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Brain Tumour Removing and Missing Modality Generation using 3D WDM
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This paper presents the second-placed solution for task 8 and the participation solution for task 7 of BraTS 2024. The adoption of automated brain analysis algorithms to support clinical practice is increasing. However, many of these algorithms struggle with the presence of brain lesions or the absence of certain MRI modalities. The alterations in the brain's morphology leads to high variability and thus poor performance of predictive models that were trained only on healthy brains. The lack of information that is usually provided by some of the missing MRI modalities also reduces the reliability of the prediction models trained with all modalities. In order to improve the performance of these models, we propose the use of conditional 3D wavelet diffusion models. The wavelet transform enabled full-resolution image training and prediction on a GPU with 48 GB VRAM, without patching or downsampling, preserving all information for prediction. The code for these tasks is available at https://github.com/ShadowTwin41/BraTS_2023_2024_solutions.
Forward citations
Cited by 2 Pith papers
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BrainNormalizer: Anatomy-Informed Pseudo-Healthy Brain Reconstruction from Tumor MRI via Edge-Guided ControlNet
A ControlNet-guided diffusion model reconstructs pseudo-healthy brain MRIs from tumor scans by inpainting with healthy prompts and mirrored contralateral edge maps, improving FID, SSIM, and tumor false-positive rate o...
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Now You Have My Healthy Attention: A U-DiT for Brain-MRI Inpainting
Healthy-only bottleneck attention plus a contralateral-mirror input raise BraTS-2026 healthy-tissue inpainting to SSIM 0.864 / PSNR 24.7 dB on 219 validation cases.
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