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Bài báo - Tạp chí
27 (2021) Trang: 39-43
Tạp chí: Annals of Computer Science and Information Systems

 Artificial intelligence association into brain magnetic resonance imaging (MRI) and clinical practices embracesubstantial cancer diagnosis improvement. The advancement ofdeep learning has improved the processing and analysis of MRI,boosting models' performance, decreasing the destructive effectsof data sources overload, and increasing accurate detection andtime efficacy. However, that specific dataset leads to diverseresearch fields such as image processing and analysis, detection, registration, segmentation, and classification. This paperproposes a decision-making pipeline for MRI data by combiningimage classification and segmentation. First, the pipeline shouldcorrectly produce a correct decision given an MRI image. If thefigure is classified as defective, the pipeline can extract defectregions and highlight them accordingly. We have implementedseveral advanced convolutional neural networks with transferlearning and residual techniques to address two broad clinicalconcerns in one decision-making workflow.

 
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5 (2020) Trang: 724-732
Tạp chí: Advances in Science, Technology and Engineering Systems Journal
(2019) Trang: 83-90
Tạp chí: the 2019 4th International Conference on Intelligent Information Technology
(2019) Trang: 27-32
Tạp chí: 3rd International Conference on Machine Learning and Soft Computing
Volume 10 Issue 1 (2019) Trang: 58-67
Tạp chí: Inter. J. of Advanced Computer Science and Applications, ISSN:2156-5570
 


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