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Multimodal CNN networks for brain tumor segmentation in MRI: a BraTS 2022 challenge solution

  • Automatic segmentation is essential for the brain tumor diagnosis, disease prognosis, and follow-up therapy of patients with gliomas. Still, accurate detection of gliomas and their sub-regions in multimodal MRI is very challenging due to the variety of scanners and imaging protocols. Over the last years, the BraTS Challenge has provided a large number of multi-institutional MRI scans as a benchmark for glioma segmentation algorithms. This paper describes our contribution to the BraTS 2022 Continuous Evaluation challenge. We propose a new ensemble of multiple deep learning frameworks namely, DeepSeg, nnU-Net, and DeepSCAN for automatic glioma boundaries detection in pre-operative MRI. It is worth noting that our ensemble models took first place in the final evaluation on the BraTS testing dataset with Dice scores of 0.9294, 0.8788, and 0.8803, and Hausdorf distance of 5.23, 13.54, and 12.05, for the whole tumor, tumor core, and enhancing tumor, respectively. Furthermore, the proposed ensemble method ranked first in the final ranking on another unseen test dataset, namely Sub-Saharan Africa dataset, achieving mean Dice scores of 0.9737, 0.9593, and 0.9022, and HD95 of 2.66, 1.72, 3.32 for the whole tumor, tumor core, and enhancing tumor, respectively.

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Metadaten
Author of HS ReutlingenBurgert, Oliver; Zeineldin, Ramy
DOI:https://doi.org/10.1007/978-3-031-33842-7_11
ISBN:978-3-031-33841-0
ISBN:978-3-031-33842-7
Erschienen in:Brainlesion: glioma, multiple sclerosis, stroke and traumatic brain injuries : 8th international workshop, BrainLes 2022, held in conjunction with MICCAI 2022, Singapore, 18 September 2022, revised selected papers (Lecture notes in computer science; 13769)
Publisher:Springer
Place of publication:Cham
Editor:Spyridon Bakas, Alessandro Crimi, Ujjwal Baid, Sylwia Malec, Monika Pytlarz, Bhakti Baheti, Maximilian Zenk, Reuben Dorent
Document Type:Conference proceeding
Language:English
Publication year:2023
Tag:BraTS; CNN; MRI; ensemble; glioma; segmentation
Page Number:11
First Page:127
Last Page:137
PPN:Im Katalog der Hochschule Reutlingen ansehen
DDC classes:610 Medizin, Gesundheit
Open access?:Nein
Licence (German):License Logo  In Copyright - Urheberrechtlich geschützt