Magnetic resonance imaging (MRI) inpainting supports numerous clinical and research applications. We introduce the first generative model that conditions on voxel-level, continuous tumor concentrations to synthesize high-fidelity brain tumor MRIs. For the BraTS 2025 Inpainting Challenge, we adapt this architecture to the complementary task of healthy tissue restoration by setting the tumor concentrations to zero. Our latent diffusion model conditioned on both tissue segmentations and the tumor concentrations generates 3D spatially coherent and anatomically consistent images for both tumor synthesis and healthy tissue inpainting. For healthy inpainting, we achieve a PSNR of 18.5, and for tumor inpainting, we achieve 17.4. Our code is available at: https://github.com/valentin-biller/ldm.git


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图像修复(英语:Inpainting)指重建的图像和视频中丢失或损坏的部分的过程。例如在博物馆中,这项工作常由经验丰富的博物馆管理员或者艺术品修复师来进行。数码世界中,图像修复又称图像插值或视频插值,指利用复杂的算法来替换已丢失、损坏的图像数据,主要替换一些小区域和瑕疵。
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