Improved U-Net architecture with VGG-16 for brain tumor segmentation

被引:0
|
作者
Sourodip Ghosh
Aunkit Chaki
KC Santosh
机构
[1] University of South Dakota,KC′s PAMI Research Lab − Computer Science
[2] KIIT University,Department of Electronics Engineering
关键词
Brain MRI; Improved U-Net; Tumor segmentation;
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中图分类号
学科分类号
摘要
Automated assessment and segmentation of Brain MRI images facilitate towards detection of neurological diseases and disorders. In this paper, we propose an improved U-Net with VGG-16 to segment Brain MRI images and identify region-of-interest (tumor cells). We compare results of improved U-Net with a custom-designed U-Net architecture by analyzing the TCGA-LGG dataset (3929 images) from the TCI archive, and achieve pixel accuracies of 0.994 and 0.9975 from basic U-Net and improved U-Net architectures, respectively. Our results outperformed common CNN-based state-of-the-art works.
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页码:703 / 712
页数:9
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