Papers › Vox2Vox: 3D-GAN for Brain Tumour Segmentation

Vox2Vox: 3D-GAN for Brain Tumour Segmentation

19 Mar 2020arXiv:2003.13653archive 2025-07-28

Marco Domenico Cirillo, David Abramian, Anders Eklund

Gliomas are the most common primary brain malignancies, with different degrees of aggressiveness, variable prognosis and various heterogeneous histological sub-regions, i.e., peritumoral edema, necrotic core, enhancing and non-enhancing tumour core. Although brain tumours can easily be detected using multi-modal MRI, accurate tumor segmentation is a challenging task. Hence, using the data provided by the BraTS Challenge 2020, we propose a 3D volume-to-volume Generative Adversarial Network for segmentation of brain tumours. The model, called Vox2Vox, generates realistic segmentation outputs from multi-channel 3D MR images, segmenting the whole, core and enhancing tumor with mean values of 87.20%, 81.14%, and 78.67% as dice scores and 6.44mm, 24.36mm, and 18.95mm for Hausdorff distance 95 percentile for the BraTS testing set after ensembling 10 Vox2Vox models obtained with a 10-fold cross-validation.

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mdciri/Vox2Vox officialmentioned in papermentioned on GitHubtf report
enochkan/vox2vox mentioned on GitHubpytorch report
syedsajidhussain/3D-GAN mentioned on GitHubtf report

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PrognosisSegmentationSemantic SegmentationTumor Segmentation

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