussion Assessment Tool 3 criteria, it is possible to generate an eye tracking based biomarker that enables detection of concussion with reasonably high sensitivity and specificity. Future Medicine Ltd 2015-08-06 /pmc/articles/PMC6114025/ /pubmed/30202548 http://dx.doi.org/10.2217/cnc.15.3 Text en © 2015 U Samadani This work is licensed under a Creative Commons Attribution 4.0 License (http://creativecommons.org/licenses/by/4.0/)
spellingShingle Research Article
Samadani, Uzma
Li, Meng
Qian, Meng
Laska, Eugene
Ritlop, Robert
Kolecki, Radek
Reyes, Marleen
Altomare, Lindsey
Sone, Je Yeong
Adem, Aylin
Huang, Paul
Kondziolka, Douglas
Wall, Stephen
Frangos, Spiros
Marmar, Charles
Sensitivity and specificity of an eye movement tracking-based biomarker for concussion
title Sensitivity and specificity of an eye movement tracking-based biomarker for concussion
title_full Sensitivity and specificity of an eye movement tracking-based biomarker for concussion
title_fullStr Sensitivity and specificity of an eye movement tracking-based biomarker for concussion
title_full_unstemmed Sensitivity and specificity of an eye movement tracking-based biomarker for concussion
title_short Sensitivity and specificity of an eye movement tracking-based biomarker for concussion
title_sort sensitivity and specificity of an eye movement tracking-based biomarker for concussion
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6114025/
https://www.ncbi.nlm.nih.gov/pubmed/30202548
http://dx.doi.org/10.2217/cnc.15.3
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