Artificial Intelligence Algorithm-Based CTA Imaging for Diagnosing Ischemic Type Biliary Lesions after Orthotopic Liver Transplantation
The study focused on the clinical application value of artificial intelligence-based computed tomography angiography (CTA) in the diagnosis of orthotopic liver transplantation (OLT) after ischemic type biliary lesions (ITBL). A total of 66 patients receiving OLT in hospital were selected. Convolutio...
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| Published in | Computational and mathematical methods in medicine Vol. 2022; pp. 1 - 8 |
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| Main Authors | , , , |
| Format | Journal Article |
| Language | English |
| Published |
United States
Hindawi
04.01.2022
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| Subjects | |
| Online Access | Get full text |
| ISSN | 1748-670X 1748-6718 1748-6718 |
| DOI | 10.1155/2022/3399892 |
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| Abstract | The study focused on the clinical application value of artificial intelligence-based computed tomography angiography (CTA) in the diagnosis of orthotopic liver transplantation (OLT) after ischemic type biliary lesions (ITBL). A total of 66 patients receiving OLT in hospital were selected. Convolutional neural network (CNN) algorithm was used to denoise and detect the edges of CTA images of patients. At the same time, the quality of the processed image was subjectively evaluated and quantified by Hmax, Ur, Cr, and other indicators. Then, the digital subtraction angiography (DSA) diagnosis and CTA diagnosis based on CNN were compared for the sensitivity, specificity, positive predictive value, negative predictive value, and patient classification results. It was found that CTA can clearly reflect the information of hepatic aorta lesions and thrombosis in patients with ischemic single-duct injury after liver transplantation. After neural network algorithm processing, the image quality is obviously improved, the lesions are more prominent, and the details of lesion parts are also well displayed. ITBL occurred in 40 (71%) of 56 patients with abnormal CTA at early stage. ITBL occurred in only 8 (12.3%) of 65 patients with normal CTA at early stage. Early CTA manifestations had high sensitivity (72.22%), specificity (87.44%), positive predictive value (60.94%), and negative predictive value (92.06%) for the diagnosis of ITBL. It was concluded that artificial intelligence-based CTA had high clinical application value in the diagnosis of ITBL after OLT. |
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| AbstractList | The study focused on the clinical application value of artificial intelligence-based computed tomography angiography (CTA) in the diagnosis of orthotopic liver transplantation (OLT) after ischemic type biliary lesions (ITBL). A total of 66 patients receiving OLT in hospital were selected. Convolutional neural network (CNN) algorithm was used to denoise and detect the edges of CTA images of patients. At the same time, the quality of the processed image was subjectively evaluated and quantified by Hmax, Ur, Cr, and other indicators. Then, the digital subtraction angiography (DSA) diagnosis and CTA diagnosis based on CNN were compared for the sensitivity, specificity, positive predictive value, negative predictive value, and patient classification results. It was found that CTA can clearly reflect the information of hepatic aorta lesions and thrombosis in patients with ischemic single-duct injury after liver transplantation. After neural network algorithm processing, the image quality is obviously improved, the lesions are more prominent, and the details of lesion parts are also well displayed. ITBL occurred in 40 (71%) of 56 patients with abnormal CTA at early stage. ITBL occurred in only 8 (12.3%) of 65 patients with normal CTA at early stage. Early CTA manifestations had high sensitivity (72.22%), specificity (87.44%), positive predictive value (60.94%), and negative predictive value (92.06%) for the diagnosis of ITBL. It was concluded that artificial intelligence-based CTA had high clinical application value in the diagnosis of ITBL after OLT. The study focused on the clinical application value of artificial intelligence-based computed tomography angiography (CTA) in the diagnosis of orthotopic liver transplantation (OLT) after ischemic type biliary lesions (ITBL). A total of 66 patients receiving OLT in hospital were selected. Convolutional neural network (CNN) algorithm was used to denoise and detect the edges of CTA images of patients. At the same time, the quality of the processed image was subjectively evaluated and quantified by Hmax, Ur, Cr, and other indicators. Then, the digital subtraction angiography (DSA) diagnosis and CTA diagnosis based on CNN were compared for the sensitivity, specificity, positive predictive value, negative predictive value, and patient classification results. It was found that CTA can clearly reflect the information of hepatic aorta lesions and thrombosis in patients with ischemic single-duct injury