Papers › 3D-DDA: 3D Dual-Domain Attention for Brain Tumor Segmentation

3D-DDA: 3D Dual-Domain Attention for Brain Tumor Segmentation

1 Oct 2023ICIP 2023 10archive 2025-07-28

Vo-Thanh Hoang-Son, Do Nhu-Tai, Nguyen-Quynh Tram-Tran, Kim, Soo-Hyung

Accurate brain tumor segmentation plays an essential role in the diagnosis process. However, there are challenges due to the variety of tumors in low contrast, morphology, location, annotation bias, and imbalance among tumor regions. This work proposes a novel 3D dual-domain attention module to learn local and global information in spatial and context domains from encoding feature maps in Unet. Our attention module generates refined feature maps from the enlarged reception field at every stage by attention mechanisms and residual learning to focus on complex tumor regions. Our experiments on BraTS 2018 have demonstrated superior performance compared to existing state-of-the-art methods.

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Tasks

Brain Tumor SegmentationTumor Segmentation

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Brain Tumor Segmentation BRATS 2018 3D-DDA ET 0.8069 #3 of 4 Archive leaderboard report
Brain Tumor Segmentation BRATS 2018 3D-DDA TC 0.8677 #3 of 4 Archive leaderboard report
Brain Tumor Segmentation BRATS 2018 3D-DDA WT 0.9135 #3 of 4 Archive leaderboard report

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