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Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements

Breast tumors are blindly identified using Principal (PCA) and Independent Component Analysis (ICA) of localized reflectance measurements. No assumption of a particular theoretical model for the reflectance needs to be made, while the resulting features are proven to have discriminative power of bre...

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Autores principales: Eguizabal, Alma, Laughney, Ashley M., García-Allende, Pilar Beatriz, Krishnaswamy, Venkataramanan, Wells, Wendy A., Paulsen, Keith D., Pogue, Brian W., Lopez-Higuera, Jose M., Conde, Olga M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Optical Society of America 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3704092/
https://www.ncbi.nlm.nih.gov/pubmed/23847736
http://dx.doi.org/10.1364/BOE.4.001104
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author Eguizabal, Alma
Laughney, Ashley M.
García-Allende, Pilar Beatriz
Krishnaswamy, Venkataramanan
Wells, Wendy A.
Paulsen, Keith D.
Pogue, Brian W.
Lopez-Higuera, Jose M.
Conde, Olga M.
author_facet Eguizabal, Alma
Laughney, Ashley M.
García-Allende, Pilar Beatriz
Krishnaswamy, Venkataramanan
Wells, Wendy A.
Paulsen, Keith D.
Pogue, Brian W.
Lopez-Higuera, Jose M.
Conde, Olga M.
author_sort Eguizabal, Alma
collection PubMed
description Breast tumors are blindly identified using Principal (PCA) and Independent Component Analysis (ICA) of localized reflectance measurements. No assumption of a particular theoretical model for the reflectance needs to be made, while the resulting features are proven to have discriminative power of breast pathologies. Normal, benign and malignant breast tissue types in lumpectomy specimens were imaged ex vivo and a surgeon-guided calibration of the system is proposed to overcome the limitations of the blind analysis. A simple, fast and linear classifier has been proposed where no training information is required for the diagnosis. A set of 29 breast tissue specimens have been diagnosed with a sensitivity of 96% and specificity of 95% when discriminating benign from malignant pathologies. The proposed hybrid combination PCA-ICA enhanced diagnostic discrimination, providing tumor probability maps, and intermediate PCA parameters reflected tissue optical properties.
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spelling pubmed-37040922013-07-11 Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements Eguizabal, Alma Laughney, Ashley M. García-Allende, Pilar Beatriz Krishnaswamy, Venkataramanan Wells, Wendy A. Paulsen, Keith D. Pogue, Brian W. Lopez-Higuera, Jose M. Conde, Olga M. Biomed Opt Express Spectroscopic Diagnostics Breast tumors are blindly identified using Principal (PCA) and Independent Component Analysis (ICA) of localized reflectance measurements. No assumption of a particular theoretical model for the reflectance needs to be made, while the resulting features are proven to have discriminative power of breast pathologies. Normal, benign and malignant breast tissue types in lumpectomy specimens were imaged ex vivo and a surgeon-guided calibration of the system is proposed to overcome the limitations of the blind analysis. A simple, fast and linear classifier has been proposed where no training information is required for the diagnosis. A set of 29 breast tissue specimens have been diagnosed with a sensitivity of 96% and specificity of 95% when discriminating benign from malignant pathologies. The proposed hybrid combination PCA-ICA enhanced diagnostic discrimination, providing tumor probability maps, and intermediate PCA parameters reflected tissue optical properties. Optical Society of America 2013-06-12 /pmc/articles/PMC3704092/ /pubmed/23847736 http://dx.doi.org/10.1364/BOE.4.001104 Text en ©2013 Optical Society of America author-open
spellingShingle Spectroscopic Diagnostics
Eguizabal, Alma
Laughney, Ashley M.
García-Allende, Pilar Beatriz
Krishnaswamy, Venkataramanan
Wells, Wendy A.
Paulsen, Keith D.
Pogue, Brian W.
Lopez-Higuera, Jose M.
Conde, Olga M.
Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements
title Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements
title_full Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements
title_fullStr Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements
title_full_unstemmed Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements
title_short Direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements
title_sort direct identification of breast cancer pathologies using blind separation of label-free localized reflectance measurements
topic Spectroscopic Diagnostics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3704092/
https://www.ncbi.nlm.nih.gov/pubmed/23847736
http://dx.doi.org/10.1364/BOE.4.001104
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