Please use this identifier to cite or link to this item: http://hdl.handle.net/10553/58306
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dc.contributor.authorHalicek, Martin-
dc.contributor.authorFabelo Gómez, Himar Antonio-
dc.contributor.authorOrtega Sarmiento, Samuel-
dc.contributor.authorLittle, James V.-
dc.contributor.authorWang, Xu-
dc.contributor.authorChen, Amy Y.-
dc.contributor.authorMarrero Callicó, Gustavo Iván-
dc.contributor.authorMyers, Larry L.-
dc.contributor.authorSumer, Baran D.-
dc.contributor.authorFei, Baowei-
dc.contributor.editorFei, Baowei-
dc.contributor.editorLinte, Cristian A.-
dc.date.accessioned2019-12-10T16:04:25Z-
dc.date.available2019-12-10T16:04:25Z-
dc.date.issued2019-
dc.identifier.isbn9781510625495-
dc.identifier.issn1605-7422-
dc.identifier.otherScopus-
dc.identifier.otherWoS-
dc.identifier.urihttp://hdl.handle.net/10553/58306-
dc.description.abstractHead and neck squamous cell carcinoma (SCCa) is primarily managed by surgical resection. Recurrence rates after surgery can be as high as 55% if residual cancer is present. In this study, hyperspectral imaging (HSI) is evaluated for detection of SCCa in ex-vivo surgical specimens. Several methods are investigated, including convolutional neural networks (CNNs) and a spectral-spatial variant of support vector machines. Quantitative results demonstrate that additional processing and unsupervised filtering can improve CNN results to achieve optimal performance. Classifying regions that include specular glare, the average AUC is increased from 0.73 [0.71, 0.75 (95% confidence interval)] to 0.81 [0.80, 0.83] through an unsupervised filtering and majority voting method described. The wavelengths of light used in HSI can penetrate different depths into biological tissue, while the cancer margin may change with depth and create uncertainty in the ground-truth. Through serial histological sectioning, the variance in cancer-margin with depth is also investigated and paired with qualitative classification heat maps using the methods proposed for the testing group SCC patients.-
dc.languageeng-
dc.relationIdentificación Hiperespectral de Tumores Cerebrales (Ithaca)-
dc.relation.ispartofProgress in Biomedical Optics and Imaging - Proceedings of SPIE-
dc.sourceProgress in Biomedical Optics and Imaging - Proceedings of SPIE [ISSN 1605-7422], v. 10951, 109511A-
dc.subject3314 Tecnología médica-
dc.subject.otherSquamous-Cell Carcinoma-
dc.subject.otherSurgery-
dc.subject.otherTongue-
dc.subject.otherHead-
dc.subject.otherHyperspectral Imaging-
dc.subject.otherConvolutional Neural Network-
dc.subject.otherDeep Learning-
dc.subject.otherOptical Biopsy-
dc.subject.otherIntraoperative Imaging-
dc.subject.otherHead And Neck Surgery-
dc.subject.otherHead And Neck Cancer-
dc.titleCancer detection using hyperspectral imaging and evaluation of the superficial tumor margin variance with depth-
dc.typeinfo:eu-repo/semantics/conferenceObject-
dc.typeConferenceObject-
dc.relation.conferenceMedical Imaging 2019: Image-Guided Procedures, Robotic Interventions, and Modeling-
dc.identifier.doi10.1117/12.2512985-
dc.identifier.scopus85068897897-
dc.identifier.isi000483683500044-
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dc.contributor.orcid#NODATA#-
dc.contributor.authorscopusid56285163800-
dc.contributor.authorscopusid56405568500-
dc.contributor.authorscopusid57189334144-
dc.contributor.authorscopusid57196796085-
dc.contributor.authorscopusid56002599400-
dc.contributor.authorscopusid7403391708-
dc.contributor.authorscopusid56006321500-
dc.contributor.authorscopusid7202503882-
dc.contributor.authorscopusid24725426900-
dc.contributor.authorscopusid7005499116-
dc.identifier.eissn1996-756X-
dc.description.firstpage45-
dc.relation.volume10951-
dc.investigacionCiencias de la Salud-
dc.investigacionIngeniería y Arquitectura-
dc.type2Actas de congresos-
dc.contributor.daisngid6051182-
dc.contributor.daisngid2096372-
dc.contributor.daisngid1812298-
dc.contributor.daisngid2383512-
dc.contributor.daisngid1276634-
dc.contributor.daisngid255053-
dc.contributor.daisngid506422-
dc.contributor.daisngid4966220-
dc.contributor.daisngid606936-
dc.contributor.daisngid32002892-
dc.description.notasSPIE Medical Imaging, 2019, San Diego, California, United States-
dc.description.numberofpages11-
dc.utils.revisionNo-
dc.contributor.wosstandardWOS:Halicek, M-
dc.contributor.wosstandardWOS:Fabelo, H-
dc.contributor.wosstandardWOS:Ortega, S-
dc.contributor.wosstandardWOS:Little, JV-
dc.contributor.wosstandardWOS:Wang, X-
dc.contributor.wosstandardWOS:Chen, AY-
dc.contributor.wosstandardWOS:Callico, GM-
dc.contributor.wosstandardWOS:Myers, LL-
dc.contributor.wosstandardWOS:Sumer, BD-
dc.contributor.wosstandardWOS:Fei, BW-
dc.identifier.conferenceidevents121169-
dc.identifier.ulpgces
item.grantfulltextnone-
item.fulltextSin texto completo-
crisitem.event.eventsstartdate17-02-2019-
crisitem.event.eventsenddate19-02-2019-
crisitem.author.deptGIR IUMA: Diseño de Sistemas Electrónicos Integrados para el procesamiento de datos-
crisitem.author.deptIU de Microelectrónica Aplicada-
crisitem.author.deptGIR IUMA: Diseño de Sistemas Electrónicos Integrados para el procesamiento de datos-
crisitem.author.deptIU de Microelectrónica Aplicada-
crisitem.author.deptGIR IUMA: Diseño de Sistemas Electrónicos Integrados para el procesamiento de datos-
crisitem.author.deptIU de Microelectrónica Aplicada-
crisitem.author.deptDepartamento de Ingeniería Electrónica y Automática-
crisitem.author.orcid0000-0002-9794-490X-
crisitem.author.orcid0000-0002-7519-954X-
crisitem.author.orcid0000-0002-3784-5504-
crisitem.author.parentorgIU de Microelectrónica Aplicada-
crisitem.author.parentorgIU de Microelectrónica Aplicada-
crisitem.author.parentorgIU de Microelectrónica Aplicada-
crisitem.author.fullNameFabelo Gómez, Himar Antonio-
crisitem.author.fullNameOrtega Sarmiento,Samuel-
crisitem.author.fullNameMarrero Callicó, Gustavo Iván-
Appears in Collections:Actas de congresos
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