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Computer-Aided Diagnosis of Thyroid Nodules via Ultrasonography: Initial Clinical Experience

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dc.contributor.authorYoo, YJ-
dc.contributor.authorHa, EJ-
dc.contributor.authorCho, YJ-
dc.contributor.authorKim, HL-
dc.contributor.authorHan, M-
dc.contributor.authorKang, SY-
dc.date.accessioned2019-11-13T00:18:15Z-
dc.date.available2019-11-13T00:18:15Z-
dc.date.issued2018-
dc.identifier.issn1229-6929-
dc.identifier.urihttp://repository.ajou.ac.kr/handle/201003/16928-
dc.description.abstractOBJECTIVE: To prospectively evaluate the diagnostic performance of computer-aided diagnosis (CAD) for detection of thyroid cancers via ultrasonography (US).
MATERIALS AND METHODS: This study included 50 consecutive patients with 117 thyroid nodules on US during the period between June 2016 and July 2016. A radiologist performed US examinations using real-time CAD integrated into a US scanner. We compared the diagnostic performance of radiologist, the CAD system, and the CAD-assisted radiologist for the detection of thyroid cancers.
RESULTS: The sensitivity, specificity, positive predictive value (PPV), negative predictive value (NPV), and accuracy of the CAD system were 80.0, 88.1, 83.3, 85.5, and 84.6%, respectively, and were not significantly different from those of the radiologist (p > 0.05). The CAD-assisted radiologist showed improved diagnostic sensitivity compared with the radiologist alone (92.0% vs. 84.0%, p = 0.037), while the specificity and PPV were reduced (85.1% vs. 95.5%, p = 0.005 and 82.1% vs. 93.3%, p = 0.008). The radiologist assisted by the CAD system exhibited better diagnostic sensitivity and NPV than the CAD system alone (92.0% vs. 80.0%, p = 0.009 and 93.4% vs. 88.9%, p = 0.013), while the specificities and PPVs were not significantly different (88.1% vs. 85.1%, p = 0.151 and 83.3% vs. 82.1%, p = 0.613, respectively).
CONCLUSION: The CAD system may be an adjunct to radiological intervention in the diagnosis of thyroid cancer.
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dc.language.isoen-
dc.subject.MESHAdult-
dc.subject.MESHAged-
dc.subject.MESHAged, 80 and over-
dc.subject.MESHArea Under Curve-
dc.subject.MESHDiagnosis, Computer-Assisted-
dc.subject.MESHFemale-
dc.subject.MESHHumans-
dc.subject.MESHMale-
dc.subject.MESHMiddle Aged-
dc.subject.MESHROC Curve-
dc.subject.MESHSensitivity and Specificity-
dc.subject.MESHThyroid Nodule-
dc.subject.MESHUltrasonography-
dc.subject.MESHYoung Adult-
dc.titleComputer-Aided Diagnosis of Thyroid Nodules via Ultrasonography: Initial Clinical Experience-
dc.typeArticle-
dc.identifier.pmid29962872-
dc.identifier.urlhttps://www.ncbi.nlm.nih.gov/pmc/articles/PMC6005935/-
dc.subject.keywordArtificial intelligence-
dc.subject.keywordComputer-aided diagnosis-
dc.subject.keywordThyroid nodule-
dc.subject.keywordThyroid cancer-
dc.subject.keywordUltrasonography-
dc.subject.keywordUltrasound-
dc.contributor.affiliatedAuthor하, 은주-
dc.contributor.affiliatedAuthor한, 미란-
dc.contributor.affiliatedAuthor강, 소영-
dc.type.localJournal Papers-
dc.identifier.doi10.3348/kjr.2018.19.4.665-
dc.citation.titleKorean journal of radiology-
dc.citation.volume19-
dc.citation.number4-
dc.citation.date2018-
dc.citation.startPage665-
dc.citation.endPage672-
dc.identifier.bibliographicCitationKorean journal of radiology, 19(4). : 665-672, 2018-
dc.identifier.eissn2005-8330-
dc.relation.journalidJ012296929-
Appears in Collections:
Journal Papers > School of Medicine / Graduate School of Medicine > Radiology
Journal Papers > Research Organization > Institute for Medical Sciences
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