Artificial intelligence in medical imaging for cholangiocarcinoma diagnosis: A systematic review with scientometric analysis

被引:6
作者
Njei, Basile [1 ,2 ,8 ,10 ]
Kanmounye, Ulrick Sidney [2 ,9 ]
Seto, Nancy [3 ]
McCarty, Thomas. R. R. [4 ]
Mohan, Babu. P. P. [5 ]
Fozo, Lydia [6 ]
Navaneethan, Udayakumar [7 ]
机构
[1] Yale Univ, Sch Med, Invest Med Program, New Haven, CT USA
[2] Harvard Med Sch, Global Clin Scholars Res Training Program, Boston, MA USA
[3] Lake Erie Coll Osteopath Med, Erie, PA USA
[4] Houston Methodist Hosp, Lynda K & David M Underwood Ctr Digest Disorders, Houston, TX USA
[5] Univ Utah Hlth, Gastroenterol & Hepatol Dept, Salt Lake City, UT USA
[6] Johns Hopkins Univ, Baltimore, MD USA
[7] Orlando Hlth Digest Hlth Inst, Ctr IBD, Orlando, FL USA
[8] Univ Oxford, Oxford Artificial Intelligence Programme, Oxford, Oxfordshire, England
[9] Assoc Future African Neurosurg, Res Dept, Yaounde, Cameroon
[10] Yale Univ, Sch Med, Invest Med Program, 2 Church St South, Suite 113, New Haven, CT 06519 USA
基金
美国国家卫生研究院;
关键词
Artificial intelligence; Cholangiocarcinoma; Imaging; Scientometrics; Systematic review; MODALITIES; ULTRASOUND; NETWORK; IMAGES;
D O I
10.1111/jgh.16180
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
IntroductionArtificial intelligence (AI), by means of computer vision in machine learning, is a promising tool for cholangiocarcinoma (CCA) diagnosis. The aim of this study was to provide a comprehensive overview of AI in medical imaging for CCA diagnosis. MethodsA systematic review with scientometric analysis was conducted to analyze and visualize the state-of-the-art of medical imaging to diagnosis CCA. ResultsFifty relevant articles, published by 232 authors and affiliated with 68 organizations and 10 countries, were reviewed in depth. The country with the highest number of publications was China, followed by the United States. Collaboration was noted for 51 (22.0%) of the 232 authors forming five clusters. Deep learning algorithms with convolutional neural networks (CNN) were the most frequently used classifiers. The highest performance metrics were observed with CNN-cholangioscopy for diagnosis of extrahepatic CCA (accuracy 94.9%; sensitivity 94.7%; and specificity 92.1%). However, some of the values for CNN in CT imaging for diagnosis of intrahepatic CCA were low (AUC 0.72 and sensitivity 44%). ConclusionOur results suggest that there is increasing evidence to support the role of AI in the diagnosis of CCA. CNN-based computer vision of cholangioscopy images appears to be the most promising modality for extrahepatic CCA diagnosis. Our social network analysis highlighted an Asian and American predominance in the research relational network of AI in CCA diagnosis. This discrepancy presents an opportunity for coordination and increased collaboration, especially with institutions located in high CCA burdened countries.
引用
收藏
页码:874 / 882
页数:9
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