after liver transplantation. After neural network algorithm processing, the image quality is obviously improved, the lesions are more prominent, and the details of lesion parts are also well displayed. ITBL occurred in 40 (71%) of 56 patients with abnormal CTA at early stage. ITBL occurred in only 8 (12.3%) of 65 patients with normal CTA at early stage. Early CTA manifestations had high sensitivity (72.22%), specificity (87.44%), positive predictive value (60.94%), and negative predictive value (92.06%) for the diagnosis of ITBL. It was concluded that artificial intelligence-based CTA had high clinical application value in the diagnosis of ITBL after OLT.The study focused on the clinical application value of artificial intelligence-based computed tomography angiography (CTA) in the diagnosis of orthotopic liver transplantation (OLT) after ischemic type biliary lesions (ITBL). A total of 66 patients receiving OLT in hospital were selected. Convolutional neural network (CNN) algorithm was used to denoise and detect the edges of CTA images of patients. At the same time, the quality of the processed image was subjectively evaluated and quantified by Hmax, Ur, Cr, and other indicators. Then, the digital subtraction angiography (DSA) diagnosis and CTA diagnosis based on CNN were compared for the sensitivity, specificity, positive predictive value, negative predictive value, and patient classification results. It was found that CTA can clearly reflect the information of hepatic aorta lesions and thrombosis in patients with ischemic single-duct injury after liver transplantation. After neural network algorithm processing, the image quality is obviously improved, the lesions are more prominent, and the details of lesion parts are also well displayed. ITBL occurred in 40 (71%) of 56 patients with abnormal CTA at early stage. ITBL occurred in only 8 (12.3%) of 65 patients with normal CTA at early stage. Early CTA manifestations had high sensitivity (72.22%), specificity (87.44%), positive predictive value (60.94%), and negative predictive value (92.06%) for the diagnosis of ITBL. It was concluded that artificial intelligence-based CTA had high clinical application value in the diagnosis of ITBL after OLT. |
| Author | Ou, Guixue Zhang, Qinghua Wang, Ruihua Yu, Zhenxing |
| AuthorAffiliation | Department of General Surgery, Affiliated Mindong Hospital of Fujian Medical University, Fu'an, 355000 Fujian, China |
| AuthorAffiliation_xml | – name: Department of General Surgery, Affiliated Mindong Hospital of Fujian Medical University, Fu'an, 355000 Fujian, China |
| Author_xml | – sequence: 1 givenname: Zhenxing orcidid: 0000-0002-7740-3225 surname: Yu fullname: Yu, Zhenxing organization: Department of General SurgeryAffiliated Mindong Hospital of Fujian Medical UniversityFu’an355000 FujianChina – sequence: 2 givenname: Guixue orcidid: 0000-0003-2521-3873 surname: Ou fullname: Ou, Guixue organization: Department of General SurgeryAffiliated Mindong Hospital of Fujian Medical UniversityFu’an355000 FujianChina – sequence: 3 givenname: Ruihua orcidid: 0000-0002-1032-0257 surname: Wang fullname: Wang, Ruihua organization: Department of General SurgeryAffiliated Mindong Hospital of Fujian Medical UniversityFu’an355000 FujianChina – sequence: 4 givenname: Qinghua orcidid: 0000-0002-1338-4168 surname: Zhang fullname: Zhang, Qinghua organization: Department of General SurgeryAffiliated Mindong Hospital of Fujian Medical UniversityFu’an355000 FujianChina |
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| Cites_doi | 10.1111/tri.13342 10.1016/j.ejrad.2018.07.009 10.1016/j.ijcce.2020.12.004 10.1016/j.jhep.2018.12.013 10.1111/ctr.13310 10.3389/fnins.2021.714318 10.1002/lt.25899 10.1016/j.bbadis.2017.06.013 10.1097/TP.0000000000003693 10.1016/j.clinre.2019.05.005 10.1186/s12876-019-0956-6 10.1016/j.clinre.2017.11.005 10.2147/IJGM.S305827 10.3390/jcm9113685 10.6002/ect.2020.0032 10.5500/wjt.v9.i1.14 10.12659/AOT.907240 10.1093/bjs/znab118 10.1093/bjs/znab350 10.1371/journal.pone.0222409 10.18632/aging.103381 10.1016/j.gastrohep.2021.03.005 10.3390/jcm7110425 10.5500/wjt.v8.i6.220 10.1136/bmjopen-2019-035374 |
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| Copyright | Copyright © 2022 Zhenxing Yu et al. Copyright © 2022 Zhenxing Yu et al. 2022 |
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| SubjectTerms | Adult Algorithms Angiography, Digital Subtraction - statistics & numerical data Artificial Intelligence Biliary Tract - blood supply Biliary Tract - diagnostic imaging Computational Biology Computed Tomography Angiography - statistics & numerical data Female Humans Ischemia - diagnostic imaging Ischemia - etiology Liver Transplantation - adverse effects Liver Transplantation - methods Liver Transplantation - statistics & numerical data Male Middle Aged Neural Networks, Computer |
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| Title | Artificial Intelligence Algorithm-Based CTA Imaging for Diagnosing Ischemic Type Biliary Lesions after Orthotopic Liver Transplantation |
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