Diagnosis of Metastatic Lymph Nodes in Patients With Papillary Thyroid Cancer: A Comparative Multi-Center Study of Semantic Features and Deep Learning-Based Models
Article
Article Title | Diagnosis of Metastatic Lymph Nodes in Patients With Papillary Thyroid Cancer: A Comparative Multi-Center Study of Semantic Features and Deep Learning-Based Models |
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ERA Journal ID | 16537 |
Article Category | Article |
Authors | Ardakani, Ali Abbasian, Mohammadi, Afshin, Mirza-Aghazadeh-Attari, Mohammad, Faeghi, Fariborz, Vogl, Thomas J. and Acharya, U. Rajendra |
Journal Title | Journal of Ultrasound in Medicine |
Journal Citation | 42 (6), pp. 1211-1221 |
Number of Pages | 11 |
Year | 2023 |
Publisher | John Wiley & Sons |
Place of Publication | United States |
ISSN | 0278-4297 |
1550-9613 | |
Digital Object Identifier (DOI) | https://doi.org/10.1002/jum.16131 |
Web Address (URL) | https://onlinelibrary.wiley.com/doi/epdf/10.1002/jum.16131 |
Abstract | Objectives Methods Results Conclusion |
Keywords | artificial intelligence; ultrasound imaging; cervical lymph node; convolutional neuralnetwork; deep learning; papillary thyroid cancer |
ANZSRC Field of Research 2020 | 400306. Computational physiology |
Public Notes | Files associated with this item cannot be displayed due to copyright restrictions. |
Byline Affiliations | Shahid Beheshti University of Medical Sciences, Iran |
Johns Hopkins University, United States | |
University Hospital Frankfurt, Germany | |
Ngee Ann Polytechnic, Singapore | |
Asia University, Taiwan | |
Singapore University of Social Sciences (SUSS), Singapore |
https://research.usq.edu.au/item/z1v45/diagnosis-of-metastatic-lymph-nodes-in-patients-with-papillary-thyroid-cancer-a-comparative-multi-center-study-of-semantic-features-and-deep-learning-based-models
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