RFNet: Region-aware Fusion Network for Incomplete Multi-modal Brain Tumor Segmentation
Yuhang Ding, Xin Yu, Yi Yang
Abstract
Most existing brain tumor segmentation methods usually exploit multi-modal magnetic resonance imaging (MRI) images to achieve high segmentation performance. However, the problem of missing certain modality images often happens in clinical practice, thus leading to severe segmentation performance degradation. In this work, we propose a Region-aware Fusion Network (RFNet) that is able to exploit different combinations of multi-modal data adaptively and effectively for tumor segmentation. Considering different modalities are sensitive to different brain tumor regions, we design a Region-aware Fusion Module (RFM) in RFNet to conduct modal feature fusion from available image modalities according to disparate regions. Benefiting from RFM, RFNet can adaptively segment tumor regions from an incomplete set of multi-modal images by effectively aggregating modal features. Furthermore, we also develop a segmentation-based regularizer to prevent RFNet from the insufficient and unbalanced training caused by the incomplete multi-modal data. Specifically, apart from obtaining segmentation results from fused modal features, we also segment each image modality individually from the corresponding encoded features. In this manner, each modal encoder is forced to learn discriminative features, thus improving the representation ability of the fused features. Remarkably, extensive experiments on BRATS2020, BRATS2018 and BRATS2015 datasets demonstrate that our RFNet outperforms the state-of-the-art significantly.
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Cited by top-tier papers25
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- Scratch Each Other's Back: Incomplete Multi-modal Brain Tumor Segmentation Via Category Aware Group Self-Support LearningYansheng Qiu, Delin Chen, Hongdou Yao, Yongchao Xu et al.ICCV 2023 · 30 citations
- TMFormer: Token Merging Transformer for Brain Tumor Segmentation with Missing ModalitiesZheyu Zhang, Gang Yang, Yueyi Zhang, Huanjing Yue et al.AAAI 2024 · 29 citations
- Enhancing Modality-Agnostic Representations via Meta-learning for Brain Tumor SegmentationAishik Konwer, Xiaoling Hu, Joseph Bae, Xuan Xu et al.ICCV 2023 · 23 citations
- PASSION: Towards Effective Incomplete Multi-Modal Medical Image Segmentation with Imbalanced Missing RatesJunjie Shi, Caozhi Shang, Zhaobin Sun, Li Yu et al.ACM MM 2024 · 20 citations
Builds on9
- Deep Multimodal Fusion by Channel ExchangingYikai Wang, Wenbing Huang, Fuchun Sun, Tingyang Xu et al.NeurIPS 2020 · 321 citations
- Dual Attention Matching for Audio-Visual Event LocalizationYu Wu, Linchao Zhu, Yan Yan, Yi YangICCV 2019 · 233 citations
- Optimal Feature Transport for Cross-View Image Geo-LocalizationYujiao Shi, Xin Yu, Liu Liu, Tong Zhang et al.AAAI 2020 · 210 citations
- Modeling the Probabilistic Distribution of Unlabeled Data for One-shot Medical Image SegmentationYuhang Ding, Xin Yu, Yi YangAAAI 2021 · 42 citations
- Factorized Inference in Deep Markov Models for Incomplete Multimodal Time SeriesZhi-Xuan Tan, Harold Soh, Desmond C. OngAAAI 2020 · 32 citations
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